Showing posts with label Organ Transplant. Show all posts
Showing posts with label Organ Transplant. Show all posts

March 19, 2014

Ribavirin Works Against Hep E

Published: Mar 19, 2014

By Michael Smith, North American Correspondent, MedPage Today

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The antiviral drug ribavirin can clear chronic hepatitis E virus (HEV) in solid-organ transplant recipients, researchers reported.

In a retrospective case series, 3 months of the drug resulted in a sustained virologic response (SVR) in 78% of patients, according to Nassim Kamar, MD, PhD, of the Centre Hospitalier Universitaire Rangueil in Toulouse, France, and colleagues.

Retreatment of six patients who failed the therapy resulted in four achieving an SVR, Kamar and colleagues reported in the March 20 issue of the New England Journal of Medicine.

HEV infection is usually self-limiting, except in patients with a suppressed immune system, where it can evolve to chronic hepatitis and cirrhosis, Kamar and colleagues noted.

There is no established HEV treatment, they added, and simply reducing immunosuppression in transplant patients with HEV only resulted in clearance in about 30%.

To evaluate the effects of ribavirin, they examined case records for 59 solid-organ recipients in 13 French centers who were treated with ribavirin alone between Sept. 10, 2009, and June 27, 2012.

Ribavirin is a general antiviral that inhibits replication of many RNA and DNA viruses. It has long been used to treat hepatitis C, along with pegylated interferon-alfa and now several direct-acting anti-HCV agents.

In the transplant case series, Kamar and colleagues reported, 37 patients got a kidney, 10 got livers, five got hearts, five got a kidney-pancreas transplant, and two got lungs.

Physicians started ribavirin a median of 9 months after HEV was diagnosed, and it was delivered at a median dose of 600 mg daily, equivalent to 8.1 mg/kg of body weight.

Patients got the drug for a median of 3 months (with a range from 1 to 18 months), but 66% got it for 3 months or less, the researchers reported.

One patient who started ribavirin was lost to follow-up after a month of treatment, and another was withdrawn for psychiatric reasons, Kamar and colleagues reported.

Among the remaining 57 patients, 56 had no detectable virus 3 months after the end of their therapy and, of those, 10 had a recurrence of HEV viremia.

Overall, a sustained virologic response -- defined for this study as no detectable viral RNA 6 months after the end of treatment -- was observed in 46 of the 59 patients, or 78%.

At the most recent follow-up -- a median of 25 months after the end of therapy -- the 46 patients were still free of the virus, Kamar and colleagues noted.

Of the 10 patients with relapse, six were retreated with ribavirin and four achieved an SVR.

Analysis found that a higher lymphocyte count when ribavirin therapy was initiated was the only factor associated with a greater likelihood of SVR, the researchers reported.

The main side effect of the drug was anemia, which necessitated a dose reduction in 29% of patients, erythropoietin in 54%, and blood transfusions in 12%, they found.

Kamar and colleagues cautioned that the study was retrospective and had only a small number of patients. In addition, care was clinically driven so that ribavirin dosing, duration, and monitoring varied from patient to patient. Drug levels were not measured.

Primary source: New England Journal of Medicine
Source reference: Kamar N, et al "Ribavirin for chronic hepatitis E virus infection in transplant recipients" NEJM 2014; 370: 1111-20.

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December 27, 2013

Risk of Hepatobiliary Cancer After Solid Organ Transplant in the United States

Clin Gastroenterol Hepatol. 2013 Dec 19. pii: S1542-3565(13)01964-2. doi: 10.1016/j.cgh.2013.12.018. [Epub ahead of print]

Koshiol J1, Pawlish K2, Goodman MT3, McGlynn KA4, Engels EA5.

Abstract

BACKGROUND & AIMS: Studies of liver cancer risk in recipients of solid organ transplants have generally been small, yielding mixed results, and little is known about biliary tract cancers among transplant recipients.

METHODS: We identified incident hepatobiliary cancers among 201,549 US recipients of solid organs, from 1987 through 2008, by linking data from the US transplant registry with 15 cancer registries. We calculated standardized incidence ratios (SIRs), comparing risk relative to the general population. We also calculated incidence rate ratios (RRs), comparing risk for hepatocellular carcinoma (HCC) and total (intrahepatic and extrahepatic) cholangiocarcinoma among subgroups of recipients.

RESULTS: Of transplant recipients, 165 developed hepatobiliary cancers (SIR, 1.2; 95% confidence interval [CI], 1.0-1.4). HCC risk was increased among liver recipients (SIR, 1.5; 95% CI, 1.0-2.2), especially 5 or more y after transplant (SIR, 1.8; 95% CI, 1.0-3.0). Cholangiocarcinoma was increased among liver (SIR, 2.9; 95% CI,1.6-4.8) and kidney recipients (SIR, 2.1; 95% CI, 1.3-3.1). HCC was associated with hepatitis B virus (RR, 3.2; 95% CI, 1.3-6.9), hepatitis C virus (RR, 10; 95% CI, 5.9-16.9), and non-insulin-dependent diabetes (RR, 2.5; 95% CI, 1.2-4.8). Cholangiocarcinoma was associated with azathioprine maintenance therapy (RR, 2.0; 95% CI, 1.1-3.7). Among liver recipients, primary sclerosing cholangitis (PSC) was associated with increased risk of cholangiocarcinoma, compared to the general population (SIR, 21; 95% CI, 8.2-42) and compared to liver recipients without PSC (RR, 12.3; 95% CI, 4.1-36.4).

CONCLUSIONS: Risks for liver and biliary tract cancer are increased among organ transplant recipients. Risk factors for these cancers include medical conditions and medications taken by recipients.

Copyright © 2013 AGA Institute. Published by Elsevier Inc. All rights reserved.

KEYWORDS: BMI, CI, ECC, HBV, HCC, HCV, ICC, ICD-O-3, International Classification of Disease for Oncology, 3rd edition, PBC, PSC, RR, SIR, body mass index, confidence interval, epidemiology, extrahepatic cholangiocarcinoma, hepatitis B virus, hepatitis C virus, hepatocellular carcinoma, intrahepatic cholangiocarcinoma, liver disease, primary biliary cirrhosis, primary sclerosing cholangitis, rate ratio, standardized incidence ratio, transplantation

PMID: 24362053 [PubMed - as supplied by publisher]

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November 21, 2013

Obama signs bipartisan bill lifting ban on HIV-positive organ transplants

Posted by Justin Snow
November 21, 2013 4:51 PM

President Barack Obama signs H.R. 2751, the “FDA Food Safety Modernization Act,” in the Oval Office, Jan. 4, 2011.  (Official White House Photo by Pete Souza)
This official White House photograph is being made available only for publication by news organizations and/or for personal use printing by the subject(s) of the photograph. The photograph may not be manipulated in any way and may not be used in commercial or political materials, advertisements, emails, products, promotions that in any way suggests approval or endorsement of the President, the First Family, or the White House.

President Barack Obama signed into law Thursday a bill lifting the ban on organ transplants between people who are HIV-positive.

The HIV Organ Policy Equity Act, also known as the HOPE Act, ends a decades-long federal ban on allowing donated HIV-positive organs from being translated into HIV-positive patients.

"For decades, these organ transplants have been illegal. It was even illegal to study whether they could be safe and effective," Obama said in a statement after signing the bill. "But as our understanding of HIV and effective treatments have grown, that policy has become outdated. The potential for successful organ transplants between people living with HIV has become more of a possibility."

By lifting the research ban, Obama said a door has been opened that could "lead to life-saving organ donations for people living with HIV while ensuring the safety of the organ transplant process and strengthening the national supply of organs for all who need them."

The HOPE Act received bipartisan approval in both houses of Congress earlier this year. Introduced by Sens. Barbara Boxer (D-Calif.), Tammy Baldwin (D-Wis.), Tom Coburn (R-Okla.) and Rand Paul (R-Ky.), the Senate approved the bill in June with no opposition. The House of Representatives passed the Senate version of the bill earlier this month, with Reps. Lois Capps (D-Calif.) and Andy Harris (R-Md.) leading the fight in the House.

"The bipartisan passage of the HOPE Act will fundamentally improve the quality of healthcare available for people living with HIV and AIDS," said Allison Herwitt, vice president for government affairs for the Human Rights Campaign, in a statement. "By removing these antiquated barriers to transplants, the lives of hundreds of people living with HIV and AIDS can be saved each year."

The HOPE Act directs the Department of Health and Human Services and the Organ Procurement Transplant Network (OPTN) to develop and institute standards for research on HIV-positive organ transplants, opening the door for the HHS secretary to permit HIV-positive transplants in HIV-positive patients when that research is complete.

According to HRC, more than 100,000 patients are currently waiting for organ transplants, with about 50,000 added each year. Permitting HIV-positive organ transplants in HIV-positive patients with liver or kidney failure could save up to 1,000 people per year.

"Improving care for people living with HIV is critical to fighting the epidemic, and it’s a key goal of my National HIV/AIDS Strategy," Obama said. "The HOPE Act marks an important step in the right direction, and I thank Congress for their action."

[Photo: Barack Obama. Credit: Official White House Photo by Pete Souza.]

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November 15, 2013

United States to allow transplants of HIV-infected organs

’Positive-to-positive’ transplants would create new pool of donors for infected patients.

Sara Reardon

13 November 2013

1.14170

The United States banned organ donations by people with HIV 25 years ago.

WILL & DENI MCINTYRE/SPL

The United States is poised to overturn its ban on accepting organs from HIV-positive donors, a move that would lead to organ transplants between infected patients.

Legislation approved by the US House of Representatives on 12 November seeks to end the 25-year prohibition on HIV-infected organs. It also directs the government to develop guidelines for the subsequent study of ‘positive-to-positive’ transplants.

