Showing posts with label Human. Show all posts
Showing posts with label Human. Show all posts

Friday, 2 August 2013

How cells regulate the human cytomegalovirus: the mechanism by which genetic information is packaged and stored

Main Category: Infectious Diseases / Bacteria / Viruses
Also Included In: Biology / Biochemistry;  Genetics
Article Date: 01 Aug 2013 - 0:00 PDT Current ratings for:
How cells regulate the human cytomegalovirus: the mechanism by which genetic information is packaged and stored
not yet ratednot yet rated

An international collaboration of researchers including Felicia Goodrum of the University of Arizona's immunobiology department has studied how a human herpes virus carried by the majority of the population packages its genetic information during infection.

The discoveries improve the chances of developing more targeted therapies in place of existing drugs, which do not always work or come with side effects.

Experts estimate that 60 to 90 percent of the world's population carry the human cytomegalovirus, or CMV, which is one of the eight herpes viruses that infect humans.

In healthy individuals, the virus lies dormant and does not cause overt disease. However, it poses a significant risk when contracted by unborn children - whose immune system has not matured yet - and individuals with compromised immune function.

CMV is the leading cause of birth defects resulting from any infectious agent. It affects one in 150 births in the US and most commonly results in hearing loss, but can also cause cognitive or physical anomalies and cerebral palsy. Once infected, the virus stays in the body for life and flares up only when the immune system is suppressed, for example in AIDS patients, transplant patients and cancer patients undergoing intensive chemotherapy.

For the study, published in the scientific journal Proceedings of the National Academy of Sciences (PNAS), Goodrum teamed up with collaborators in Germany and Israel.

The researchers investigated how a fundamental aspect of the human cell regulates the virus: the mechanism by which genetic information is packaged and stored. Understanding how the viral DNA behaves in the human host cells during dormancy and reactivation of the virus provides the basis for the development of drugs that could prevent the virus from "waking up" and causing disease.

"The human immune system is very sophisticated, and the way this virus has managed to stealthily integrate into our biology to ensure its own survival is no small feat," said Goodrum, also a member of the UA's BIO5 Institute.

"CMV is a master of human cell biology. From transcribing DNA into blueprints for proteins to the manufacturing of those proteins, from cell division to cellular metabolism, there is not a process this virus has not tweaked," Goodrum also said.

That mastery, she explained, is the reason the virus is so elusive to vaccine, and there currently is no way to eradicate it. Goodrum noted that with other herpes viruses, like Epstein-Barr or chicken pox, the infection is obvious. But that is not the case with CMV.

"From the perspective of a virus, that is the pinnacle of mastery - to infect without ever making its presence known," Goodrum said.

"To develop more effective antiviral strategies, we must understand the biology of the virus infection and how the virus manages to persist for our lifetimes," she said. "We are trying to understand how our cellular mechanisms are being used by this virus and discover targets for drugs to control it."

Each human cell contains a thread of DNA that is about 6 feet long, stowed away in its nucleus and tightly packaged by proteins called histones. One such package of genetic material is called a chromosome.

"You can imagine histones as a spool, and the thread is DNA that wraps around the spool," Goodrum said. "This accomplishes two important objectives: first, it condenses DNA so that it can be packed into the cell nucleus and second, it provides the cell with a mechanism to regulate the activity of the genes encoded on that DNA."

The association between histones and DNA is very dynamic and acts as a key mechanism used by cells to control which genes are expressed and which are not, Goodrum explained.

For example, when DNA is wound tightly around histones, it is not accessible to enzymes specializing in making copies of genes in a process called transcription, which subsequently serve as blueprints to manufacture proteins.

"When a virus like CMV infects our cells, its DNA is packaged by histones just as if it were the cell's own DNA," Goodrum said.

"The question is, how does this happen, and does the virus have any choice in the matter? Our work maps the deposition of histones across the viral DNA chromosome and shows that the virus encodes a mechanism to reorganize these histones to favor the expression of genes from the viral chromosome."

Michael Nevels of the Institute for Medical Microbiology and Hygiene at the University of Regensburg, Germany, said: "Now that we have determined the positions of the nucleosomes, we can study how transcription is regulated, and from that others can start developing therapies."

For example, if researchers can identify molecules that play key roles in the process, they can design new drugs that target those molecules.

