Showing posts with label HIV/AIDS Research. Show all posts
Showing posts with label HIV/AIDS Research. Show all posts

February 13, 2014

Marijuana May Stop The Spread Of HIV, Study Finds

The Huffington Post  | by  Carly Schwartz

Posted: 02/11/2014 12:11 pm EST Updated: 02/11/2014 5:00 pm EST

Colorado Pot Poll

Marijuana has long been used to effectively treat symptoms associated with HIV, such as chronic pain and weight loss. But a growing body of research suggests the plant may be able to stop the spread of the disease itself.

Adding to these findings is a Louisiana State University study published last week in the journal AIDS Research and Human Retroviruses. For 17 months, scientists administered a daily dose of THC, an active ingredient in cannabis, to monkeys infected with an animal form of the virus. Over the course of that period, scientists found that damage to immune tissue in the primates' stomachs, one of the most common areas in the body for HIV infection to spread, decreased.

"These findings reveal novel mechanisms that may potentially contribute to cannabinoid-mediated disease modulation," Dr. Patricia Molina, the study's lead author, wrote. The report goes on to explain that while HIV spreads by infecting and killing off immune cells, the monkeys that received the daily THC treatments maintained higher levels of healthy cells.

Similar research spearheaded by Molina in 2011 found that infected monkeys treated with THC had a better chance of surviving. And a report published in 2012 pointed to evidence that marijuana-like compounds can fight HIV in late-stage AIDS patients.

Last year, an oncologist from the United Kingdom found that marijuana compounds can kill cancer cells in leukemia patients, and scientists at California Pacific Medical Center in San Francisco have conducted research that suggests those compounds can also effectively combat other forms of aggressive cancer.

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February 11, 2014

NIH-Funded Researchers Use Antibody Treatment to Protect Humanized Mice from HIV

National Institute of Allergy and
Infectious Diseases (NIAID)
http://www.niaid.nih.gov

FOR IMMEDIATE RELEASE
Tuesday, Feb. 11, 2014

MEDIA AVAILABILITY

WHAT:
NIH-funded scientists have shown that boosting the production of certain broadly neutralizing antibodies can protect humanized mice from both intravenous and vaginal infection with HIV. Humanized mice have immune systems genetically modified to resemble those of humans, making it possible for them to become HIV-infected.

Led by David Baltimore, Ph.D., of the California Institute of Technology, the investigators inserted the genes encoding the NIH-discovered broadly HIV neutralizing antibody VRC01 into a vector, a virus that infects mice but does not cause disease. In a unique technique known as vectored immunoprophylaxis (VIP), the researchers infected laboratory mice with this altered virus, enabling certain of their cells to produce the antibodies for extended periods. To test the applicability of this approach to human infections, the researchers used a novel method of repeatedly exposing these mice to low doses of HIV in a manner that mimics human sexual intercourse. In two separate experiments, the investigators assessed protection from infection with two strains of HIV: a standard laboratory strain as well as one that is commonly transmitted among humans.

Two of the 10 mice expressing VRC01 antibodies became infected with the laboratory strain of HIV after 13 to 15 exposures to the virus. In contrast, all nine mice without the antibodies were infected with HIV within six exposures. In the second experiment, researchers used a modified form of the VRC01 antibody, known as VRC07, and challenged the mice with an HIV strain known to be heterosexually transmitted among people. The mice expressing the VRC07 antibody were completely resistant to infection during repeated intravaginal challenge. Taken together, these results indicate that VIP can protect mice from infection with strains of HIV that cause human disease and suggest that a similar strategy could be developed to reduce transmission in people, the authors write.

ARTICLE:
Balazs AB et al. Vectored immunoprophylaxis protects humanized mice from mucosal HIV transmission. Nature Medicine DOI: 10.1038/nm.3471 (2014).

WHO:
NIAID director Anthony S. Fauci, M.D., is available to discuss the findings.

CONTACT:
To schedule interviews, please contact Nalini Padmanabhan, (301) 402-1663, niaidnews@niaid.nih.gov.