Researchers say that such procedures could help to ease the overwhelming demand for donor organs in the United States. More than 120,000 people are waiting for new hearts, lungs, kidneys and other organs — a list that includes people with HIV, who are living longer thanks to antiretroviral drugs and other medical advances. Roughly one-quarter of HIV patients in the United States also have hepatitis C, which in its advanced form can be treated only by liver transplant.

“Any potential source of new donors should be looked at,” says transplant surgeon Peter Stock of the University of California, San Francisco. One recent study suggests that allowing donations from otherwise healthy people with HIV could make an additional 500‒600 organs available for transplant each year1.

The Senate approved the legislation, known as the HIV Organ Policy Equity Act, in June, and President Barack Obama is expected to sign it into law. But it may be some time before any transplants are performed. First, the federal Organ Procurement and Transplantation Network will need to develop ethical and clinical standards to guide medical research on positive-to-positive transplants. Dorry Segev, a transplant surgeon at Johns Hopkins University in Baltimore, Maryland, who lobbied for the bill, guesses that this may take up to a year.

Promising precedent

Such transplants are not without precedent, however. Elmi Muller, a transplant surgeon at the University of Cape Town in South Africa, has pioneered positive-to-positive kidney transplants, conducting 26 since 2008.

“I felt that where these patients didn’t have much option, there was not much to lose,” says Muller. Approximately 20% of South Africa’s population is infected with HIV, but those who need new kidneys are usually not even considered for dialysis — much less transplant surgery. Until antiretroviral drugs became widely available a few years ago, HIV-positive South Africans were not expected to live very long.

In the past five years, only two of Muller’s 26 transplants have failed, adding weight to her argument that the benefits of the procedures outweigh their risks. Yet Muller says her research also highlights the need for continued study of the safety and efficacy of transplants from HIV-positive donors. For example, although the organ recipients in her study are generally healthy, a few of their donor kidneys show structural changes that may be caused by HIV — and Muller does not know whether the changes are harmful.

There are also concerns about ‘superinfecting’ a HIV-positive patient with a second strain of the virus carried by a donor organ, particularly if that strain is resistant to antiretroviral drugs. And it is not clear how immune-boosting antiretroviral drugs will interact with the drugs that transplant patients take to prevent their bodies from rejecting donor organs. High, possibly toxic, doses of immunosuppressant medication may be required to prevent organ rejection in a recipient who is also taking antiretroviral drugs. Some research suggests that HIV-infected individuals seem to be more likely to reject new organs2.

Despite those caveats, researchers are hopeful that investigating positive-to-positive transplants will yield valuable clinical insights into the functioning of HIV and the human immune system. Says Stock, “There is just so much to learn.”

Nature doi:10.1038/nature.2013.14170

References

  1. Boyarsky, B. J. et al. Am. J. Transplant. 11, 1209–1217 (2011). Article PubMed ISI ChemPort

  2. Stock, P. G. et al. N. Engl. J. Med. 363, 2004–2014 (2010). Article PubMed ISI ChemPort

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Also See: Congress Passes HIV Organ Policy Equity Act (HOPE Act)

November 13, 2013

Congress Passes HIV Organ Policy Equity Act (HOPE Act)

Legislation will lead to increases in life-saving donor organs and vital research in the area of HIV organ donation and transplantation

November 13, 2013 09:02 AM Eastern Standard Time

WASHINGTON--(BUSINESS WIRE)--The American Society of Transplantation (AST), representing the majority of professionals engaged in the field of organ transplantation, applauded yesterday's action by the U.S. House of Representatives to bring the HIV Organ Policy Equity Act (HOPE Act) one step closer to being signed into law. The legislation, which has bipartisan support, has now passed in both the House of Representatives and Senate and will be sent to the President for final signature into law.

“AST and its patient and physician constituencies applaud Congress for taking this important step toward ensuring that our laws reflect and keep pace with the latest life saving techniques and medical research available”

The HOPE Act amends the Public Health Service Act to establish safeguards and standards of quality for research of organs infected with human immunodeficiency virus (HIV). Once signed into law, it will expand the supply of life-saving organs available for transplantation to the more than 118,000 individuals currently languishing on the organ wait list.

“The HOPE Act is a common sense policy proposal that will improve the lives of many patients in need of organ transplants,” said Dr. Dan Salomon, President of the American Society of Transplantation. “The nation's transplant community is grateful that the House of Representatives and Senate have now both passed this vital legislation. The AST and its thousands of professionals worldwide strongly support this legislative proposal allowing for greater use of life saving donor organs and much needed research in the area of HIV organ donation and transplantation."

Passage of the HOPE Act in the House and Senate was championed by dozens of key leaders in Washington and led by Representatives Lois Capps (D-CA), Michael Burgess, M.D. (R-TX), Andy Harris, M.D. (R-MD) and Senators Tom Coburn (R-OK) and Barbara Boxer (D-CA).

“AST and its patient and physician constituencies applaud Congress for taking this important step toward ensuring that our laws reflect and keep pace with the latest life saving techniques and medical research available,” continued Salomon. “Given the current political landscape, it is refreshing to see such bipartisan and bicameral efforts taking a common sense approach to improving and saving lives.”

About The American Society of Transplantation (AST)

The American Society of Transplantation (AST) is an international organization of transplant professionals who are dedicated to advancing the field of transplantation and improving patient care by promoting research, education, advocacy, and organ donation. The Society comprises more than 3,100 transplant physicians, surgeons, scientists and allied health professionals. For more information about the Society, go to www.myast.org.

Contacts

American Society of Transplantation (AST)
Sean Carney, 215-735-3470 Ext. 108
scarney@brownsteingroup.com

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October 5, 2013

Transmission of Hepatitis C Virus from an Organ Donor with Undetectable Viremia by Nucleic Acid Testing

Infectious Disease Week (IDWeek)
October 2-6, 2013
San Francisco, Ca

630. Transmission of Hepatitis C Virus from an Organ Donor with Undetectable Viremia by Nucleic Acid Testing

Session: Oral Abstract Session: Infections in Transplantations and Immunocompromised

Friday, October 4, 2013: 9:30 AM

Room: The Moscone Center: 220-226

Background: Nucleic acid testing (NAT) is used for screening hepatitis C virus (HCV) infection among solid organ donors. On March 9, 2012 two organ recipients were reported to the Centers for Disease Control and Prevention with newly diagnosed HCV infections on routine post-transplant screening. Despite active injection drug use (IDU), the donor had undetectable HCV by polymerase chain reaction (PCR) testing. A public health investigation was initiated to determine the sources of HCV transmission.

Methods: The following donor and recipient specimens were tested by RNA quantitative PCR for HCV: donor’s serum, donor splenocytes from organ recovery; and recipients’ pre-and post-transplant serum. HCV genomic sequencing and quasispecies analysis were used to measure relatedness of HCV. Medical records were reviewed and recipients were interviewed for HCV-related risk factors. Epidemiologic investigations into source of transmission included assessment of healthcare exposures. 

Results: HCV RNA was undetectable by PCR and anti-HCV was negative by enzyme immunoassay on donor serum, but HCV genotype 2b was isolated from donor splenocytes procured at organ recovery, 4 days after serum collection. HCV genotype 2b was newly isolated by PCR in the left kidney recipient (day 9 post-transplant) and the heart recipient (day 30 post-transplant); two other recipients had chronic HCV infection before transplant. Quasispecies analysis showed close relatedness between HCV strains from the left kidney and heart recipients, indicating a common source; comparison to the donor’s HCV strains is ongoing. The donor’s IDU and recent plasma transfusion were identified as HCV-related risks. Trace-back of transfused units is ongoing; no other sources have been identified.

Conclusion: We report the first known transmission of HCV infection from an organ donor with negative screening by NAT, indicating very recent donor infection. These findings highlight the importance of communicating transmission risk to recipients, despite the most sensitive available donor screening. Donor-derived transmission of HCV and standardized recipient follow-up testing should be considered in recipients of organs procured from donors with behavioral risks for blood-borne pathogens.

Anil Suryaprasad, MD1, Susan N. Hocevar, MD2, Lauren Torso, MPH3, Jan Drobeniuc, MD, PhD1, Yury Khudyakov, PhD1, David Pegues, MD, FIDSA, FSHEA4, Matthew J. Kuehnert, MD, FIDSA2 and Emily Blumberg, MD, FIDSA5, (1)Division of Viral Hepatitis, Centers for Disease Control and Prevention, Atlanta, GA, (2)Division of Healthcare Quality and Promotion, Office of Blood, Organ, and Other Tissue Safety, Centers for Disease Control and Prevention, Atlanta, GA, (3)Pennsylvania Department of Health, Harrisburg, PA, (4)University of Pennsylvania Health System, Philadelphia, PA, (5)Medicine, University of Pennsylvania Health System, Philadelphia, PA

Disclosures:

A. Suryaprasad, None

S. N. Hocevar, None

L. Torso, None

J. Drobeniuc, None

Y. Khudyakov, None

D. Pegues, None

M. J. Kuehnert, None

E. Blumberg, None

Source

July 24, 2013

U.S. Congress Moves Closer to Lifting Ban on Transplanting Organs From HIV-Positive Donors

si-surgery

Wikimedia

Surgical policy. Congress is advancing legislation that would make organs from HIV-positive donors available to surgeons.

2013-07-19 12:00

Senah Yeboah-Sampong

A U.S. House of Representatives committee this week unanimously approved a bill approving transplants using organs taken from people infected with HIV. The HIV Organ Policy Equity Act would lift a nearly 3-decade-old federal ban on such transplants and allow expanded research into the outcomes of transplant patients. Similar legislation has already passed the Senate, and the bill's advocates say that the policy shift could save hundreds of lives each year if it ultimately makes it into law.

"The shortage of organ donations in our country is a critical matter," said Representative Lois Capps (D-CA), who introduced the bill, in a statement. "We need to begin to research the feasibility and safety of these transplants in hopes that more people can receive transplants, and more lives can be saved."