"Since we can't eliminate the virus, the goal is to keep it in check," said Nevels, who led the study together with Eran Segal and Einat Zalckvar of the Weizmann Institute of Science in Rehovot, Israel.

"The idea is to target the virus on the level of its DNA structure and to reduce the gene activity back to the dormancy levels," Nevels said.

One such molecular target identified in this study is a viral protein called IE1. Because it regulates the packaging and unpacking of the viral DNA, it could potentially be a target for new therapies.

Cautioning that many more steps will be necessary before this could be achieved, Nevels said that "if we could inhibit IE1, the virus genome would be packed more tightly with histones, which leaves less DNA accessible and prevents genes from becoming active."

Another strategy takes the opposite direction by deliberately awaking the virus from its dormant state so it becomes vulnerable to antiviral drugs. This could be an option for patients about to undergo an organ transplantation, which requires immune-suppressing drugs to prevent the new organ from being rejected. Suppressing the immune system allows the virus to reactivate.

"There are antivirals that target the active, replicating virus but they can't target latent virus because in that state, it's really just a piece of DNA in the cell nucleus," Goodrum said. "Before those patients enter a immunosuppressed state, you would target the viral reservoirs and force the virus out of latency."

Article adapted by Medical News Today from original press release. Click 'references' tab above for source.
Visit our infectious diseases / bacteria / viruses section for the latest news on this subject. Please use one of the following formats to cite this article in your essay, paper or report:

MLA

University of Arizona. "How cells regulate the human cytomegalovirus: the mechanism by which genetic information is packaged and stored." Medical News Today. MediLexicon, Intl., 1 Aug. 2013. Web.
1 Aug. 2013. APA

Please note: If no author information is provided, the source is cited instead.


'How cells regulate the human cytomegalovirus: the mechanism by which genetic information is packaged and stored'

Please note that we publish your name, but we do not publish your email address. It is only used to let you know when your message is published. We do not use it for any other purpose. Please see our privacy policy for more information.

If you write about specific medications or operations, please do not name health care professionals by name.

All opinions are moderated before being included (to stop spam). We reserve the right to amend opinions where we deem necessary.

Contact Our News Editors

For any corrections of factual information, or to contact the editors please use our feedback form.

Please send any medical news or health news press releases to:

Note: Any medical information published on this website is not intended as a substitute for informed medical advice and you should not take any action before consulting with a health care professional. For more information, please read our terms and conditions.



View the original article here

Tuesday, 30 July 2013

Liver function regenerated and survival extended in mice with hepatic failure using human stem cell-derived hepatocytes

Main Category: Liver Disease / Hepatitis
Also Included In: Stem Cell Research
Article Date: 30 Jul 2013 - 0:00 PDT Current ratings for:
Liver function regenerated and survival extended in mice with hepatic failure using human stem cell-derived hepatocytes
not yet ratednot yet rated

Researchers have generated functional hepatocytes from human stem cells, transplanted them into mice with acute liver injury, and shown the ability of these stem-cell derived human liver cells to function normally and increase survival of the treated animals. This promising advance in the development of cell-based therapies to treat liver failure resulting from injury or disease relied on the development of scalable, reproducible methods to produce stem cell-derived hepatocytes in bioreactors, as described in an article in Stem Cells and Development, a peer-reviewed journal from Mary Ann Liebert, Inc., publishers. The article is available free on the Stem Cells and Development website.

Massoud Vosough and coauthors demonstrate a large-scale, integrated manufacturing strategy for generating functional hepatocytes in a single suspension culture grown in a scalable stirred bioreactor. In the article "Generation of Functional Hepatocyte-Like Cells from Human Pluripotent Stem Cells in a Scalable Suspension Culture" the authors describe the method used for scale-up, differentiation of the pluripotent stem cells into liver cells, and characterization and purification of the hepatocytes based on their physiological properties and the expression of liver cell biomarkers.

David C. Hay, MRC Centre for Regenerative Medicine, University of Edinburgh, U.K., comments on the importance of Vosough et al.'s contribution to the scientific literature in his editorial in Stem Cells and Development entitled "Rapid and Scalable Human Stem Cell Differentiation: Now in 3D." The researchers "developed a system for mass manufacture of stem cell derived hepatocytes in numbers that would be useful for clinical application," creating possibilities for future "immune matched cell based therapies," says Hay. Such approaches could be used to correct mutated genes in stem cell populations prior to differentiation and transplantation, he adds.