NIAID conducts and supports research—at NIH, throughout the United States, and worldwide—to study the causes of infectious and immune-mediated diseases, and to develop better means of preventing, diagnosing and treating these illnesses. News releases, fact sheets and other NIAID-related materials are available on the NIAID Web site at www.niaid.nih.gov.

About the National Institutes of Health (NIH): NIH, the nation's medical research agency, includes 27 Institutes and Centers and is a component of the U.S. Department of Health and Human Services. NIH is the primary federal agency conducting and supporting basic, clinical, and translational medical research, and is investigating the causes, treatments, and cures for both common and rare diseases. For more information about NIH and its programs, visit www.nih.gov.

NIH...Turning Discovery Into Health ®

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December 6, 2013

Excitement Mounting That Radiation Will Eliminate HIV

Medscape Medical News from the: Radiological Society of North America (RSNA) 99th Scientific Assembly and Annual Meeting

This coverage is not sanctioned by, nor a part of, the Radiological Society of North America.

Lara C. Pullen, PhD
December 04, 2013

CHICAGO — Radioimmunotherapy in conjunction with antiretroviral triple therapy can effectively kill HIV-infected cells from patients, a new study has shown.

"The cells are being steadily killed by a dose of radiation," explained Ekaterina Dadachova, PhD, professor of radiology, microbiology, and immunology at the Albert Einstein College of Medicine in the Bronx, New York.

Dr. Dadachova presented the research to an excited audience here at the Radiological Society of North America 99th Scientific Assembly and Annual Meeting. She began her talk by reminding the audience that the conference started on December 1, World AIDS Day.

The safety of radioimmunotherapy is well established in the field of oncology, where tumor cell burdens are approximately 1000 times greater than those seen in HIV patients being treated with triple therapy. This makes HIV a comparatively light load for radioimmunotherapy, according to those most familiar with the technique.

Current treatment options for HIV include antiretrovirals, which can dramatically increase a patient's lifespan and has transformed HIV from an acute disease. "HIV is now a chronic disease, but people are still dying from it and there is still no cure," Dr. Dadachova said.

Medications suppress viral reproduction, but they do not kill infected cells. Antiretrovirals also have a host of problems, including high cost, toxicity, nonadherence, and drug resistance.

Most important, viremia returns after treatment cessation. This is because both cellular and anatomic reservoirs of HIV in the body maintain the infection.

“It has fantastic potential.”

At the cellular level, even with antiretrovirals, the patient's body contains long-lived cell populations that are infected with HIV and are capable of surviving for prolonged periods of time. Resting CD4+ T-cells, macrophages, dendritic cells, and hematopoietic cells can all serve as reservoirs for HIV.

Anatomically, HIV also persists in the brain, and this has traditionally been a very difficult area for HIV therapeutics to access.

The world needs a strategy for eradicating HIV, said Dr. Dadachova. She then proceeded to describe her team's strategy using radioimmunotherapy.

The approach is effective against HIV-infected cells because it binds to a specific antigen and kills the cells. To be successful as a therapy, it requires an antigen target that in no way resembles a human antigen. If such an antigen can be found, then "1 or 2 hits per cell is enough to destroy the cell," explained Dr. Dadachova.

Her team used the HIV antigen gp41 to generate the 2556 antibody that binds specifically to HIV-infected cells.

ht_131204_hiv_lymphocyte_radioimmunotherapy_250x188

Radiolabeled human antibody binds to the viral gp41 protein expressed on the surface of the HIV-infected lymphocyte and the cell is killed with alpha radiation.

The researchers previously used gp41 radioimmunotherapy in mice with severe combined immunodeficiency that were injected with infected human cells (PLoS One.2012;7:e31866). "We are basically able to eliminate the HIV-infected cells in those mice," Dr. Dadachova said enthusiastically. More important, they were able to eliminate HIV-infected cells in the brains of the mice.