Congress banned transplant of HIV-infected organs in 1988, when AIDS was rapidly spreading and little was known about how to prevent and treat it. A concerted effort to lift the ban began about 2 years ago, after a 2011 study published in the American Journal of Transplantation (AJT) concluded that the ban was outdated and that these organs could help fill a gap between supply and demand.

Today, there are more than 118,000 people in the United States on the waiting list of the Organ Transplant and Procurement Network, a nonprofit established to coordinate the transplant system. Perhaps 1000 people on the list are HIV-positive, researchers estimate. Antiretroviral drugs can extend the lives of these patients, physicians say, but many are vulnerable to kidney failure, and adding more HIV-positive organ donors to the pool would give them a better chance of survival.

"We should really offer them transplants as a cure for kidney failure," says Mohamed Atta, an associate professor of medicine at Johns Hopkins University in Baltimore, Maryland. In the past, he says such "positive-to-positive" transplants were "not even an option for those patients and that was discrimination."

The pool of potential HIV-positive organ donors is about 500 per year, according to the 2011 study by researchers at Johns Hopkins that was published in AJT. These donors could provide an additional 1000 organs, says transplant surgeon Dorry Segev of Johns Hopkins, who worked on the study. "If we were able to successfully use all those organs, we would at least be able to transplant everybody with HIV that is currently on the waiting list," says Segev, who has urged Congress to fix what he calls "a mistake in the law."

Segev and his allies have found supporters in Congress. A Senate bill lifting the transplant ban (S.330), sponsored by Senator Barbara Boxer (D-CA), won unanimous approval in June. Now, the House bill (H.R. 698) has passed its first major hurdle, winning unanimous approval from the Energy and Commerce Committee on 17 July.

"Our current organ transplant polices are outdated and do not reflect the most current research and clinical outcomes," said Representative Michael Burgess (R-TX), a co-sponsor, in a statement. Initially, Burgess said that he was "concerned" about the idea of lifting the ban, "but it does seem to be sound, science-based policy." He noted that surgeons are already able to do positive-to-positive transplants with donors and recipients infected with the hepatitis C virus, which is spread by means similar to those of HIV.

Lifting the HIV transplant ban would also be "good fiscal policy" because it could reduce treatment costs, Burgess said. For patients with HIV and kidney failure who get government-subsidized dialysis, for instance, a successful kidney transplant could save the government $500,000 per patient, says Kim Miller, policy officer for the HIV Medicine Association in Arlington, Virginia, one group backing the bill.

Several studies have suggested that positive-to-positive transplants work. A team of doctors in South Africa transplanted HIV-positive kidneys into four HIV-positive recipients in 2010; a year later the patients were still doing well. Another 2010 study published in The New England Journal of Medicine followed 150 HIV-positive kidney transplant recipients for 3 years, finding that most were successful. One big challenge, the study found, was determining how to balance antiretroviral drugs that the patients took to combat HIV with the immunosuppressive drugs meant to thwart organ rejection.

To address such problems, both the House and Senate bills would task the organ network with monitoring research on positive-to-positive transplants. The U.S. Department of Health and Human Services, which oversees the network, would use the findings to develop new healthcare standards for the transplants 2 years after the bill became law. Researchers say that lifting the ban could also ease studies that could help improve pre- and post-transplant treatments, donor selection criteria, and preventing HIV-infected organs from being transplanted into patients without the disease.

One difference between the House and Senate bills is that the Senate version makes it clear that surgeons who transplant HIV-infected organs would not be subject to criminal charges, as they are under the current law, if research shows that the transplants pose no health risks. That and other differences between the bills could be cleared up if the full House passes its version, allowing the two bodies to negotiate a final bill. The legislation's backers are optimistic that it will win final approval in the House later this year. The Obama administration has yet to take a formal position on the proposal.

Source

June 19, 2013

HHS Releases New Guideline to Reduce Disease Transmission Through Organ Transplantation

Provided by Infection Control Today

4 hours ago

Posted in News, Transplantation, Guidelines, Hepatitis, Human Immunodeficiency Virus (HIV)

The U.S. Department of Health and Human Services (HHS) has released a new guideline to improve patient safety by reducing unexpected disease transmission through organ transplantation. This guideline updates the 1994 U.S. Public Health Service (PHS) guideline for preventing transmission of human immunodeficiency virus (HIV) through organ transplantation and adds guidance for reducing unexpected transmission of hepatitis B virus (HBV) and hepatitis C virus (HCV) through organ transplants.

The 2013 PHS Guideline for Reducing Human Immunodeficiency Virus, Hepatitis B Virus and Hepatitis C Virus Transmission through Organ Transplantation, published in Public Health Reports, recommends the use of more sensitive tests so that patients can be informed of risks to the greatest extent possible and protected from unintentional infections caused by transplanted organs.

The major changes from the previous PHS guideline are:

• Recommendation that donors be screened for both HBV and HCV, in addition to HIV. Although organ donors are routinely screened for HBV and HCV, there were no specific PHS recommendations for this screening included in the 1994 guideline.

• Recommendation for new, more sensitive laboratory testing. Since the 1994 PHS guideline was published, more sensitive tests for HIV, HBV and HCV have become available. The 2013 guideline recommends the use of more sensitive tests for living and deceased organ donors.

• Inclusion of a revised set of risk factors for HIV, HBV or HCV infection. Updated information about risk factors for these diseases can give clinicians a clearer picture about possible risks associated with donated organs to improve recipient informed consent, and in certain circumstances, to trigger more sensitive laboratory testing of the donor and recipients.

• Focus on organs and vessel conduits recovered for transplantation, and not on tissues, eyes or cellular products. The Food and Drug Administration (FDA) has implemented more comprehensive regulations for tissue and semen donors since the 1994 PHS guideline was published.

• Recommendation for a robust informed consent discussion between the transplant candidate (or medical decision maker) and the clinician. With the availability of more sensitive tests, doctors and patients can have a more thorough discussion about potential risks and benefits associated with accepting and rejecting individual organs.

For more information about transplant safety, CLICK HERE

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June 18, 2013

Soon, implantable sensor can detect early stages of organ transplant rejection

Last Updated: Tuesday, June 11, 2013,20:55

Washington: The Ohio State University is working on a new technology, which will pave the way for low-cost electronic devices that work in direct contact with living tissue inside the body.

The first planned use of the technology is a sensor that will detect the very early stages of organ transplant rejection.

Paul Berger, professor of electrical and computer engineering and physics at Ohio State, explained that one barrier to the development of implantable sensors is that most existing electronics are based on silicon, and electrolytes in the body interfere with the electrical signals in silicon circuits.

Other, more exotic semiconductors might work in the body, but they are more expensive and harder to manufacture.

Berger and his colleagues have described a new, patent-pending coating that that they believe will bridge that gap.

In tests, silicon circuits that had been coated with the technology continued to function, even after 24 hours of immersion in a solution that mimicked typical body chemistry.

The researchers submerged the coated test sensors in fluid for up to 24 hours, removed them from the solution, and then ran a voltage across them to see if they were working properly. The tests showed that the oxide coating effectively blocked electrolytes from the solution so the sensors remained fully functional.

Once developed, a device using this technology could detect certain proteins that the body produces when it`s just beginning to reject a transplanted organ. Doctors would insert a needle into the patient`s body near the site of the implanted organ. Silicon sensors on the needle would detect the protein, and doctors would know how to tailor the patient`s dosage of anti-rejection drugs based on the sensor readings.

The work represents a first step toward fabricating devices that could be implanted in the body long-term, Berger said.

Though the current study describes a silicon sensor coated with aluminum oxide, he envisions that other devices could utilize coatings made from other materials such as titanium. Such coatings could even be tailored to boost the performance of sensors or other biomedical devices.

In particular, Berger sees a potential use for coated polymer semiconductors that goes beyond sensing chemicals in the body. He suspects that such semiconductors could replace nerves in the body that have been damaged by disease or injury.

The study was appeared in the journal Electronics Letters.

Source

June 11, 2013

Organ transplants - to donate or not

20130611_103924_organs11613

By Liu Zhihua
China Daily/Asia News Network
Tuesday, Jun 11, 2013

Serious health problems, such as heart or kidney or liver failure, cancer, blindness, or Parkinson's disease affect millions of people around the world, altering the quality of life and putting a major burden on family members and society.

In some cases, an organ transplant may be the only treatment or lifeline available - for those who have access to the procedure. But, even then, there is such high demand for organs that many people can die before they qualify for a suitable organ.

According to the Red Cross Society of China, which runs a State-sanctioned organ donor programme, China has about 1.5 million people in need of an organ transplant every year, but only about 10,000 can undergo the procedure.

The reason for this are age-old but can be illustrated by a recent incident in April. When the family of a trucker, in Wuhan, Hubei province who had died donated his organs and helped five people on the transplant list, the news spread like wildfire on the Internet. The man, Chen Gang, 35, had suddenly lost consciousness on April 21, at work, and by the second day when there appeared to be no hope of saving him, his family told the doctors they wanted to let someone else benefit from his organs.

For Yin Shumin, a 45-year-old farmer in Henan, and four other men, that one decision was a major turning-point. Yin underwent a life-saving heart transplant at Wuhan's Union Hospital, on April 23, something he had been waiting for since January.

Yin's wife, who didn't give her name, had this to say, "No one could possibly understand how worried I was while we were waiting for the results. He was getting weaker every day and the doctors explained that if he couldn't get a proper heart, he would die in a few months."

The same day that Yin was operated on, a patient he had met in the hospital, who had been waiting for a heart transplant a long time, died.

Where are the donors?

Yin was lucky getting a perfect match, out of several dozen people with heart problems who were still waiting.