"The elephant in the room for stem cell therapy rarely even acknowledged let alone addressed in the literature is that of scalable production of cells for translational application," says Editor-in-Chief Graham C. Parker, PhD, research professor, Carman and Ann Adams Department of Pediatrics, Wayne State University School of Medicine. "Baharvand's groups' landmark publication not only demonstrates but exquisitely describes the methodology required to scale up stem cell populations for clinical application with a rigor to satisfy necessary manufacturing standards."

Article adapted by Medical News Today from original press release. Click 'references' tab above for source.
Visit our liver disease / hepatitis section for the latest news on this subject. Please use one of the following formats to cite this article in your essay, paper or report:

MLA

Liebert, Mary Ann. "Liver function regenerated and survival extended in mice with hepatic failure using human stem cell-derived hepatocytes." Medical News Today. MediLexicon, Intl., 30 Jul. 2013. Web.
30 Jul. 2013. APA

Please note: If no author information is provided, the source is cited instead.


'Liver function regenerated and survival extended in mice with hepatic failure using human stem cell-derived hepatocytes'

Please note that we publish your name, but we do not publish your email address. It is only used to let you know when your message is published. We do not use it for any other purpose. Please see our privacy policy for more information.

If you write about specific medications or operations, please do not name health care professionals by name.

All opinions are moderated before being included (to stop spam). We reserve the right to amend opinions where we deem necessary.

Contact Our News Editors

For any corrections of factual information, or to contact the editors please use our feedback form.

Please send any medical news or health news press releases to:

Note: Any medical information published on this website is not intended as a substitute for informed medical advice and you should not take any action before consulting with a health care professional. For more information, please read our terms and conditions.



View the original article here

Sunday, 28 July 2013

New biosensor that warns when athletes are about to 'hit the wall' undergoes first human tests

Main Category: Medical Devices / Diagnostics
Also Included In: Sports Medicine / Fitness
Article Date: 26 Jul 2013 - 1:00 PDT Current ratings for:
New biosensor that warns when athletes are about to 'hit the wall' undergoes first human tests
not yet ratednot yet rated

A new biosensor, applied to the human skin like a temporary tattoo, can alert marathoners, competitive bikers and other "extreme" athletes that they're about to "bonk," or "hit the wall," scientists are reporting. The study, in ACS' journal Analytical Chemistry, describes the first human tests of the sensor, which also could help soldiers and others who engage in intense exercise - and their trainers - monitor stamina and fitness.

Joseph Wang and colleagues explain that the sensor monitors lactate, a form of lactic acid released in sweat. Lactate forms when the muscles need more energy than the body can supply from the "aerobic" respiration that suffices during mild exercise. The body shifts to "anaerobic" metabolism, producing lactic acid and lactate. That helps for a while, but lactate builds up in the body, causing extreme fatigue and the infamous "bonking out," where an athlete just cannot continue. Current methods of measuring lactate are cumbersome, require blood samples or do not give instant results. Wang's team sought to develop a better approach.

They describe the first human tests of a lactate sensor applied to the skin like a temporary tattoo that stays on and flexes with body movements. Tests on 10 human volunteers showed that the sensor accurately measured lactate levels in sweat during exercise. "Such skin-worn metabolite biosensors could lead to useful insights into physical performance and overall physiological status, hence offering considerable promise for diverse sport, military, and biomedical applications," say the scientists. Future research will further correlate sweat lactate levels with fitness, performance and blood lactate levels, Wang added.

Article adapted by Medical News Today from original press release. Click 'references' tab above for source.
Visit our medical devices / diagnostics section for the latest news on this subject.

The authors acknowledge funding from the National Science Foundation, the National Institutes of Health IMSD program, the UCSD von Liebig Entrepreneurism Center under the U.S. Department of Energy-sponsored Southern California Clean Energy Technology Acceleration Program and the National Natural Science Foundation of China.

American Chemical Society

Please use one of the following formats to cite this article in your essay, paper or report:

MLA

American Chemical Society. "New biosensor that warns when athletes are about to 'hit the wall' undergoes first human tests." Medical News Today. MediLexicon, Intl., 26 Jul. 2013. Web.
27 Jul. 2013. APA

Please note: If no author information is provided, the source is cited instead.