Although the team's success with mice was exciting, she noted that they still did not know whether radioimmunotherapy would work in patients being treated with antiretroviral therapy. No one could say what the interaction between radioimmunotherapy, HIV, and antiretrovirals would look like. Would the suppressed viral replication also suppress the expression of gp41 below the level needed for radioimmunotherapy?

"That's where the Bill and Melinda Gates Foundation came in," she said. "They funded our study."

This year, Dr. Dadachova and her team performed an ex vivo study on clinical samples. They found that radioimmunotherapy killed the infected patient's lymphocytes over a full range of doses.

They also used an in vitro model to demonstrate that the radiolabeled antibody crosses the blood–brain barrier without disturbing the tight junctions of the cells.

"It has fantastic potential," said Gary Whitman, MD, professor of radiology at the University of Texas M.D. Anderson Cancer Center in Houston.

Dr. Dadachova will next be partnering with physicians in South Africa to enroll patients there in the first radioimmunotherapy clinical trial. She said she expects the first results by the end of 2014. She also reported that she is applying to the National Institutes of Health for funding to continue the research in the United States.

The treatment regimen will likely consist of a single injection of radioimmunotherapy, she explained. Because bismuth-213 is a very short-lived isotope, all radioactivity will be gone from the patient in 4 hours. Follow-up testing will reveal whether the patient rebounds and requires another treatment.

Many in the room said the precedence of radioimmunotherapy in the treatment of cancer fuels their hope that people will truly have something to celebrate next World AIDS Day.

Dr. Dadachova and Dr. Whitman have disclosed no relevant financial relationships.

Radiological Society of North America (RSNA) 99th Scientific Assembly and Annual Meeting: Abstract SSK12. Presented December 3, 2013.

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October 31, 2013

Studies in monkeys may be next step in search for HIV cure

By Julie Steenhuysen

CHICAGO | Wed Oct 30, 2013 4:22pm EDT

CHICAGO (Reuters) - A powerful infusion of HIV-fighting antibodies beat back a potent form of the virus in monkeys and kept it at bay for weeks, U.S. government scientists and a team led by Harvard University found, offering a potential next step in the battle against human HIV.

The two studies, published on Wednesday in the journal Nature, involve the use of rare antibodies made by 10 percent to 20 percent of people with HIV that can neutralize a wide array of strains.

Such antibodies latch on to regions of the virus that are highly "conserved," meaning they are so critical to the virus that causes AIDS that they appear in nearly every HIV strain.

By attaching to the virus, they make it incapable of infecting other cells.

In the past decade, scientists have tried to make vaccines that could coax the body into making these same types of HIV-specific antibodies. But finding a way to make these complex antibodies has been challenging.

"These are the Ferraris of antibodies," said Dr Dan Barouch, director of the Center for Virology and Vaccine Research at Beth Israel Deaconess Medical Center and a professor at Harvard Medical School, who led the larger of the two studies.

"Nobody, including ourselves, has been able to develop a vaccine that can generate immune responses that are even close."

In the studies, the teams instead tested these antibodies as a potential treatment for people infected with HIV. Both teams used rhesus monkeys with the Simian-human immunodeficiency virus, a monkey version of HIV.

Barouch's team studied the rare antibodies harvested from HIV-infected humans that were grown in large batches and could be infused at high doses. The team tested different combinations of antibodies in 35 infected monkeys.

The one that worked best was an antibody called PGT121.

"Basically, that antibody, given either alone or in combination, resulted in a dramatic effect," Barouch said.

PEOPLE NEXT?

The antibodies reduced the virus to undetectable levels in 16 of 18 monkeys within seven days, and kept it there for one to three months. In three animals with the lowest viral load at the time of treatment, the virus did not resurface.

A smaller study by scientists at the National Institute of Allergy and Infectious Diseases, a part of the National Institutes of Health, showed similar results.

Both teams say the approach should now be tested in people.

"All the data to date exist in the monkey model. We need to evaluate how these antibodies perform in humans infected with HIV," Barouch said.