Dong Nianguo, the chief surgeon working on Yin and a major specialist in that field, noted regretfully, "A lot of people die waiting for a heart."

But, with so few organ donors and the huge difference between the need and the supply, things can look rather grim. In contrast, the surgical procedures for many organ transplants in China are mature enough to ensure a high rate of success, but unfortunately for those in need of a heart, kidney, liver, lung, or a cornea, even with the expert service, prospects can be quite dim.

So, "When something unusual happens, it makes the news, and people notice what Chen and his family did, because so few people do the same", Dong said.

In this regard, there was a national pilot programme that started in 2010, to solicit organ donations, in 19 provinces, including Hubei. Red Cross branches have set up offices to make people more aware of the importance of organ donations and to connect with area hospitals to look for potential donors.

Personnel from these offices talk with dying patients or their family members to try to get their permission to donate. And, a computerized system tracks the needs of waiting patients in relation to the state of the disease and the distance from a potential donor, then identifies the most likely recipient.

Chen and his family who were willing to donate his organs became a part of this system. But statistics show, by the end of February, only 659 people had donated organs, a total of only 1,804, via this system.

Xiu Dianrong, a liver transplant surgeon at Peking University's No 3 Hospital, said, "There are a lot of potential donors, but few become donors."

At Xiu's hospital, one of the earliest to undertake liver transplants in China, the lack of organs is the biggest major obstacle to saving lives. It is certainly not the technical difficulties.

The Chinese have little exposure to a philosophical approach to death, which is an unpleasant cultural topic, and few can accept the idea of donating organs of a loved one who is dying, or even talk about the possibility, Xiu commented.

But, Xiu continues, death, as well as illness and aging, need to be perceived as a natural part of life, and people should not be afraid.

Alternatives

Dong, the cardiac surgeon, also expresses the hope that more people will change their attitude toward donating organs and understand the meaning of such behaviour and its impact on others.

Meanwhile, not every organ for a transplant necessarily needs to come from a human, some people are already looking to animals for the solution.

Historically, doctors have made attempts to replace failing human organs with those of animals such as pigs or monkeys, but these xenotransplants, or inter-species transplants, have failed for unknown or unresolved reasons.

In recent years, there have been some breakthroughs. In the mid 1990s, scientists in the US were pioneers with a procedure that used pigs as the most likely organ choice among animals.

Now, with the development of genetic technology, researchers have been looking for ways to genetically modify donor animals to prevent organ rejection, and more genetically modified pigs have become available, with human genes, to avoid a human immune system reaction.

On May 8, 2013 , doctors at the Xijing Hospital in Xi'an, Shaanxi, announced that they had planted part of a liver from a genetically altered pig to a monkey.

Source

May 20, 2013

Fewer Kids Die While Waiting for New Organs

By Kathleen Struck, Senior Editor, MedPage Today

Published: May 20, 2013

Reviewed by Robert Jasmer, MD; Associate Clinical Professor of Medicine, University of California, San Francisco and Dorothy Caputo, MA, BSN, RN, Nurse Planner

Action Points

  • Fewer children died waiting for organ transplants in the past decade after policy changes to the national organ allocation system.
  • Note that recipients of pediatic organ donation after circulatory determination of death increased, while recipients of pediatric donation after neurologic determination of death decreased over the study period.

Fewer children died waiting for organ transplants in the past decade after policy changes to the national organ allocation system, researchers stated.

The number of children dying before they could receive a transplant dramatically decreased from 262 to 110 as pediatric transplants increased from 2001 to 2010, stated Jennifer Workman, MD, of the University of Utah School of Medicine in Salt Lake City and colleagues, in Pediatrics.

The authors attributed major policy shifts for liver and kidney transplant protocols to the increase in transplants to children 17 and younger. Those organs compose the greatest percentage of solid-organ transplants in children, they noted.

Changes under the United Network for Organ Sharing (UNOS) allowed for increased transplantation from circulatory death donors while transplants from brain death donors decreased. UNOS is the private, non-profit organization that manages the nation's organ transplant system under the federal government, according to it website.

In fact, recipients of pediatric donation after circulatory determination of death (DCDD) increased by 174% (50 to 137), while recipients of pediatric donation after neurologic determination of death (DNDD) decreased by 13% (2,992 to 2,614), Workman and colleagues stated.

"The increased use of DCDD kidneys and livers for transplantation into children may be one method to increase the number of pediatric transplants," wrote Heung Bae Kim, MD, and Craig Lillehei, MD, of Harvard Medical School and Boston Children's Hospital in an accompanying commentary.

However, "efforts to pursue living donation as the primary option for kidney transplantation in children" should not be ignored, Kim and Killehei wrote.

Other changes included policies affecting pediatric liver transplants, a liver disease end-stage scoring system, and, regional sharing of pediatric liver donors.

"Our analysis suggests that these liver allocation changes improved access to transplantation for children with liver failure and support earlier reports which investigated the effect of the model for end-stage liver disease/pediatric end-stage liver disease scoring systems on pediatric liver transplantation," they wrote.

The authors obtained data from the Organ Procurement and Transplantation Network for U.S. organ recipients and donors from 2001 to 2010. Data were stratified by age, organ, and DCDD, and transplant wait-list removals due to death.

The criteria for donors for pediatric kidney transplants was expanded, giving pediatric recipients priority to kidney donors younger than 35. Pediatric kidney transplants increased an average 61 per year, the authors wrote.

"The kidney shortage remains an enormous problem for the transplant community, and allocation strategy changes to maximize donor kidney utilization are currently being assessed," they wrote.

The authors noted that adult recipients far outnumber child recipients, while adult donors are more numerous than child donors.

The innovative techniques of split, live donor, and reduced liver grafts have increased the number of donations to transplants and decreased waiting times, the authors wrote, although data are conflicting about outcomes.

Interestingly, when a liver is split for size and first offered to a child, the other half typically goes to an adult recipient. However, if a liver is first offered to an adult, no regulations require that the adult be asked to split the liver with a child.

"To increase the availability of split livers from organs offered primarily to adults, adult transplant teams need to place greater importance on this option," the authors said.

In the time period the authors assessed, 14,221 children received organ transplants from deceased donors. The transplant universe was broken down as:

  • Pediatric organ transplants increased from 1,170 to 1,475, peaking at 1,628 in 2009
  • Pediatric recipients increased 799 to 971
  • Pediatric donor organs used for transplantation decreased from 3,042 to 2,751
  • Pediatric donors decreased from 987 to 841
  • Pediatric transplant donors to adult recipients decreased 2,243 to 1,780

The majority of pediatric donor organs are still transplanted into adults, specially DCDD organs that are used almost exclusively for adult recipients.

"Although it is true that pediatric donation (both DCDD and DNDD) does not always directly benefit other children, improving the overall process of donation and increasing organ recovery allows for more pediatric transplants and fewer pediatric wait-list deaths," the authors wrote.

The study had some limitations. The data were not indexed for population growth and some of the increased rates of donation and transplantation seen in the study years could be attributed to an increase in the overall population. Also, the database identifies donor organs allocated, not individual donors. Organs from a single donor can be used in up to eight individuals, the authors pointed out.

Finally, "during the study period, advances in the medical management of patients have evolved, allowing some of these children to improve and either delay or not require transplantation," they said.

Workman reported no conflicts of interest. Co-authors reported relationships with the Organ Donation and Transplantation Alliance and Up To Date. The authors reported no external funding.

Kim and Lillehei have served on the Board of the New England Organ Bank and several committees within UNOS. They reported no external funding.

Primary source: Pediatrics
Source reference:
Workman J, et al "Pediatric Organ Donation and Transplantation" Pediatrics 2013; DOI: 10.1542/peds.2012-3992.

Additional source: Pediatrics
Source reference:
Kim H, Lillehei C "Organ Donation for Children: The Road Ahead" Pediatrics 2013; DOI: 10.1542/peds.2013-1005.

Source

June 28, 2012

Surgeons Seek Repeal of Transplant Ban Between HIV-Positive People

As many as 1,000 lives might be saved each year in U.S., experts say

June 27, 2012

By Randy Dotinga
HealthDay Reporter

WEDNESDAY, June 27 (HealthDay News) -- Transplant surgeons plan to meet with U.S. Congressional staff members Wednesday to push for the repeal of a law that forbids HIV-positive patients from getting organ transplants from other HIV-positive people.

If the law is changed, patients infected with the AIDS-causing virus will have more organs available to them for transplantation, advocates say.

"We want to save lives of people with HIV who may otherwise die on the waiting list for organs," said Kimberly Crump, policy officer of the HIV Medical Association, a group of AIDS doctors and researchers.

Crump said the advocates hope to encourage lawmakers to sponsor a bill calling for the law's repeal.

However, hurdles exist. For instance, questions remain about the health risks of transplanting organs between HIV-positive patients, and research is needed to make sure such transplants are safe, experts say. And some transplant surgeons refuse to perform transplants on HIV-positive patients.

Specialists, including Dr. Dorry Segev, director of clinical transplant research at Johns Hopkins School of Medicine, will discuss the special transplant needs of HIV-positive patients at the lunchtime meeting.

HIV-positive patients are vulnerable to a variety of diseases that can threaten their organs if their immune systems weaken. For example, they're susceptible to hepatitis B, which worsens faster in HIV-infected people than others and can lead to liver disease and the need for a liver transplant, explained Dr. Margaret Ragni, a professor of medicine at the University of Pittsburgh Medical Center.

HIV-positive patients are also susceptible to developing kidney problems that require kidney transplants.

HIV-positive patients can receive organ transplants from people who aren't infected with HIV, but federal law banned transplants between HIV-positive patients in the 1980s during the AIDS crisis.

Ragni said medical officials have had a variety of concerns, including fears that the recipients may receive a stronger viral strain from a donor and get sicker, that HIV-related infections could be transmitted during the transplant, or that an organ from an HIV-positive donor may accidentally get transplanted into a patient who doesn't have the virus.