'New biosensor that warns when athletes are about to 'hit the wall' undergoes first human tests'

Please note that we publish your name, but we do not publish your email address. It is only used to let you know when your message is published. We do not use it for any other purpose. Please see our privacy policy for more information.

If you write about specific medications or operations, please do not name health care professionals by name.

All opinions are moderated before being included (to stop spam). We reserve the right to amend opinions where we deem necessary.

Contact Our News Editors

For any corrections of factual information, or to contact the editors please use our feedback form.

Please send any medical news or health news press releases to:

Note: Any medical information published on this website is not intended as a substitute for informed medical advice and you should not take any action before consulting with a health care professional. For more information, please read our terms and conditions.



View the original article here

New understanding of how Ebola virus suppresses the human immune system

Main Category: Tropical Diseases
Also Included In: Immune System / Vaccines
Article Date: 25 Jul 2013 - 1:00 PDT Current ratings for:
New understanding of how Ebola virus suppresses the human immune system
not yet ratednot yet rated

Disabling a protein in Ebola virus cells can stop the virus from replicating and infecting the host, according to researchers from the Icahn School of Medicine at Mount Sinai. The data are published in July in the journal Cell Host and Microbe.

Ebola viruses cause severe disease in humans because they can deactivate the innate immune system. Christopher Basler, PhD, Associate Professor of Microbiology at Mount Sinai and his team have studied how Ebola viruses evade the immune system, and discovered that a viral protein called VP35 is critical to deactivating the immune system. They found that when VP35 interacts with an important cellular protein called PACT, it blocks PACT from activating the immune system, allowing the virus to spread.

"Ebola viruses are extremely lethal, and are a great threat to human health as a bioweapon," said Dr. Basler. "Currently, there is no approved vaccine or treatment. Our findings will hopefully pave the way for future antiviral treatments."

With the help of collaborators at the University of Texas with access to special high containment facilities, Dr. Basler and his team infected healthy cells with Ebola virus cells that had mutated versions of VP35. The mutations disabled VP35's ability to interact with PACT, therefore allowing it to activate the immune system and prevent the virus from replicating. Next, the researchers overexpressed PACT in healthy cells, and infected them with Ebola virus cells. They found that overexpressing PACT also inhibited viral replication.

Armed with this discovery, Dr. Basler and his team hope to develop drugs that disrupt the interaction of VP35 with PACT, or drugs that overexpress PACT.

Article adapted by Medical News Today from original press release. Click 'references' tab above for source.
Visit our tropical diseases section for the latest news on this subject.

The work was supported in part by National Institutes of Health grants AI059536 and AI093786 .

The Mount Sinai Hospital / Mount Sinai School of Medicine

Please use one of the following formats to cite this article in your essay, paper or report:

MLA

The Mount Sinai Hospital / Mount Sinai School of M. "New understanding of how Ebola virus suppresses the human immune system." Medical News Today. MediLexicon, Intl., 25 Jul. 2013. Web.
25 Jul. 2013. APA

Please note: If no author information is provided, the source is cited instead.


'New understanding of how Ebola virus suppresses the human immune system'

Please note that we publish your name, but we do not publish your email address. It is only used to let you know when your message is published. We do not use it for any other purpose. Please see our privacy policy for more information.

If you write about specific medications or operations, please do not name health care professionals by name.

All opinions are moderated before being included (to stop spam). We reserve the right to amend opinions where we deem necessary.

Contact Our News Editors

For any corrections of factual information, or to contact the editors please use our feedback form.

Please send any medical news or health news press releases to:

Note: Any medical information published on this website is not intended as a substitute for informed medical advice and you should not take any action before consulting with a health care professional. For more information, please read our terms and conditions.



View the original article here

Saturday, 27 July 2013

Full moon affects not only werewolves but human sleep too

Editor's Choice
Academic Journal
Main Category: Sleep / Sleep Disorders / Insomnia
Also Included In: Endocrinology;  Biology / Biochemistry
Article Date: 26 Jul 2013 - 2:00 PDT Current ratings for:
Full moon affects not only werewolves but human sleep too
5 starsnot yet rated

It appears there is some truth in the saying that it is harder to get a good night's sleep when the moon is full. Tests on Swiss volunteers as they spent nights in a sleep lab showed a link between moon phases and sleep patterns: sleep was more disturbed when there was a full moon.

Led by a team from the University of Basel, the researchers report in the July 25th online issue of Current Biology how they found a full moon disrupts sleep quality.

