Microbiology seminars
September 2020
Neuro-immune interactions in pain and host defense
Isaac Chiu· Harvard Medical School, Boston, MA, USA
Mon, Sep 21 · 15:00 UTC
The Chiu laboratory focuses on neuro-immune interactions in pain, itch, and tissue inflammation. Dr. Chiu’s research has uncovered molecular interactions between the nervous system, the immune system and microbes that modulates host defense. He has found that sensory neurons can directly detect bacterial pathogens and their toxins to produce pain. Neurons in turn release neuropeptides that modulate immune cells in host defense. These interactions occur at major tissue barriers in the body including the gut, skin and lungs. In this talk, he will discuss these major neuro-immune interactions and how understanding them could lead to novel approaches to treat pain or inflammation.
August 2020
Can we predict the diversity of real populations? Part II: What determines microbial diversity?
Workshop, Multiple Speakers: Erik van Nimwegen (U Basel), Jacopo Grilli (ICTP), Maitreya Dunham (U Washington), Nandita Garud (UCLA)· Emory University
Tue, Aug 25 · 05:25 UTC
Microbes make up the vast majority of the tree of life. While we know very little about most microbial species, large-scale sequencing is giving us glimpses of the diversity that exists both within species and in ecosystems. The challenge now is to find the patterns in this diversity and understand them. This session features provocative talks on attempts to meet that challenge.
Swimming in the third domain: archaeal extremophiles
Laurence Wilson· University of York
Wed, Aug 19 · 15:00 UTC
Archaea have evolved to survive in some of the most extreme environments on earth. Life in extreme, nutrient-poor conditions gives the opportunity to probe fundamental energy limitations on movement and response to stimuli, two essential markers of living systems. Here we use three-dimensional holographic microscopy and computer simulations to show that halophilic archaea achieve chemotaxis with power requirements one hundred-fold lower than common eubacterial model systems. Their swimming direction is stabilised by their flagella (archaella), enhancing directional persistence in a manner similar to that displayed by eubacteria, albeit with a different motility apparatus. Our experiments and simulations reveal that the cells are capable of slow but deterministic chemotaxis up a chemical gradient, in a biased random walk at the thermodynamic limit.
No membrane, no problem: condensing bacterial organelles
Steph Weber· McGill University
Wed, Aug 12 · 00:00 UTC
Dynamics of microbiota communities during physical perturbation
Carolina Tropini· UBC
Fri, Aug 7 · 00:00 UTC
End of results.