His team did not test the antibody treatment in combination with antiretroviral treatments, the standard HIV drugs used by thousands of patients to control the virus.

But Barouch thinks such combinations would make sense because both treatments have different mechanisms of action.

While antiretroviral drugs only attack the machinery used by the HIV virus to make copies of itself, antibodies can directly attack free virus particles in the blood as well as in cells that are infected with the virus.

Barouch said researchers and drug companies are interested in the results, which could offer a next step toward a cure for the infection that causes AIDS.

In an interview on the Nature website, Dr Louis Picker of Oregon Health & Science University, who wrote a commentary on the research, said the study is "a baby step towards cure."

He said antiretroviral treatments, such as those made by Gilead Sciences and GlaxoSmithKline, reduce the ability of the HIV virus to replicate in the body by maybe 99.9 percent, but not 100 percent.

"This treatment on top of it may bring it to 100 percent," he said.

Still unclear is whether antibodies will also attack latent HIV cells that hide in the body and allow the virus to reappear when treatment stops.

"We haven't shown any cures," Barouch said. "However, we have shown the antibodies act not only on the virus in the bloodstream, but can also substantially reduce virus in tissues such as lymph nodes and the gut. Future research with these antibodies will help determine whether they might be part of a virus eradication or cure strategy."

(Reporting by Julie Steenhuysen; Editing by Xavier Briand)

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October 7, 2013

Scientist tackle HIV from unusual angles to find cure

October 7, 2013 8:15 am by Allday, Erin |  MedCity News

clinical-trials1-300x200

In the race for a cure for HIV, the wins are stacking up.

We have the Berlin Patient and the Mississippi Baby. There's the Visconti Cohort -- 14 patients in France -- and most recently, two men in Boston who were declared to be HIV-free just this summer.

Through a variety of mechanisms and treatments, all of these people were able to shake the virus and stop taking the drugs that HIV-infected patients ordinarily need to survive. They represent possibility -- that modern science is capable of curing a deadly infection.

But possibility and reality aren't in the same place just yet. And the hunt has taken off to find a cure that won't just halt the disease one patient at a time, but put up a global blockade to HIV. Scientists are searching for a cure that's affordable and safe, and will shut down the epidemic entirely.

In the Bay Area, the Gladstone Institutes this summer has collected more than $12 million in funding from the National Institutes of Health for research aimed largely at exploring untapped avenues toward finding a cure.

UCSF is one of three institutions nationally to start research programs -- again, with NIH funding -- specifically focused on developing cures. Conversations about curing HIV have dominated locally and globally, from last year's International AIDS Conference in Washington, D.C., to a town hall meeting in San Francisco on Tuesday night.

"There have been anecdotal cases of individuals who have been for all intents and purposes cured, or whose disease has been put in remission," said Dr. Mike McCune, chief of the UCSF division of experimental medicine. "Now you have a groundswell for an effort to come up with interventions. It's a high-risk venture, but a lot of us are taking it up now because we think it's doable."

HIV under control

HIV has for more than a decade been a treatable disease. With daily antiretroviral drugs, patients can keep their infection under control, and stave off death from AIDS, for decades. But the drugs aren't a cure, and the virus lingers in a latent state, from which it can reawaken and wreak havoc if patients don't keep on medication.

Plus, the latent virus, even when kept under control by drugs, appears to cause subtle but constant damage that leads to premature aging and early death from heart disease and other age-related illnesses.

So while antiretroviral drugs have been a boon to the millions suffering from HIV and made a huge dent in the global epidemic, they aren't a permanent solution -- they aren't a cure.

The word "cure" itself is tricky when applied to HIV infection. Scientists for the most part don't expect to find an absolute cure any time soon -- a cure in which the virus is wiped out entirely. Instead, they are looking for a "functional" cure, which would mean patients could live, and stay healthy, with a small amount of virus that's kept under control either by the body's own immune system or with the help of cheap, easy-to-access drugs.