A coalition of medical associations and advocates for AIDS patients, including amfAR, the Foundation for AIDS Research and Human Rights Campaign, maintain that the law is outdated and denies HIV-positive patients access to more opportunities for organ transplants.

Researchers estimate that changing the law could pave the way to saving the lives of 1,000 HIV-positive patients each year in the United States.

Advocates also say a law change will mean that patients who aren't infected with HIV will have quicker access to organs because HIV-positive patients will have a wider array of options.

But even if the law changes, some issues would still need to be resolved, said Dr. Lynda Frassetto, an internist and kidney specialist at the University of California, San Francisco.

Transplants between HIV-positive patients are still experimental, although promising research has been conducted in South Africa, Frassetto said.

Also, some transplant surgeons prefer not to treat HIV-positive patients, Frassetto said. "The transplant surgeons I work with say that some transplant groups don't want to transplant HIV patients," she said. "They don't want to be exposed to the blood and don't have the infrastructure in place to handle the complicated problems they get."

Recently, a panel of U.S. Department of Health and Human Services experts voted to uphold a decades-old ban on gay men donating blood, while advocating for more research on the controversial issue. Advocates say that improved screening techniques make the ban unnecessary.

Source

February 22, 2012

Rationing life-saving resources – how should allocation policies be assessed in solid organ transplantation

REVIEW

Transplant International

Volume 25, Issue 1, pages 3–6, January 2012

James Neuberger

Article first published online: 8 SEP 2011

DOI: 10.1111/j.1432-2277.2011.01327.x

© 2011 The Author. Transplant International © 2011 European Society for Organ Transplantation

Summary

Because the demand for solid organ transplantation exceeds the availability of donated grafts, there needs to be rationing for this life-saving procedures. Criteria for selection of patients to a national transplant list and allocation of donated organs should be transparent yet there is no consistent approach to the development of such guidelines. It is suggested that selection and allocation policies should comply with minimum standards including defining of aims of the allocation process and desired outcome (whether maximizing benefit or utility or ensuring equity of access), inclusion and exclusion criteria, criteria for futility and suspension and removal from the transplant list, appeals processes, arrangements for monitoring and auditing outcomes and processes for dealing with noncompliance. Furthermore, guidelines must be consistent with legislation even though this may compete with public preference. Guidelines must be supported by all stakeholders (including health-care professionals, donor families and potential transplant candidates). However, there must also be flexibility to allow for exceptions and to support innovation and development.

Solid organ transplantation is primarily a life-saving procedure. Because of the shortfall between the number of people who could benefit from a transplant and the availability of organs, this life-saving procedure must be rationed. Therefore, there needs to be clear criteria for selection (who gets on to the transplant list) and allocation (who receives a donated organ) of organs from deceased donors.

The aim of this review is to suggest criteria by which such policies should be assessed rather than suggest which approach should be adopted.

Criteria for selection

Listing everyone who might benefit will reflect the need for transplantation but will make managing the list difficult and give many an unrealistic hope of a graft, although some may feel that a small chance is better than none. If access to the list is to be restricted to the availability of organs, then that basis needs to be determined and revised as organ availability changes.

Criteria for allocation

There are several different approaches to organ allocation. In the US, livers from deceased donors are allocated using an approach to reduce the mortality on the waiting list; in contrast, donated lungs are allocated according to a model of transplant benefit.

Need

A needs-based policy prioritizes those at greatest risk of death. While the impact of such a policy has had varying success, in general it has been successful [1] but is associated with increased cost and denies access to transplantation to those with good organ function but an unacceptable quality of life that is corrected by transplantation. The rights of the dying to a life-saving graft must be balanced with those with an intolerable quality of life.

Outcome

Outcomes can be considered in various ways: from listing or transplantation, for patient or graft, absolute or adjusted for quality of life; choice of outcomes will impact on criteria and may be difficult to predict [2].

Utility

Allocation according to utility, in effect, places the survival of the graft as the priority.

Benefit

Allocation according to benefit will give the graft to that recipient who will have the maximum benefit when survival without and with transplant are estimated. Because the recipient with the shortest anticipated survival without transplantation may well be the sickest, the post transplant survival may be reduced compared with a less sick recipient and so the utility reduced and health-care costs increased [3]. To avoid futility, the concept of minimum benefit is generally accepted: for liver recipients, this is usually and arbitrarily taken as at least a 50% probability of surviving 5 years with a quality of life that is acceptable to the recipient [4].

Equity

In this context, equity has a variety of meanings. Equity of access may mean that every person in need of a transplant will have a similar opportunity, regardless of other factors such as age, gender, co-morbidities and expected survival with or without a transplant. Organs could be allocated on a first-come first-served basis; however, this approach would have to be modified to include those factors that significantly affect outcome such as blood group or donor-recipient size match. Equity of access may mean that those with similar characteristics will all be treated in the same way. Geographic equity implies people awaiting a graft will have the same chance of getting a graft irrespective of where they live or receive treatment.

Justice, fairness and prejudice

Most people have clear opinions that selection and allocation should be fair and just yet such concepts are poorly defined. The public gives high priority to children (irrespective of benefit) and low priority to those with self-induced (or perceived self-induced) disease: value to society and ability to pay should not be factors [5,6]. Public opinion, as expressed by the media, is inconsistent: anger was expressed both when a liver was given and denied to individuals with alcohol-related liver injury [7,8].

Most allocation processes are dependent on models that predict outcome. Models give potentially misleading reassurance as survival probabilities have wide confidence intervals and are based on historical data; data may be incomplete and collected differently in different units, key data may not be collected or even recognized. There are other considerations. Most models of survival are static ones and their validity in a dynamic situation, with repeated application over time, should be confirmed before widespread adoption. Furthermore, because there are usually many potential recipients for an offered organ, ranking based on small differences may lead to inequity. More importantly perhaps, extrapolation from matched donor/recipient pair to a nonmatched combination may give misleading information.

Although transplantation is usually associated with a significant improvement in the quality of life, yet there are relatively few studies assessing the quality of life and outcomes have usually focussed on survival. It could be argued that allocation should be based not just on survival (absolute or benefit) but quality of life adjusted life-years gained.

It should be clear whether survival is considered for the patient (from either listing or transplant), for the graft. If the focus of allocation is based on most efficient use of scarce resources (organs), then the prime outcome should be graft survival.

Local or national allocation?

Donated organs may be allocated on a national, regional or local basis. National allocation systems require the development and acceptance of validated, objective models of ranking patients according to agreed criteria. Advantages include objectivity and transparency: however, a significant proportion of offers are not accepted for the first candidate [9]. Selection of the next ranked recipient may add to the cold ischaemic time and so reduce the viability of the graft. Local allocation requires the local team to select the recipient: this will allow inclusion of clinical factors that are not included in the models and possibly better matching of donor and recipient. This approach is usually not as objective or transparent as national allocation, requires an audit trail and a process to ensure fairness between centres.

Transplantation and the law

Transplantation is, quite rightly, subject to legal constraints and challenge. Discrimination is illegal where it is based on age, gender, ethnicity or disability. Access to transplantation should be independent of occupation, life-style, ability to pay, value to society. Disability and age are relevant if, and only if, they affect the outcome of transplantation and cannot be obviated by available interventions.

Other issues
Exceptions

Few policies can encompass every eventuality so provision has to be made for consideration of the exceptional case. Most clinicians consider their duty of care to the patient in front of them and will rightly act as the patient’s advocate. Where there is a rationed resource, allocation of a life-saving organ to one individual will deny another. Thus, the advocate should not make a unilateral decision to list or not an individual but there needs to be a clear, defined process to balance the rights of the exceptional case with the rights of others.

Innovation and research

There are concerns that strict policies will prevent innovation and research [10]. Thus, policies must allow evaluation of new indications and procedures.

Age

The public prioritizes younger recipients although this is counter to age discrimination legislation. The ‘good innings’ argument supports disadvantaging the older recipient. Younger recipients could be prioritized as transplantation may allow catch-up growth and less time on dialysis may prevent psychological and behavioural problems later [11,12]. The younger recipient is more likely to tolerate surgery than the older recipient and is more likely to have greater benefit in terms of life-time survival [13]. Thus, there may be justification for prioritizing younger recipients; this should be done on the basis of utility or benefit rather than age.

Ethnicity

Discrimination on the grounds of ethnicity is both morally and legally unacceptable. The relatively low donation rates amongst some ethnic groups [14] may lead to lower rates of transplantation where blood group and tissue type are relevant. It needs to be agreed whether equity (in terms of waiting time) should compete with utility.

Compliance

There needs to be clear systems in place to assess and respond to noncompliance.

Unforeseen outcomes

Following the example of the US, man countries have adopted an allocation system based on the MELD score, which is used to prioritise livers to those at greatest risk of death awaiting transplantation. The approach is transparent and based on objective laboratory measurements. There are well described limitations, such as concerns about the accuracy of the model, the measurement of the constituent analytes, but there are other limitations: the model virtually excludes from deceased donor transplantation those with good liver function but a poor quality of life from, for example, chronic encephalopathy or intractable pruritus, but also in some countries, notably Germany, is said to have contributed to worse outcomes [15].

How should policies be assessed?

If donated organs are considered a national, life-saving resource, policies should be transparent and clear to all those involved. Against this background, how should selection and allocation policies be developed and evaluated? There is no reason why similar considerations for all organs. For example, in renal failure, patients can be managed with dialysis even though quality of life and length of life is inferior to transplantation; some of those in heart failure may be helped by ventricular assist devices whereas there exists no support for those in liver failure.

Although the responsibility for selection and allocation policies are given to a statutory body, their development and endorsement should be by several stakeholders, including not only those health-care clinicians who look after potential and actual transplant patients, but representatives of patients, their families and carers, donor representatives, ethicists and other interested parties.

