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marți, 13 decembrie 2011

Communication Via Tiny Protein Triggers Defensive Response In Plants

Main Category: Infectious Diseases / Bacteria / Viruses
Also Included In: Water - Air Quality / Agriculture;  Public Health
Article Date: 13 Dec 2011 - 3:00 PST

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Scientists have discovered a new signal that helps invading bacteria communicate but also helps targeted rice plants coordinate defensive attacks on the disease-causing invaders, a finding that could lead to new methods of combatting infection not just in plants, but in humans.

Findings from the study, conducted by a team of researchers led by a University of California, Davis, scientist, were reported in the journal /i>PLoS ONE and in the journal Discovery Medicine.

"Just as invading armies often use coded messages to coordinate attacks on their targets, so single-celled bacteria use biological signals to communicate when they attack plants and animals," said Pamela Ronald, a UC Davis professor of plant pathology and the lead researcher on the study. "Scientists have known this for 20 years, however results from our study reveal a type of bacterial signal that has never been described before."

UC Davis has a long history of tackling agricultural and environmental challenges related to rice production in the United States and around the world. Today, campus researchers are using molecular biology to better understand how to improve the hardiness and yield of this grain, which is a staple food for more than half of the world's population and an important model for plant research.

Up until now, scientists thought that two major groups of bacteria used two distinctly different types of communication codes, Ronald said. However Ax21, the small protein examined in this study, doesn't fit into either of those previously identified communication codes.

Ax21 is made inside the bacterial cell and processed to generate a shorter signal that is secreted outside the bacterium. This signal tips off other bacteria to assemble themselves into elaborate protective bunkers, called biofilms, which make the bacteria resistant to drying out and antibiotic treatment.

"Additionally, Ax21 triggers a change in the expression of nearly 500 bacterial genes, transforming the bacteria from fairly benign organisms into fierce invaders," Ronald said.

"In essence, through communication and communal living, the bacteria increase their chances of survival and proliferation," she said, noting that in rice, the bacteria multiply rapidly in the arteries that transport water, causing the plant to wither and die.

While most rice plants have little defense against the Ax21-mediated bacterial attack, some rice plants carry an immune receptor called XA21 that detects the Ax21 protein produced by the invading bacteria. XA21 belongs to a large class of immune receptors in plants and animals.

The importance of these receptors in immunity is reflected in the awarding of the 2011 Nobel Prize in physiology and medicine to researchers Bruce Beutler of The Scripps Research Institute in La Jolla and Jules Hoffman of the National Center of Scientific Research in Strasbourg, France, for their discoveries of similar receptors in animals.

The new study points out that the Ax21 signaling protein triggers the XA21 immune receptor to biologically alert the plant to launch a powerful defense response against the invading bacteria. The researchers also demonstrated that Ax21 is present in a human disease-causing bacterium that is known to infect hospital patients.

"This study demonstrates that bacteria communicate using private messages. However, plants can intercept these messages and gain a tactical advantage in the evolutionary battle," Ronald said. " It's a fascinating story."

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. Ronald has posted an article about the study on her blog, "Tomorrow's Table," at http://scienceblogs.com/tomorrowstable/.
Researchers collaborating on the study are from UC Davis and Kyung Hee University, Korea.
Funding for the study was provided by the U.S. Department of Agriculture and the National Institutes of Health.
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vineri, 9 decembrie 2011

Sewage Treatment Plants May Contribute To Antibiotic Resistance Problem

Main Category: Infectious Diseases / Bacteria / Viruses
Also Included In: Water - Air Quality / Agriculture;  MRSA / Drug Resistance
Article Date: 09 Dec 2011 - 1:00 PST

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Water discharged into lakes and rivers from municipal sewage treatment plants may contain significant concentrations of the genes that make bacteria antibiotic-resistant. That's the conclusion of a new study on a sewage treatment plant on Lake Superior in the Duluth, Minn., harbor that appears in ACS' journal Environmental Science & Technology.

Timothy M. LaPara and colleagues explain that antibiotic-resistant bacteria - a major problem in medicine today - are abundant in the sewage that enters municipal wastewater treatment plants. Treatment is intended to kill the bacteria, and it removes many of the bacterial genes that cause antibiotic resistance. However, genes or bacteria may be released in effluent from the plant. In an effort to determine the importance of municipal sewage treatment plants as sources of antibiotic resistance genes, the scientists studied releases of those genes at the Duluth facility.

Although the Duluth facility uses some of the most advanced technology for cleaning wastewater - so-called tertiary treatment - the study identified it as an important source of antibiotic resistance genes. Sampling of water at 13 locations detected three genes, for instance, that make bacteria resistant to the tetracycline group of antibiotics, which are used to treat conditions ranging from acne to sexually transmitted diseases to anthrax and bubonic plague. LaPara's team says their research demonstrates that even the most high-tech sewage treatment plants may be significant sources of antibiotic resistance genes in waterways.

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. The authors acknowledge funding from the National Science Foundation and the Minnesota Environment and Natural Resources Trust Fund.
American Chemical Society Please use one of the following formats to cite this article in your essay, paper or report:

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9 Dec. 2011. APA

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View the original article here