Lead author Professor Christian Cajochen, who is based at the Centre for Chronobiology at the Psychiatric Hospital of the University of Basel, and colleagues analyzed data taken from over 30 healthy volunteers of various ages as they slept in a sleep lab.

As the participants slept, their brain activity, eye movements, and hormone levels in different phases of sleep were measured.

Neither the lab researchers who took the sleep measurements nor the participants were aware that the authors were later going to do an analysis of the sleep data against moon cycles.

It was only after the lab results were produced that it was decided to compare them to moon phases.

Also, the participants could not see the moon from their beds in the sleep lab.

The analysis showed that the participants did not sleep so well when there was a full moon. This was reflected in both subjective measures (where the participants themselves said whether their night's sleep had been good or not) and the objective measures.

On nights with a full moon:

Brain activity associated with deep sleep (during non-rapid eye movement) fell by nearly a third,On average it took the volunteers 5 minutes longer to fall asleep, and their sleep was 20 minutes shorter, and There was a drop in levels of melatonin, a protein that helps regulate sleep and wake cycles.

The authors write:

"This is the first reliable evidence that a lunar rhythm can modulate sleep structure in humans when measured under the highly controlled conditions of a circadian laboratory study protocol without time cues."

Cajochen suggests the response to moon phase that they observed, which they call the "circalunar rhythm," could be a relic of ancient times when human behavior was more heavily influenced by the moon.

It would seem that even for some of today's humans, paying attention to phases of the moon can be a lifesaver. A study published in 2011 suggests you are less likely to end up as a lion's dinner if you pay close attention to the moon; in southeastern Tanzania, that is.

There is evidence that many organisms, especially those that live in the sea, are influenced by moonlight.

However, this study finds that even without being able to see the moonlight, the body is somehow still responding to the fact it is a full moon.

It remains for other studies now to uncover the biology that explains this influence.

A large study from the Netherlands published earlier this month suggests that a good night's sleep boosts the benefits of a healthy lifestyle on the heart.

Written by Catharine Paddock PhD


Copyright: Medical News Today
Not to be reproduced without permission of Medical News Today Visit our sleep / sleep disorders / insomnia section for the latest news on this subject.

"Evidence that the Lunar Cycle Influences Human Sleep";Christian Cajochen, Songül Altanay- Ekici, Mirjam Münch, Sylvia Frey, Vera Knoblauch, Anna Wirz-Justice; Current Biology 1300284, published online 25 July 2013; DOI: 10.1016/j.cub.2013.06.029; Link to Abstract. Additional source: University of Basel news release.

Please use one of the following formats to cite this article in your essay, paper or report:

MLA

Paddock, Catharine. "Full moon affects not only werewolves but human sleep too." Medical News Today. MediLexicon, Intl., 26 Jul. 2013. Web.
27 Jul. 2013. APA

Please note: If no author information is provided, the source is cited instead.


'Full moon affects not only werewolves but human sleep too'

Please note that we publish your name, but we do not publish your email address. It is only used to let you know when your message is published. We do not use it for any other purpose. Please see our privacy policy for more information.

If you write about specific medications or operations, please do not name health care professionals by name.

All opinions are moderated before being included (to stop spam). We reserve the right to amend opinions where we deem necessary.

Contact Our News Editors

For any corrections of factual information, or to contact the editors please use our feedback form.

Please send any medical news or health news press releases to:

Note: Any medical information published on this website is not intended as a substitute for informed medical advice and you should not take any action before consulting with a health care professional. For more information, please read our terms and conditions.



View the original article here

Sunday, 14 July 2013

Physicians for Human Rights Human Rights Groups Petition Iran for Release of HIVAIDS Doctors

progressive newswire Sunday 14th July, 2013

www.IranFreeTheDocs.org MEXICO CITY - August 4 - A coalition of AIDS and human rights organizations that includes Physicians for Human Rights (PHR) and Human Rights Watch (HRW) has launched a campaign to free two Iranian physicians, Drs. Arash Alaei and Kamiar Alaei. The doctors, who are brothers, are active in HIV/AIDS education, prevention and treatment in Iran. According to international news reports, Iranian security forces detained the Drs. Alaei in late June, 2008 and are holding them incommunicado. The doctors' whereabouts remain unknown. On Sunday, the Associated Press and Agence...

Read more

share this story reader comments

View the original article here