It is suggested that the policies on selection and allocation should address the following questions:

  1. Are the aims of the policy defined?
  2. Have the competing aims of allocation been considered and balanced? The aims of allocation may be single or multiple
  3. Are the aims supported by the health-care clinicians, ethicists, representatives from patient groups, donor families and the informed general public.
  4. Is there a minimum level of benefit and, if so, what is this benefit and how is this defined?
  5. Are there criteria for futility?
  6. Are the policies based on objective and validated criteria?
  7. Are the policies compatible with current national legislation?
  8. How and when will the outcomes be reviewed
  9. How often are the aims, implementation reviewed (and revised if appropriate)?
  10. What is the process for managing exceptions?
  11. How will the policies be adapted to support innovation and development?
  12. How will noncompliance be managed?

References

Source

January 26, 2012

System to deliver organ transplant drug -- without harmful side effects

40102_rel

This is professor Ravi Kumar of the University of Strathclyde. Credit: University of Strathclyde

Public release date: 26-Jan-2012

Contact: Paul Gallagher
corporatecomms@strath.ac.uk
44-141-548-2370
University of Strathclyde

A new system for delivering a drug to organ transplant patients, which could avoid the risk of harmful side effects, is being developed by scientists at the University of Strathclyde in Glasgow.

The drug, cyclosporine (CsA), is widely used in transplant operations and helps prevent the patient's body rejecting the organ but it can cause adverse drug reactions, of which the most serious problems are kidney and liver damage, in the doses which are currently administered in the long term.

The gap between a safe, effective dose of the treatment and a toxic dose is extremely narrow but the Strathclyde scientists have found a way of capturing CsA in very small amounts. The new system, developed in laboratory tests, enables nanoparticles of the drug to be delivered orally so that the strength of the dose can be maintained, but at a level and in a form which spares kidneys from damage.

Professor Ravi Kumar, of the Strathclyde Institute of Pharmacy and Biomedical Sciences, led the research. He said: "CsA is very useful in transplants and treating conditions such as arthritis, lupus and some forms of diabetes, but we need to address the risks it can present to the kidney and liver, apart from various other toxicities such as convulsions and high blood pressure.

"The damage it can cause can be dealt with if it's caught at an early stage but can be irreversible if it continues unchecked. Furthermore, existing formulations of cyclosporine contain castor oil-based vehicle which is used owing to the drug's poor solubility in water but which can be toxic.

"By entrapping CsA in nanoparticles, we aimed to match the maximum concentration of the most potent formulation of the drug in market. In tests, we were able to strike a balance between strength, efficacy and safety and were able to make a marked increase in the drug's bioavailability- the level of the drug which becomes active in the system.

"We were also able to reduce the toxic effects on the kidneys by slow release of the nanoparticles, which brought the drug gradually to its maximum concentration.

"As well as its use in transplants, we hope to look into the effectiveness of this system with arthritis and address what is a hugely debilitating condition for many people."

The research paper has been published in the Journal of Biomedical Nanotechnology.

Further current research is aimed at proving the therapeutic efficacy and long-term safety of cyclosporine, with a special focus on the safety of carriers- polymers used in the formulation- to fulfil regulatory requirements. The safety studies element of the research has been funded by the Cunningham Trust Scotland and will conclude early in 2013.

The research forms part of Health Technologies at Strathclyde- one of the principal themes of the University's Technology and Innovation Centre (TIC), a world-leading research and technology centre transforming the way universities, business and industry collaborate.

Through Health Technologies at Strathclyde, academics work with industry and the health sector to find technologies for earlier, more accurate disease detection and better treatments, as well as life-long disease prevention.

Source

December 14, 2011

Can Transplant Recipients Be Weaned Off Their Immunosuppresive Drugs?

Article Date: 13 Dec 2011 - 1:00 PST

Transplant surgeons live in the hope that one day they will be able to wean at least some of their patients off the immunosuppressive drugs that must be taken to prevent rejection of a transplanted organ. A team of researchers led by Alberto Sánchez-Fueyo, at the University of Barcelona, Spain, has now identified markers that might make this possible for liver transplant recipients.

Transplant recipients must take immunosuppressive drugs for the rest of their lives to prevent rejection of their transplanted organ; this has serious negative health consequences. It would be helpful if it were possible to determine what would happen if a patient was weaned from their immunosuppressive drugs: would they reject their transplanted organ or would their immune system be sufficiently tolerant of the transplant that it would not be rejected?

Sánchez-Fueyo and colleagues determined that liver transplant recipients with higher blood levels of proteins involved in handling iron (hepcidin and ferritin) could tolerate weaning from their immunosuppressive drugs. Moreover, measuring expression in the liver of genes involved in handling iron enabled Sánchez-Fueyo and colleagues to predict the outcome of immunosuppressive-drug withdrawal in an independent set of patients. They therefore suggest that they have identified a way to accurately pick out those liver transplant recipients who would be good candidates for drug-weaning protocols.

TITLE: Intra-graft expression of genes involved in iron homeostasis predicts the development of operational tolerance in human liver transplantation

Source

November 22, 2011

Organ Transplants and Cancer Risk


November 21, 2011

Organ transplant recipients have a high risk of developing 32 different types of cancer, according to a new study. Future research to understand why may lead to better strategies for preventing cancer among transplant recipients.

In 2010, over 28,000 organ transplantations were performed in the U.S., including 16,899 kidney, 6,291 liver, 2,333 heart and 1,770 lung transplants. Transplant recipients are known to be at a higher risk for developing cancer than the general population. But past studies of cancer risk in transplant recipients focused mainly on those who received kidney transplants. Other studies were too small to accurately estimate risk for all but the most common cancer types.

For a more comprehensive look, a research team led by Dr. Eric A. Engels of NIH's National Cancer Institute (NCI) evaluated medical data from more than 175,000 transplant recipients—about 40% of all organ transplant recipients in the country. Their report appeared in the November 2, 2011, issue of the Journal of the American Medical Association.

The researchers found a twofold overall increased risk of cancer among transplant recipients. They noted elevated risk for 32 different types of cancer, some known to be related to infectious agents (such as anal cancer and Kaposi sarcoma) and others unrelated to infections (such as melanoma and thyroid cancer). The most common cancers among transplant recipients were non-Hodgkin lymphoma (14% of all cancers in transplant recipients), lung cancer (13%), liver cancer (9%) and kidney cancer (7%).

The risk of cancer was affected by the type of transplant. Lung cancer risk, for example, was highest in lung recipients. Smoking-related disease is often the reason for a lung transplant, and lung cancer typically arises in the remaining diseased lung rather than the transplanted one. The risk of liver cancer was elevated only among liver recipients. That might be partly explained by hepatitis B or C infection in the transplanted liver or by the fact that diabetes is common among transplant recipients. The risk of kidney cancer, in contrast, increased for all recipients.

“While transplantation is a life-saving therapy for patients with end-stage organ disease, it also puts recipients at an increased risk for developing cancer, in part because of medications administered to suppress the immune system and prevent rejection of the organ,” Engels says. “The cancer risk among transplant recipients resembles that of people with HIV infection, whose risk is elevated for infection-related cancers due to immunosuppression.”

The researchers now plan to focus on the cancers that occur at higher rates among transplant recipients. They aim to discover how medical conditions and immunosuppressive medications contribute to cancer risk. “In addition, we hope our findings will stimulate other research into the carcinogenic mechanisms associated with organ transplantation,” Engels says.

Source

June 29, 2011

Estimated Risk of Human Immunodeficiency Virus and Hepatitis C Virus Infection Among Potential Organ Donors From 17 Organ Procurement Organizations in the United States

K. Ellingson; D. Seem; M. Nowicki; D. M. Strong; M. J. Kuehnert

Posted: 06/27/2011; American Journal of Transplantation. 2011;11(6):1201-1208. © 2011 Blackwell Publishing

Abstract and Introduction

Abstract

To prevent unintentional transmission of bloodborne pathogens through organ transplantation, organ procurement organizations (OPOs) screen potential donors by serologic testing to identify human immunodeficiency virus (HIV) and hepatitis C virus (HCV) infection. Newly acquired infection, however, may be undetectable by serologic testing. Our objective was to estimate the incidence of undetected infection among potential organ donors and to assess the significance of risk reductions conferred by nucleic acid testing (NAT) versus serology alone. We calculated prevalence of HIV and HCV—stratified by OPO risk designation—in 13 667 potential organ donors managed by 17 OPOs from 1/1/2004 to 7/1/2008. We calculated incidence of undetected infection using the incidence-window period approach. The prevalence of HIV was 0.10% for normal risk potential donors and 0.50% for high risk potential donors; HCV prevalence was 3.45% and 18.20%, respectively. For HIV, the estimated incidence of undetected infection by serologic screening was 1 in 50 000 for normal risk potential donors and 1 in 11 000 for high risk potential donors; for HCV, undetected incidence by serologic screening was 1 in 5000 and 1 in 1000, respectively. Projected estimates of undetected infection with NAT screening versus serology alone suggest that NAT screening could significantly reduce the rate of undetected HCV for all donor risk strata.

Background

Transmission of human immunodeficiency virus (HIV) and hepatitis C virus (HCV) can occur through solid organ transplantation.[1–4] Strategies to reduce transmission of these bloodborne pathogens from donor to recipient include assessing donor medical and behavioral risk, and laboratory testing for anti-HIV and anti-HCV seroreactivity in all potential organ donors. For most laboratory tests, there are window periods during which infection cannot be detected in donors with newly acquired infection. Compared with serologic testing, nucleic acid-amplification tests (NAT) shorten the window period through detection of the virus in plasma. In 2007 a donor, who was found to be nonreactive for HIV and HCV by routine serologic screening, was later found to be NAT-positive after four organ recipients were infected with HIV and HCV.[5] This incident underscored the need for a better understanding of the prevalence of HIV and HCV among potential organ donors and for evaluation of more sensitive screening tests to reduce the risk of undetected infection.