The first cure, functional or otherwise, came in 2008 with the Berlin Patient -- a man since identified as Timothy Brown who was treated in Germany and now lives in San Francisco. Brown was given a bone marrow transplant to treat cancer, but the therapy also killed off his HIV infection. Since then, a similar bone marrow treatment appears to have cured two HIV patients in Boston.

Meanwhile, scientists have 15 documented cases -- a baby in Mississippi and the 14 patients in France -- of people being cured of HIV by taking high-dose antiretroviral drugs immediately after becoming infected. All of those patients have, so far, been able to avoid the drugs long term and stay healthy.

These cases are thrilling and all cause for celebration, doctors and scientists say. But the treatments behind them aren't practical for stopping the HIV epidemic. In the case of bone marrow transplants, the therapy is too expensive and risky, and it would require finding donors for every HIV patient -- impossible on a global level.

Early antiretroviral therapy may be a reasonable treatment for many cases, but it would require a huge effort to get people tested and treated almost immediately after infection, and it isn't an option for the millions already sick.

Unusual angles

That's why scientists are tackling HIV from some unusual angles these days in their hunt for a cure. At Gladstone, for example, the recent NIH funding has gone toward three projects: looking at genetically engineered mice, hijacked viruses and suicidal cells.

"These proposals, some of them are really a shot in the dark," said Leor Weinberger, a Gladstone scientist who on Monday won an NIH grant for his work in hijacking viruses. "But you have to diversify your portfolio, you have to have some high-risk products you're invested in, if you're going to find solutions."

Weinberger's research is in harnessing bits of HIV and using them to attack the virus itself. The therapy would involve replacing some of the genetic material in the virus and disrupting its ability to replicate.

If it works, it might require a one-time injection, and while it wouldn't kill off all the virus in the body, it would render it essentially harmless, said Weinberger.

'Cellular suicide'

Dr. Warner Greene, director of the virology and immunology division at the Gladstone Institutes in San Francisco, has uncovered a surprising explanation for the deaths of certain immune cells that are associated with HIV infection. He's found that "bystander" cells -- those that haven't been infected by the virus -- appear to self-immolate when they're exposed to HIV but not yet taken over by it.

The cellular suicide is probably a protective gesture meant to prevent spread of the virus, but in fact it sets off a chain of events that leads to widespread destruction of the immune system, Greene said.

He's exploring whether anti-inflammatory drugs could halt that self-destructive process and even destroy some or all of the HIV reservoirs. Patients might still have to take regular medication, but perhaps not antiretroviral drugs, which can have tough side effects, and they might avoid the long-term damage done by latent HIV infection.

"We're looking at cell death by an intensely inflammatory response," Greene said. "It turns out the dying cells, because of inflammation, attract new cells to come to their aid, and they fall prey too. It starts a vicious cycle. Now the question is, what can we do about that? How can we interrupt this cycle?"

A popular thread of cure research is in the viral reservoirs, which are still largely undefined -- in fact, scientists aren't entirely sure where those reservoirs are located in the body.

But if doctors can find those reservoirs, or prevent them from forming, that might mean the end to HIV. The focus of UCSF's cure team is on finding the reservoirs and understanding how they're created.

Turning to mice

At the same time, Gladstone scientist Shomyseh Sanjabi, who also won NIH funding this week, is developing a strain of mice whose immune systems have been removed and replaced with human systems. These mice will be engineered to reflect both humans with normal immune systems and humans who are knowns as "elite controllers" -- able to stave off HIV infection without any treatment.

Elite controllers are rare, but scientists have recognized them as priceless for research into how the body can naturally fight HIV. Sanjabi hopes her mice will help other scientists finally unravel some of the mysteries behind HIV.

She has her own theories on HIV latency and the reservoirs, she said, but "we're just really excited by the idea that no matter what we find, whether our hypothesis is right or not, we're going to get a lot of information out of our work."

"We have to first know the beast that we're trying to kill," she said.

