Saturday, 17 December 2011

Scientists uncover evidence on how drug-resistant tuberculosis cells form

Scientists uncover evidence on how drug-resistant tuberculosis cells form [ Back to EurekAlert! ] Public release date: 15-Dec-2011
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Contact: Todd Datz
tdatz@hsph.harvard.edu
617-432-8413
Harvard School of Public Health

Findings could lead to more effective treatment for global disease

Boston, MA A new study led by Harvard School of Public (HSPH) researchers provides a novel explanation as to why some tuberculosis cells are inherently more difficult to treat with antibiotics. The discovery, which showed that the ways mycobacteria cells divide and grow determine their susceptibility to treatment with drugs, could lead to new avenues of drug development that better target tuberculosis cells.

The study appears December 15, 2011 in an advance online edition of Science.

"We have found that the consequences of the simple and unexpected patterning of mycobacterial growth and division means some bacterial cells have the capacity to survive in the face of antibiotics," said Bree Aldridge, a postdoctoral fellow at HSPH and co-first author of the study.

Tuberculosis is an infectious disease that kills more than 1.5 million people annually. It is a difficult disease to treat; people are prescribed a combination of antibiotics to be taken daily for six to nine months, a regimen that is hard for patients to follow and for nurses and doctors to administer. Even after beginning appropriate treatment, it appears that some of the infectious cells survive for long periods of time.

The HSPH researchers, led by Aldridge, co-first author and visiting scientist Marta Fernandez-Suarez, and senior author Sarah Fortune, assistant professor of immunology and infectious diseases, along with colleagues from Massachusetts General Hospital, set out to determine what distinguishes a cell that lives from one that dies. They designed a unique microfluidic chamber in which they grew Mycobacterium smegmatis cells (which behave similarly to Mycobacterium tuberculosis cells) and filmed their growth with a live-cell imaging system.

The researchers thought that the M. smegmatis cells would divide evenly into similar-sized daughter cells, as bacteria such as E. coli do. Instead, they were surprised to find that the M. smegmatis daughter cells were incredibly diverse, with highly variable sizes and growth rates. They found that this diversity arises because M. smegmatis grow in an unusual fashion, elongating from only one end. When an asymmetric mother cell divides, it creates daughter cells that are very different from one another in fundamental ways, including their growth properties.

The researchers speculated that these physiologically distinct subpopulations of cells would translate into differences in their susceptibility to antibiotics, which target processes essential for growth and division. To test this hypothesis, they treated the cells with different classes of antibiotics and observed how subpopulations of daughter cells responded.

The results showed that the different daughter cells exhibited varying susceptibilities to the treatments, strong evidence that populations of mycobacterial cells contain cells that are inherently tolerant of antibiotics and providing an important piece to the puzzle of why tuberculosis is such a difficult disease to treat.

"It is surprising to discover that mycobacteria differ from other bacteria such as E. coli in such a fundamental way," said Fortune. "It is easy to assume that most bacteria work in a similar fashion. While that's true sometimes, this study shows that bacterial species, such as TB, may be strikingly different from each other and thus require different methods of treatment." The researchers hope that their findings lead to the development of treatment regimens in which antibiotics are combined to specifically target tolerant subpopulations of cells.

###

Support for this study was provided by a National Institute of Health Director's New Innovator Award, Doris Duke Charitable Foundation, the United States Army Medical Research Acquisition Activity, the National Institute of Biomedical Imaging and Bioengineering and the Massachusetts General Hospital Executive Committee on Research.

"Asymmetry and aging of mycobacterial cells leads to variable growth and antibiotic susceptibility," Science, Bree B. Aldridge, Marta Fernandez-Suarez, Danielle Heller, Vijay Ambravaneswaran, Daniel Irimia, Mehmet Toner, Sarah Fortune, online Dec. 15, 2011


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Scientists uncover evidence on how drug-resistant tuberculosis cells form [ Back to EurekAlert! ] Public release date: 15-Dec-2011
[ | E-mail | Share Share ]

Contact: Todd Datz
tdatz@hsph.harvard.edu
617-432-8413
Harvard School of Public Health

Findings could lead to more effective treatment for global disease

Boston, MA A new study led by Harvard School of Public (HSPH) researchers provides a novel explanation as to why some tuberculosis cells are inherently more difficult to treat with antibiotics. The discovery, which showed that the ways mycobacteria cells divide and grow determine their susceptibility to treatment with drugs, could lead to new avenues of drug development that better target tuberculosis cells.

The study appears December 15, 2011 in an advance online edition of Science.

"We have found that the consequences of the simple and unexpected patterning of mycobacterial growth and division means some bacterial cells have the capacity to survive in the face of antibiotics," said Bree Aldridge, a postdoctoral fellow at HSPH and co-first author of the study.

Tuberculosis is an infectious disease that kills more than 1.5 million people annually. It is a difficult disease to treat; people are prescribed a combination of antibiotics to be taken daily for six to nine months, a regimen that is hard for patients to follow and for nurses and doctors to administer. Even after beginning appropriate treatment, it appears that some of the infectious cells survive for long periods of time.