Estimates of HIV and HCV infection rates during the window period for serologic testing (i.e. undetected infection) were recently reported in US blood and tissue donors but have not been estimated for organ donors. For first-time blood donors, 1 in 3.1 million donations for HIV and 1 in 270 000 for HCV were nonreactive by serology assays, but positive by NAT.[6] The estimated risk of undetected infection among tissue donors for serologic testing is much higher: 1 in 55 000 for HIV and 1 in 42 000 for HCV.[7] The US Food and Drug Administration (FDA) currently mandates NAT screening for all blood and tissue donors for HIV and HCV, but no government agency mandates NAT screening for organ donors.[8] As of 2008, approximately one-half of the 58 US organ procurement organizations (OPOs) voluntarily performed HIV and HCV NAT on all or at least some subset of their potential donors.[9]

When transplant centers decide whether to accept an organ for transplantation, they rely on serologic test results as well as the 'high risk' designation assigned by OPOs during donor evaluations. OPOs are required to document the potential donor's infectious risk status utilizing risk criteria for HIV transmission outlined in the PHS 1994 guidelines.[10] Many OPOs have also used these criteria to evaluate risk for hepatitis virus transmission, as indicated by donor medical-behavioral history questionnaires (Appendix 1). A 2008 survey of US OPOs reported that, on average, 7.7% of an OPO's donors with organs recovered for transplantation, were designated as high risk, ranging from 2.3 to 26.1%.[11] Because transplants can be life saving, recipients and transplant surgeons may accept organs from high risk donors due to the shortage of available organs for transplantation; in 2008, 9465 candidates died or became too ill to benefit from transplantation while waiting for an available organ.[12] Organ acceptance may be influenced by type of organ needed, type of risk factor identified, medical health status of the candidate and laboratory testing results.

To appropriately weigh the risk of unintentional infection with HIV or HCV against the risk of delayed transplant, providers and patients must be able to reasonably assess risk. Currently there are no published studies that estimate the risk of undetected infection among potential organ donors by serologic testing in the United States. The objectives of this study were to (1) calculate the prevalence of HIV and HCV among a large subset of potential organ donors in the United States; (2) estimate the incidence of HIV and HCV among potential organ donors during the window periods for serologic and NAT screening.

Materials and Methods

Study Population

A sample of 17 of the 58 OPOs in the United States participated voluntarily in this study; these 17 OPOs manage over half of US organ donors.[12] Participating OPOs constituted a convenience sample of OPOs that submitted serologic screening results through three large reference laboratories to the CDC for the designated study period. Serologic tests were performed at local OPO, hospital or reference laboratories. The geographic distribution of participating OPOs was concentrated in the northeast, mid-Atlantic and western states, including Alaska (Figure 1). Nucleic acid testing results were not available for the majority of participating OPOs and were available for only a fraction of donors within OPOs performing NAT; thus NAT results were not considered for analysis in this study.


Figure 1.
Geographic distribution of the 17 organ procurement organizations (OPOs) participating in the study; participating OPOs fully covered states shaded dark gray and partially covered states shaded light gray, representing over 50% of all US organ donors.

Demographic and serologic data from January 2004 to July 2008 were requested from participating OPOs for all potential organ donors, including those who were consented but subsequently had no organs recovered. Serologic data collected from participating OPOs included anti-HIV and anti-HCV test results. Western blot (WB) confirmatory testing results for anti-HIV and recombinant immunoblot assay (RIBA) confirmatory tests for anti-HCV were also collected when available. Data on high risk designation, as determined by the OPO based on criteria presented in Appendix I, were collected. Participating OPOs also submitted information on the assay and generation of the specific tests used over the study period. All potential donors for whom data were requested had legal consent for organ donation and serologic test results. This study was determined to be exempt from human subjects review by the institutional review board at the Centers for Disease Control and Prevention in August, 2008.

Prevalence of Bloodborne Pathogens Among Potential Organ Donors

To calculate crude prevalence for HIV and HCV among potential donors, the number of positive results for a given serologic test was divided by the total number of potential donors tested. To account for false positive serologic results, adjustment factors were created directly from data submitted by OPOs from subsets of donors with WB or RIBA confirmatory tests available. For example, within the subset of HIV-positive serologic tests with WB availability, the number of positive anti-HIV serologies with positive WB results was divided by the number of all HIV-positive serologies with WB positive, negative or indeterminate results to calculate a conservative adjustment factor; a more liberal adjustment factor using both positive and indeterminate WB results as the numerator was calculated. The same process was followed for HCV, using available RIBA testing to create conservative and liberal adjustment factors. For HIV, there were 11 antibody-reactive cases for which confirmatory WB tests were available; 4 (0.36) had positive WB results, and 2 (0.18) had indeterminate results. For HCV, there were 183 antibody-reactive cases with RIBA confirmatory tests available; 142 (0.78) were RIBA positive, and 11 (0.06) were RIBA indeterminate. The adjustment factors were determined to be the midpoint of the conservative and liberal estimates: 0.45 for HIV and 0.81 for HCV.

The prevalence of HIV and HCV among potential organ donors was calculated for all potential donors and for donors stratified by OPO risk designation. Designations included 'normal risk' (i.e. actively designated as not 'high risk'), 'high risk' and 'missing risk' (i.e. risk status was either not recorded or not available for this study). The raw prevalence was multiplied by an adjustment factor (described above) to reflect prevalence adjusted for false positive serologic tests. Credible intervals surrounding the prevalence estimates were generated using Monte Carlo simulations for each pathogen and risk category. For the simulations, the number of tests reactive by serology was assigned a Poisson distribution. The adjustment factors were assigned triangular distributions with minimum and maximum values reflecting the conservative and liberal adjustment factor calculations: (0.36–0.55) for HIV and (0.78–0.84) for HCV. Values were drawn from these probability distributions for 10 000 repetitions, resulting in 95% credible intervals.

Estimating Incidence of Undetected Infection Among Potential Organ Donors

Incidence of undetected HIV and HCV infection in potential organ donors was calculated using the incidence-window period model originally developed for blood donors, which involves multiplying the incidence of infection (i.e. the yearly rate of newly acquired infection) in the donor population by the length of the window period.[13–16] The infectious window period is defined as the time after infectivity when the virus reaches a sufficient level in plasma to be transmissible up to the time of detection by NAT or serologic screening methods.[14,16,17] The incidence-window period model was recently modified for estimation of undetected infection in the tissue donor population in the United States and to organ and tissue donor populations in Canada.[7,16] Incidence in the blood donor population can be determined by examining seroconversion in repeat blood donors.[4] Since there are no repeat donations in the deceased potential organ donor population, incidence must be estimated by extrapolating from blood donor data.

Estimating the yearly incidence of HIV and HCV among potential organ donors required making projections from incidence estimates in blood donors during the same time period. It was assumed that prevalence differences between the organ donors in this study and blood donors in published literature would reflect differences in incidence. Thus, the ratio of organ donor prevalence to published blood donor prevalence was multiplied by the published incidence in blood donor population to attain the incidence in the study population of organ donors. Published incidence and prevalence rates from a population of blood donors who had donated to Red Cross Blood Services from 2007 and 2008 were used to make this calculation.[18]

To create ranges around incidence calculations, Monte Carlo simulations were used to reflect the combined variation in input parameters, including organ donor prevalence as calculated in this study, blood donor prevalence and incidence as reported in the literature, and window periods for serologic and NAT tests (Table 2). Since the variability surrounding window period inputs was unknown, triangular distributions with 50% variation were assigned to reflect unknown (and thus conservative) distribution and variance parameters. Ranges around incidence estimates were generated from 10 000 repeated calculations resulting in a 95% credible interval around the incidence estimates. All analyses were calculated with SAS 9.2 and in Crystal Ball software applications.

Results

Serologic data were submitted for 13 677 potential donors (n = 13 607 for anti-HIV and n = 13 349 for anti-HCV) (Table 1). For anti-HIV, overall adjusted prevalence was 0.21% with a credible interval (CI) of 0.15–0.29%. Prevalence was lowest for normal risk donors (n = 11 245) at 0.10% (CI = 0.06–0.16%) and highest for donors with missing risk status (n = 1182) at 1.00% (CI = 0.57–1.54%). For high risk donors (n = 1180), prevalence was 0.50% (CI = 0.21–0.86%). The overall adjusted prevalence for anti-HCV was 5.58% (CI = 5.15–6.06%). The adjusted anti-HCV prevalence was lowest for normal risk donors at 3.45% (CI = 3.10–3.85), and highest for high risk donors at 18.20% (CI = 15.74–20.91%). For donors with missing risk status, the adjusted HCV prevalence was 12.88% (CI = 10.83–15.08).

Out of all potential organ donors tested, 11.3% (n = 1538) did not have any organs recovered. Out of the 64 anti-HIV-positive donors, 58 (90.6%) did not have any organs recovered. Of the six HIV-positive donors with organs recovered, five were designated as normal risk and one was missing risk status; none were transplanted. Of 924 anti-HCV-positive potential donors, 36.0% (n = 332) did not have any organs recovered. Of the 591 anti-HCV-positive donors who did have organs recovered, 32.3% were considered high risk donors, 63.1% were considered normal risk donors and 4.6% were missing risk status.[1]

Yearly incidence estimates for HIV among all potential organ donors was approximately 61 per 100 000 person-years; for normal risk, high risk and missing risk donors the incidence was 29, 142 and 283 per 100 000 person-years, respectively. The overall incidence estimate for HCV was approximately 168 per 100 000 person-years; for normal risk, high risk and missing risk donors, incidence was 104, 547 and 387 per 100 000 person-years, respectively.