Erin Allday is a San Francisco Chronicle staff writer. E-mail: eallday@sfchronicle.com ___

(c)2013 the San Francisco Chronicle

Visit the San Francisco Chronicle at www.sfgate.com

Distributed by MCT Information Services

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October 3, 2013

UF researchers report cats may be the key to human HIV vaccine

Published: October 1st, 2013

Category: Health, Research, Veterinary

GAINESVILLE, Fla. — Blood from HIV-infected human subjects shows an immune response against a cat AIDS virus protein, a surprise finding that could help scientists find a way to develop a human AIDS vaccine, report University of Florida and University of California, San Francisco researchers.

Their findings appear in the October issue of the Journal of Virology. This discovery supports further exploration of a human AIDS vaccine derived from regions of the feline AIDS virus.

“One major reason why there has been no successful HIV vaccine to date is that we do not know which parts of HIV to combine to produce the most effective vaccine,” said Janet Yamamoto, a professor of retroviral immunology at the UF College of Veterinary Medicine and the study’s corresponding author.

The researchers are working on a T-cell-based HIV vaccine that activates an immune response in T cells from HIV-positive individuals against the feline AIDS virus. T-cell peptides are small pieces of protein that can prompt the body’s T cells to recognize viral peptides on infected cells and attack them. However, not all HIV peptides can work as vaccine components, Yamamoto said.

“In humans, some peptides stimulate immune responses, which either enhance HIV infection or have no effect at all, while others may have anti-HIV activities that are lost when the virus changes or mutates to avoid such immunity,” she said. “So, we are looking for those viral peptides in the cat AIDS virus that can induce anti-HIV T-cell activities and do not mutate.”

In previous studies, scientists have combined various whole HIV proteins as vaccine components, but none have worked well enough to be used as a commercial vaccine, Yamamoto said.

“Surprisingly, we have found that certain peptides of the feline AIDS virus can work exceptionally well at producing human T cells that fight against HIV,” she said.

The researchers isolated T cells from HIV-positive individuals and incubated these cells with different peptides that are crucial for survival of both human and feline AIDS viruses. They then compared the reactions they got with feline immunodeficiency virus (FIV) peptides to what they found using HIV-1 peptides.

“We found that one particular peptide region on FIV activated the patients’ T cells to kill the HIV,” Yamamoto said.

This feline viral region identified by human cells appears to be evolutionarily conserved — it is present in multiple AIDS-like viruses across animal species, she added.

“That means it must be a region so essential that it cannot mutate for the survival of the virus,” she said.

Yamamoto and her team believe that the feline AIDS virus can be used to identify regions of the human AIDS virus that might be more effectively used in a vaccine-development strategy for HIV.

“We want to stress that our findings do not mean that the feline AIDS virus infects humans, but rather that the cat virus resembles the human virus sufficiently so that this cross-reaction can be observed,” said study collaborator Dr. Jay A. Levy, a professor of medicine at UCSF.

To date, a T-cell-based vaccine has not been used to prevent any viral diseases, Yamamoto said.

“So we are now employing an immune system approach that has not been typically utilized to make a vaccine,” she said. “The possible use of the cat virus for this vaccine is unique.”

Michael Murphey-Corb, a professor in the department of microbiology and molecular genetics at the University of Pittsburgh, has known Yamamoto since she discovered the feline AIDS virus.

“Dr. Yamamoto has identified the immunological Achilles’ heel of HIV,” Murphey-Corb said.

Levy, along with Dr. Mobeen Rathore, director of the UF Center for HIV/AIDS Research, Education and Service in Jacksonville, and the University of South Florida in Tampa provided the blood from HIV-infected subjects. Other collaborators include the UF College of Medicine, the Clinical and Translational Science Institute at UF, and LifeSouth Community Blood Centers of Gainesville.

Research reported on in this news release was supported by the National Institutes of Health under RO1AI65276, RO1AI30904 and RR029890. This content is solely the responsibility of the authors and does not necessarily represent the official views of the National Institutes of Health.

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Media Contact: Sarah Carey, careysk@ufl.edu, 352-294-4242

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