The HSPH researchers, led by Aldridge, co-first author and visiting scientist Marta Fernandez-Suarez, and senior author Sarah Fortune, assistant professor of immunology and infectious diseases, along with colleagues from Massachusetts General Hospital, set out to determine what distinguishes a cell that lives from one that dies. They designed a unique microfluidic chamber in which they grew Mycobacterium smegmatis cells (which behave similarly to Mycobacterium tuberculosis cells) and filmed their growth with a live-cell imaging system.

The researchers thought that the M. smegmatis cells would divide evenly into similar-sized daughter cells, as bacteria such as E. coli do. Instead, they were surprised to find that the M. smegmatis daughter cells were incredibly diverse, with highly variable sizes and growth rates. They found that this diversity arises because M. smegmatis grow in an unusual fashion, elongating from only one end. When an asymmetric mother cell divides, it creates daughter cells that are very different from one another in fundamental ways, including their growth properties.

The researchers speculated that these physiologically distinct subpopulations of cells would translate into differences in their susceptibility to antibiotics, which target processes essential for growth and division. To test this hypothesis, they treated the cells with different classes of antibiotics and observed how subpopulations of daughter cells responded.

The results showed that the different daughter cells exhibited varying susceptibilities to the treatments, strong evidence that populations of mycobacterial cells contain cells that are inherently tolerant of antibiotics and providing an important piece to the puzzle of why tuberculosis is such a difficult disease to treat.

"It is surprising to discover that mycobacteria differ from other bacteria such as E. coli in such a fundamental way," said Fortune. "It is easy to assume that most bacteria work in a similar fashion. While that's true sometimes, this study shows that bacterial species, such as TB, may be strikingly different from each other and thus require different methods of treatment." The researchers hope that their findings lead to the development of treatment regimens in which antibiotics are combined to specifically target tolerant subpopulations of cells.

###

Support for this study was provided by a National Institute of Health Director's New Innovator Award, Doris Duke Charitable Foundation, the United States Army Medical Research Acquisition Activity, the National Institute of Biomedical Imaging and Bioengineering and the Massachusetts General Hospital Executive Committee on Research.

"Asymmetry and aging of mycobacterial cells leads to variable growth and antibiotic susceptibility," Science, Bree B. Aldridge, Marta Fernandez-Suarez, Danielle Heller, Vijay Ambravaneswaran, Daniel Irimia, Mehmet Toner, Sarah Fortune, online Dec. 15, 2011


[ Back to EurekAlert! ] [ | E-mail | Share Share ]

?


AAAS and EurekAlert! are not responsible for the accuracy of news releases posted to EurekAlert! by contributing institutions or for the use of any information through the EurekAlert! system.


Source: http://www.eurekalert.org/pub_releases/2011-12/hsop-sue121311.php

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Wednesday, 7 December 2011

US volunteers in North Korea to build homes (AP)

PYONGYANG, North Korea ? A group of Americans is in North Korea to kick off a project to build 50 homes for families working at a tree farm outside Pyongyang.

Six volunteers affiliated with the Fuller Center for Housing arrived Tuesday. Their trip comes at a time of improving relations between the U.S. and North Korea.

The 50-unit project will house the families of workers at a tree nursery in Osan-ri.

Participants with the nonprofit Fuller Center say they'll be working side by side with North Koreans to build the homes.

They're aiming to finish three homes this week, and other volunteers are expected to arrive in coming months to help complete the project.

In Americus, Georgia, Fuller Center President David Snell called the project a "true mission of peace."

The United States and North Korea fought on opposite sides of the Korean War and do not have diplomatic relations. Diplomats from the two countries recently held talks about resuming six-nation nuclear disarmament talks.

Source: http://us.rd.yahoo.com/dailynews/rss/asia/*http%3A//news.yahoo.com/s/ap/20111206/ap_on_re_as/as_nkorea_us_volunteers

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Zimbabwe president party holds crucial convention (AP)

HARARE, Zimbabwe ? Loyalists of the Zimbabwe president's party are gathering in the nation's west to chart the path toward elections to end the nation's fragile 30-month coalition.

Rugare Gumbo, spokesman for President Robert Mugabe's ZANU PF party, said the five-day convention which launches Wednesday will be a time for "introspection" and preparation for polling next year.

Mugabe, traveling to the second city of Bulawayo for the gathering of some 3,000 delegates has described the coalition brokered by regional leaders as "unconstitutional and illegal," having surpassed its original two-year lifespan.

The coalition followed disputed and violent elections in 2008. Rights groups accuse Mugabe's party, facing its own internal splits, of already starting a campaign of violence and intimidation to sway polling.

Source: http://us.rd.yahoo.com/dailynews/rss/world/*http%3A//news.yahoo.com/s/ap/20111206/ap_on_re_af/af_zimbabwe_mugabe_s_party

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Tuesday, 6 December 2011

Video: Do you know what to do in a plane crash?

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Source: http://www.msnbc.msn.com/id/21134540/vp/45550845#45550845

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Nintendo UK appoints new head of communications | VG247

Mon, Dec 05, 2011 | 14:33 GMT

Nintendo?s announced that Jo Bartlett will become its new head of communications in the UK. Bartlett, who?s previously done PR for PlayStation and Warner Bros., replaces Rob Saunders, who left the company back in April this year for Apple. Until now, his role had been left vacant. More details are on MCV.

Source: http://www.vg247.com/2011/12/05/nintendo-uk-appoints-new-head-of-communications/

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