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Jumat, 04 Februari 2011

How bacteria keep us healthy


How bacteria keep us healthy

How bacteria keep us healthy

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Joerg Graf, associate professor of molecular and cell biology, with medicinal leeches at his lab. His research on bacteria in the gut uses the medicinal leech as a model system. Photo by Peter Morenus


(PhysOrg.com) -- Joerg Graf is studying medicinal leeches for clues about how changes in diet affect microorganisms in the digestive tract.



Many people think of bacteria as disease-causing agents that should be avoided for fear of getting sick. But molecular and cell biologist Joerg Graf points out that we can’t live without them.


He says there are actually more bacteria on and in humans than there are human cells. “If you took a person and removed all the human cells, you would still see the outline of a human body,” made up of bacterial cells, says Graf, an associate professor of molecular and cell biology in the College of Liberal Arts and Sciences.


Bacteria are on our skin, in our mouth and throat, in our intestines, nose, and virtually every nook and cranny of our bodies that is connected with the outside – and almost of all them are not bad for us.


Graf recently received a $1.6 million grant from the National Institutes of Health (NIH) to study bacteria that live in digestive tracts. The project is a collaboration with Pieter Visscher, a professor of marine sciences, and Hillary Morrison, a researcher at the Marine Biological Laboratory at Woods Hole. Their work will help scientists understand the vital role that bacteria play in our everyday health.


Many bacteria are essential to the normal functioning of physiological processes, including digestion and immune responses. The gut microbiome consists of all of the bacteria in the human gut and, for example, digests food that humans otherwise can’t, such as some plant material, as well as providing nutrients in forms that humans can use. Humans acquire these bacteria from their mothers as they pass through the birth canal and from the outside world through the course of their childhood. This is why, explains Graf, people in different parts of the world have different combinations of gut bacteria.


How bacteria keep us healthy
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Joerg Graf displays a leech. Photo by Peter Morenus

Graf and his colleagues are interested in how relationships between bacteria and their hosts have evolved, and how they change over an organism’s lifetime.

“We don’t understand what drives the changes in the gut microbiome,” he says, adding that it’s difficult to study the human gut because there are hundreds of different kinds of bacteria present.


Instead Graf and his colleagues work on a model system. “By having a simple system, we can understand it better using molecular tools.”


The model system they use is the medicinal leech, because the microbiome of its digestive tract is normally dominated by only two types of bacteria. These species help to degrade blood that the leech consumes, providing nutrients to the leech. With only two species to observe, Graf can study how this bacterial community changes with dietary shifts in the organism.


Like humans, leeches undergo a shift in their diet at a young age: while humans spend the first stages of their life drinking only milk, leeches also spend their first few days living only on protein provided by their mother. After feeding the leech its first actual blood meal, the scientists will observe the changes in the leeches’ gut bacteria by looking at the RNA they make, which will in turn produce different proteins that allow the bacteria to degrade the food and provide nutrients to the leech. To perform this work, they will use a gas chromatography-mass spectrometer that was purchased by Kenneth Noll, a professor of molecular and cell biology, using funds from the Provost’s Intermediate Research Equipment Competition.


“The function of these proteins is related to the bacterial species and can determine how diverse the functions are within one species,” and how the function changes as the microbial community changes, says Graf.


One of Graf’s hypotheses is that one of the bacteria uses a “molecular syringe” to inject a toxin that prevents the leech’s natural immune cells from attacking it. This molecular syringe is also a virulence factor that is required to cause disease in other animals, but not to the leech. In the leech, it simply signals that the bacteria are not enemies, and should be left alone.


Additionally, Graf is interested to find out whether these bacteria rely on each other for nutrients. Like the leech itself, one of the bacteria might rely on the other to converting food into a form that it can use, allowing it to grow faster.


All of these questions will help Graf and his colleagues determine how physiology changes when the gut microbiome changes, which could lead to insights about our dependence on the bacteria themselves. For example, people with inflammatory bowel disease have a different microbial community than those without, says Graf. Learning about the changes in bacterial gut communities and its contribution to the host animal could give clues about other diseases.


Graf is also involved with the Human Microbiome Project, which aims to characterize human microbial communities, including that of the gut, and to analyze their role in health and disease. Hundreds of scientists across the U.S. are working on this NIH-funded initiative.


Graf says that for him, being involved with these projects is like working to solve a puzzle.


“There are many different ways to do science,” he says. “We’re at a very exciting time in biology, with new techniques to sequence millions of DNA and RNA molecules. These techniques are proving very powerful.”

Kamis, 03 Februari 2011

The genius of bacteria: Scientists develop IQ test to assess and outsmart bacteria's 'social intelligence'


The genius of bacteria: Scientists develop IQ test to assess and outsmart bacteria's 'social intelligence'

The genius of bacteria

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This is a "smart community" of Paenibacillus vortex bacteria. Credit: Prof. Eshel Ben-Jacob, Tel Aviv University


IQ scores are used to assess the intelligence of human beings. Now Tel Aviv University has developed a "Social-IQ score" for bacteria ? and it may lead to new antibiotics and powerful bacteria-based "green" pesticides for the agricultural industry.



