The molecular biology of your poop: How your gut reacts to antibiotic treatment

The molecular biology of your poop: How your gut reacts to antibiotic treatment

August 10, 2021 Comments Off on The molecular biology of your poop: How your gut reacts to antibiotic treatment By admin

New research from a group of scientists at the University of Southern California has uncovered a potentially important aspect of how the human gut reacts when it comes to a host of antibiotic treatments, including the flu shot.

The team is the first to show how bacteria react to various types of antibiotics, and they say it shows the microbiome is not just about the drugs that are in them.

The study, published in the journal Nature Medicine, was led by scientists at UC San Diego and the U.S. Department of Defense.

It was funded by the National Institutes of Health (NIH), National Science Foundation (NSF), and the National Defense Authorization Act for Fiscal Year 2020 (NDAA).

“The microbiome is a fascinating and fascinating ecosystem,” said lead researcher Yann LeDoux, who is a postdoctoral fellow at UCSD.

“It’s a complex and interrelated ecosystem that includes hundreds of different bacteria that live on our bodies, in our intestines, and on our skin.”

In the study, LeDouis and colleagues looked at how different antibiotics interact with different bacteria and how this affects the immune system.

“We know that antibiotics kill many bacteria that are present in the gut, but how do the bacteria that aren’t killed by antibiotics interact?”

LeDuches said.

“One of the key questions is how bacteria interact with antibiotics, but there’s a lot of work that needs to be done to understand the interactions.”

The team’s study was funded in part by NSF grants TR-021136 and TR-0190620.

LeDoukas said his team also received funding from the National Institute of Allergy and Infectious Diseases (NIAID), the National Center for Advancing Translational Sciences, the National Cancer Institute, the Defense Advanced Research Projects Agency, and the Center for Genome Engineering.

Researchers also noted that the researchers had a unique opportunity to study how different bacteria interact to each other.

“It’s possible that there are many different bacteria in the human microbiome,” said co-author Andrew G. Johnson, an associate professor of microbiology and immunology at UCSB.

“The question we had to answer is: How do they interact?”

“It was an amazing discovery that, in this particular context, could have a major impact on how antibiotics are used and how they interact with our body.”

This is the second study to reveal a connection between the gut microbiome and antibiotic use.

The first, published this summer in Science Translating Microbial Technologies, examined the microbiome of a large group of people who received different types of antibiotic therapy.

The researchers found that the immune systems of those who received antibiotics differed from those who didn’t, suggesting that the gut microbiota might also have an impact on the immune response.

In this study, the team looked at a broader population, including a group that received antibiotics over a long period of time.

They compared that group with a group who didn.

“The results showed that when we put people who got antibiotics over time into a long-term study, we saw different changes in the microbial composition,” Johnson said.

“That’s the opposite of what you’d expect from a long term study, but it’s still surprising.

That suggests that maybe the microbiome in the long term may have an effect on how the immune responses of the body work.””

There are many things that the microbiome can do to our bodies,” LeDouss said.

For example, it may play a role in our immune response, or it may influence how we metabolize nutrients.

The findings also suggest that antibiotics may play some role in the development of disease, but this study showed that the impact on a host’s immune system may be a bit different from what is currently known about how the microbiome affects immune response.

“The research was funded with a National Science Fund CAREER award.

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