For normal risk donors, the estimated incidence of undetected HIV infection during the 22-day window period for serologic testing was approximately 1.72 per 100 000 person-years, and 0.55 per 100 000 person-years for the 7-day window period for NAT screening. For high risk donors, undetected HIV incidence per 100 000 person-years during the window periods for serologic and NAT screening were 8.54 and 2.72, respectively. The 95% credible intervals for undetected HIV infection during serologic and NAT window periods overlapped all donor risk strata (Table 2).

For normal risk donors, the estimated incidence of undetected HCV infection during the 70-day window period for serologic testing was approximately 19.91 per 100 000 person years, and 1.99 per 100 000 person-years for the 7-day window period for NAT testing. For high risk donors, undetected HCV incidence per 100 000 person-years during the window periods for serologic and NAT screening were 104.94 and 10.49, respectively. The 95% credible intervals for undetected HCV infection during serologic and NAT window periods did not overlap for any risk strata, indicating significant potential reductions conferred by NAT screening as compared to serology alone for HCV.

1Authors were not able to obtain information about whether recovered HCV-positive organs were transplanted.

Discussion

In our prevalence study of over 13 000 potential organ donors, approximately 1 in 500 were positive for anti-HIV after adjusting for false-positive serologic testing, with higher prevalence among high risk donors (1 in 200) versus normal risk donors (1 in 1000). One in 18 of all potential donors were positive for anti-HCV after adjusting for false-positive serologic testing; the prevalence among high risk donors was striking (1 in 5), and that among normal risk donors was substantial (1 in 30).

Findings suggest that organ donors are at higher risk of undetected infection by serologic screening (i.e. incident infection during the window period) compared to tissue donors. In 2004, tissue donors were reported to have a 1 in 55 000 risk of undetected HIV and 1 in 42 000 risk of undetected HCV infection by serologic screening.[7] In this study, normal risk organ donors had an estimated 1 in 60 000 risk of undetected HIV infection by serologic screening, which is similar to tissue donors; however, high and missing risk organ donors were at substantially higher risks of undetected HIV infection (1 in 12 000 and 1 in 6000, respectively). Organ donors of all risk strata had a higher risk of undetected HCV infection by serologic testing compared to tissue donors. In this study, normal risk organ donors had an estimated 1 in 5000 risk of undetected HCV infection by serologic testing, and high risk donors had a 1 in 1000 risk. For HCV, reduction in the window period for NAT screening decreased the risk by 90% of undetected infection to 1 in 50 000 for normal risk donors and 1 in 10 000 for high risk donors. Credible intervals for HCV incidence during the window period for serologic versus NAT screening did not overlap for any of the risk strata, suggesting significant risk reductions conferred by NAT screening (vs. serology alone) for HCV. Credible intervals for HIV incidence during serologic and NAT window periods do overlap for all risk strata; this is potentially a result of low HIV prevalence and incidence rates, wide variation in input parameters, and a smaller change in the window period for serology versus NAT for HIV compared with HCV (i.e. a 15 day difference vs. a 63 day difference).

The prevalence estimates of anti-HCV in high risk and normal risk donors demonstrated in this study are similar to those reported in a nation-wide analysis of donors reported to UNOS during the same time period.[9] Rates of anti-HIV in this study are higher, likely because most HIV-positive potential donors do not have organs recovered, and thus may not be reported to UNOS. This study included potential donors who had consent for testing, but who had no organs recovered likely because of their HIV status. Both this study and the nation-wide UNOS study are likely to underestimate the true prevalence of HIV among potential organ donors because HIV-positive persons are excluded from donation by law; therefore, known HIV positive persons are less likely to be consented for testing.

A nontrivial proportion (approximately 9%) of donors tested for anti-HIV and anti-HCV were missing risk status designations by OPOs. This phenomenon was not limited to one or few OPOs; 13 of the 17 participating OPOs submitted serologic testing results for donors with missing risk status. Donors with 'missing risk' status had a high prevalence of HIV (1.0%). A possible explanation is that this study included all potential donors who received serologic testing including those whose organs were not recovered due to HIV positivity. Donors no longer considered for transplantation are rarely reported to UNOS, which requires that the OPO report the risk designation, and thus OPO may not assign risk designations for these donors.

Differences in regulatory restrictions for organ donation versus blood and tissue donation may be attributed to differences in the degree of risk acceptable for the respective recipient group of each allograft. Allowing organs from high risk donors to be transplanted is one of several policies aimed at increasing the availability for life-saving organs; increasingly, organs are transplanted from donors with underlying chronic illnesses as well as donation after circulatory determination of death. Transplanting organs from these clinically suboptimal donors is presumably accepted because of the potential life years gained by the recipient or recipients.[20] In contrast, donors with behavioral risk factors are routinely excluded from the blood and tissue supply.

Decisions to recover and transplant organs are made based on several factors. Donors designated as high risk may not have their organs recovered or transplanted because of their high risk designation or because of other known medical or anatomical issues. However, because organs are in such high demand, the high risk designation may or may not dissuade a transplant center from accepting an organ. A recent survey of transplant surgeons showed that NAT screening enhanced surgeons' comfort in accepting organs from high risk donors, presumably because concerns about undetected infection were allayed.[11] Still, a recently published expert consensus concluded that there exists insufficient evidence to recommend routine NAT because the benefit may not outweigh the possibility of disqualifying organs for transplantation because of false-positive NAT results.[20] Our study suggests that adoption of NAT screening for HCV could significantly reduce the incidence of undetected infection during the window period with a particularly high yield for high risk donors; thus NAT screening could potentially improve organ acceptance from high risk donors with negative results. The question remains as to whether expanding the donor pool through enhanced acceptance of NAT-negative organs would balance or exceed organ loss from false-positive NAT. False-positive rates for NAT screening are poorly understood. False-positive NAT screening could be detrimental to the organ supply if noninfected organs are rejected. Given the concerns about false-positive NAT results, more research on the frequency and causes of false-positives is needed and protocols for NAT screening should promote maximum specificity. While this study was not designed to assess the rate of false-positive NAT screens, we do believe this phenomenon should be considered in parallel with the results from this study when making policy decisions related to NAT screening.

This study is subject to a number of limitations. Importantly, the geographic distribution of OPOs participating in this study is focused mainly on the areas of highest population density, so that results may not be generalizable nationally. Also, interpretation of the results should be predicated on the fact that most of the serologic tests used in this study (between 2004 and 2008) were third-generation tests. The introduction of more sensitive fourth-generation serologic assays would also shorten window periods and thus may be a suitable alternative to NAT screening for purposes of reducing window periods if approved by FDA. Additionally, when considering the validity of serology results, differences may exist between large reference labs and smaller production labs and may influence the relative rate of false-positive results.

The results of our study suggest that undetected infection, and potentially transmission, can occur with current testing methods, although relatively few transmission events have been reported. There may be several reasons for this discrepancy. First, it is possible that transmissions occur unnoticed because a recipient dies before the infection is detected. Under-reporting may also occur because a transplant physician is unable to identify the donor as the source of recipient infection, particularly if discovered months after the transplant. Finally, reporting of suspected disease transmissions to UNOS was not part of OPTN policy until 2005, and that policy has remained voluntary.

This study is also subject to the inherent limitations of the incidence window-period methodology in which the incidence of undetected infection among potential organ donors is estimated from incidence in the blood donor population multiplied by an organ-to-blood donor prevalence ratio. This methodology assumes that the organ-to-blood donor prevalence ratio accurately reflects the organ-to-blood donor incidence ratio. This limitation was minimized by using prevalence and incidence estimates from the same time period; all estimates used to calculate the probability of undetected infection of HIV and HCV among potential organ donors—blood donor incidence data, blood donor prevalence data and organ donor prevalence data—were collected from 2004 through 2008.

Although recent surveys indicate that NAT is feasible, as it is performed by many OPOs on some donors for at least one bloodborne pathogen, the practice is variable (11). This is of particular concern as high risk donor recovery also is highly variable, and may not be correlated with use of NAT. Because the risk of transmitting bloodborne infections through transplantation is unlikely to be completely eliminated and can be difficult to predict for each individual donor, recipients and providers should have a clear understanding of the risk and benefits through standardized informed consent at appropriate points in the transplantation listing and offering process.[21] Through ongoing collection and analysis of donor testing results as performed in our study, a better definition of transmission risk is possible, resulting in a decision process that allows for most effective use of a limited organ supply.

The Organ Procurement Organization Nucleic Acid Testing Yield Project Team

Tiffany Arrington, The Living Legacy Foundation of Maryland; Nicole Berry, LifeNet Health; James Bradley, New England Organ Bank; Benjamin Chau, California Transplant Donor Network; Claudia Chinchilla-Reyes, Mendez National Institute of Transplantation; Stephanie Cozby, LifeCenter Northwest; Wayne Dunlap, LifeCenter Northwest; A. Bradley Eisenbrey, Gift of Life Michigan; Patricia Harris, New Jersey Organ and Tissue Sharing Network; Richard Hasz, Gift of Life Donor Program; Emily Johnson, Washington Regional Transplant Community; Curt Kandra, Pacific Northwest Transplant Bank; David Marshman, LifeNet Health; Thomas Mone, OneLegacy; Helen Nelson, Golden State Donor Services; Patricia Niles, New Mexico Donor Services; Kevin O'Connor, LifeCenter Northwest; Eugene Osborne, California Transplant Donor Network; Joseph Roth, New Jersey Organ and Tissue Sharing Network; Deborah Savaria, LifeChoice Donor Services; Edwin Serna, Nevada Donor Network; Lisa Stocks, Lifesharing—A Donate Life Organization; Katrina Tanner, Gift of Life Michigan; Waheed Tajik, New York Organ Donor Network; Sharon West, Gift of Life Donor Program.

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Source