An international team led by Prof. Eshel Ben-Jacob of Tel Aviv University's Department of Physics and Astronomy and his research student Alexandra Sirota-Madi says that their results deepen science's knowledge of the social capabilities of bacteria, one of the most prolific and important organisms on earth. "Bacteria are our worst enemies but they can also be our best friends. To better exploit their capabilities and to outsmart pathogenic bacteria, we must realize their social intelligence," says Prof. Ben-Jacob.


The international team was first to sequence the genome of pattern-forming bacteria, the Paenibacillus vortex (Vortex) discovered two decades ago by Prof. Ben-Jacob and his collaborators. While sequencing the genome, the team developed the first "Bacteria Social-IQ Score" and found that Vortex and two other Paenibacillus strains have the world's highest Social-IQ scores among all 500 sequenced bacteria. The research was recently published in the journal BMC Genomics.


Highly evolved communities


The impact of the team's research is three-fold. First, it shows just how "smart" bacteria can really be –– a new paradigm that has just begun to be recognised by the science community today. Second, it demonstrates bacteria's high level of social intelligence –– how bacteria work together to communicate and grow. And finally, the work points out some potentially significant applications in medicine and agriculture.


The researchers looked at genes which allow the bacteria to communicate and process information about their environment, making decisions and synthesizing agents for defensive and offensive purposes. This research shows that bacteria are not simple solitary organisms, or "low level" entities, as earlier believed ? they are highly social and evolved creatures. They consistently foil the medical community as they constantly develop strategies against the latest antibiotics. In the West, bacteria are one of the top three killers in hospitals today.


The recent study shows that everyday pathogenic bacteria are not so smart: their S-IQ score is just at the average level. But the social intelligence of the Vortex bacteria is at the "genius range": if compared to human IQ scores it is about 60 points higher than the average IQ at 100. Armed with this kind of information on the social intelligence of bacteria, researchers will be better able to outsmart them, says Prof. Ben-Jacob.


This information can also be directly applied in "green" agriculture or biological control, where bacteria's advanced offense strategies and toxic agents can be used to fight harmful bacteria, fungi and even higher organisms.


Tiny biotechnology factories


Bacteria are often found in soil, and live in symbiotic harmony with a plant's roots. They help the roots access nutrients, and in exchange the bacteria eat sugar from the roots.


For that reason, bacteria are now applied in agriculture to increase the productivity of plants and make them stronger against pests and disease. They can be used instead of fertilizer, and also against insects and fungi themselves. Knowing the Social-IQ score could help developers determine which bacteria are the most efficient.


"Thanks to the special capabilities of our bacteria strain, it can be used by researchers globally to further investigate the social intelligence of bacteria," says co-author Sirota-Madi. "When we can determine how smart they really are, we can use them as biotechnology factories and apply them optimally in agriculture."

Selasa, 25 Januari 2011

The good, the bad and the 'green' -- harnessing the potential of bacteria


The good, the bad and the 'green' -- harnessing the potential of bacteria

Harnessing the potential of bacteria

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(PhysOrg.com) -- A diverse family of bacteria that can cause a potentially fatal illness in humans but could offer a greener alternative to petrol to power our cars will be the subject of a talk by a University of Nottingham academic at an international conference.



Professor Nigel Minton, one of the world's leading experts on the Clostridium bacteria, will be presenting at the Society for Applied Microbiology (SfAM) annual Winter Meeting, being held at the Royal Society in London on January 12.


In his presentation Professor Minton will discuss the potential exploitation of the anaerobic, Gram-positive Clostridium bacteria — a few strains of which have given the genus a bad name.


Clostridium difficile infection is the most significant cause of hospital-acquired diarrhoea and is seven times more deadly than MRSA. The bacterium is present in the gut of up to three per cent of healthy adults and 66 per cent of infants. Usually it is kept in check by the healthy balance of bacteria in the gut but when this is disturbed by certain antibiotics, C.difficile can multiply rapidly and produce toxins that cause illness and death. The disease is spread through spores, usually from poor hygiene. The emergence of highly virulent clones means that cases and fatalities from the illness are on the increase.


In addition, there has been heightened public concern in recent years about the potential use by bioterrorists of the food-borne pathogen Clostridium botulinum, which causes the rare but serious paralytic illness botulism.


However, Professor Minton will argue, there is an urgent need to understand the basic biology of these important bacteria to enable scientists to both prevent and treat the diseases they cause and to harness the potentially beneficial properties which they also offer.


In particular, high oil prices and the need to move towards a more sustainable energy economy has sparked an increased interest in the use of clostridial fermentations for biofuel production. Strains of Clostridium can offer a highly effective method of producing renewable ethanol and butanol.


Latest research which has demonstrated that some Clostridia spores have a unique ability to selectively germinate in tumours indicates that the bacteria could even potentially play a part in treating cancer.


The meeting organised by SfAM, the UK's oldest microbiology society, will bring together more than 100 international scientists to learn about two of the hottest topics in microbiology — probiotics and anaerobic microbes.