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20 items
Preserving microbial diversity as a keystone of human and planetary health
Nicholas Bokulich· Institute of Food, Nutrition, and Health, ETH Zürich, Switzerland
Apr 15, 2024
A carnivorous mushroom paralyzes and kills nematodes via a volatile ketone
Yi-Yun Lee· Academia Sinica
Mar 17, 2023
How a fungus overcomes the defence of C. elegans
Reinhard Fischer· Karlsruhe Institute of Technology
Mar 17, 2023
Effect of the intratumoral microbiota on spatial and cellular heterogeneity in cancer
Jorge L. Galeano Niño· Fred Hutchinson Cancer Research Center
Feb 16, 2023
The person-to-person transmission landscape of the gut and oral microbiomes
Mireia Valles Colomer· U Trento
Feb 16, 2023
Gut Feelings: The Microbiome as a Key Regulator of Brain & Behaviour Across the Lifespan
John F. Cryan· Dept. Anatomy & Neuroscience, University College Cork
Nov 17, 2022
Plasticity in gut microbe-host interactions
Naama Geva-Zatorsky· Rappaport Technion Integrated Cancer Center
Apr 5, 2022
Plasticity in gut microbe-host interactions
Naama Geva-Zatorsky· Rappaport Technion Integrated Cancer Center
Mar 22, 2022
Role of the gut microbiota in the development of alcohol use disorder
Philippe de Timary· UCLouvain, Belgium, Institute of Neuroscience and Department of Adult Psychiatry
Nov 19, 2021
The gut microbiota is composed of a very large number of bacteria, viruses, fungi and yeasts that play an important role in the body, through the production of a series of metabolites (including neurotransmitters), and through an essential role in the barrier function of the gut and the regulation of immunity and stress response. In this lecture I will present, based mainly on human studies but also on preclinical studies, the evidence for a role of the gut microbiota in the development of alcohol use disorder. I will show the first results of trials to test the effects of nutritional approaches to address these deficits.
Locomotion of Helicobacter pylori: Cell geometry and active confinement
Henry Fu· University of Utah
Sep 10, 2021
Bacteria, soil, carbon, and biosurfactants:From climate related themes to bacterial spreading in unsaturated porous media
Howard Stone· Princeton
Aug 20, 2021
Research talk: Is Escherichia coli information limited when navigating chemical gradients?
Thiery Emonet· Yale
Apr 2, 2021
Apr 2, 2021
Building home in a cholerae way: Morphogenesis of mechanically confined biofilms
Jing Yan· Yale
Feb 12, 2021
Anomalous run-to-tumble switching noise controls E.coli residence time at surfaces
Eric Clément
Jan 29, 2021
“Life in a Tight Spot: How Bacteria Move in Heterogeneous Media”
Sujit Datta· Princeton University
Jan 12, 2021
Bacterial motility is central to processes in agriculture, the environment, and medicine. While motility is typically studied in homogeneous environments, many bacterial habitats—e.g., soils, sediments, and biological gels/tissues—are heterogeneous porous media. Here, through studies of E. coli in transparent 3D porous media, we demonstrate that confinement in a heterogeneous medium fundamentally alters motility. In particular, we show how the paradigm of run-and-tumble motility is dramatically altered by pore-scale confinement, both for cells performing undirected motion and those performing chemotaxis, directed motion in response to a chemical stimulus. Our porous media also enable precisely structured multi-cellular communities to be 3D printed. Using this capability, we show how confinement-dependent chemotaxis enables populations to stabilize large-scale perturbations in their overall morphology. Together, our work thus reveals new principles to predict and control the behavior of bacteria, and active matter in general, in heterogeneous environments.
Interactions between the microbiome and nervous system during early development
Elaine Hsiao· UCLA Department of Integrative Biology and Physiology
Dec 10, 2020
The gut microbiota is emerging as an important modulator of brain function and behavior, as several recent discoveries reveal substantial effects of the microbiome on neurophysiology, neuroimmunity and animal behavior. Despite these findings supporting a “microbiome-gut-brain axis”, the molecular and cellular mechanisms that underlie interactions between the gut microbiota and brain remain poorly understood. To uncover these, the Hsiao laboratory is mining the human microbiota for microbial modulators of host neuroactive molecules, investigating the impact of microbiota-immune system interactions on neurodevelopment and examining the microbiome as an interface between gene-environment interactions in neurological diseases. In particular, our research on effects of the maternal microbiome on offspring development in utero are revealing novel interactions between microbiome-dependent metabolites and fetal thalamocortical axonogenesis. Overall, we aim to dissect biological pathways for communication between the gut microbiota and nervous system, toward understanding fundamental interactions between physiological systems that impact brain and behavior.
Bacterial Peptidoglycans from Microbiota in Neurodevelopment and Behavior
Rochellys Diaz-Heijtz· Karolinska Instiute, Stockholm, Sweden
Nov 5, 2020
Heterogeneity in environment, growth, and cell size in Mycobacterium tuberculosis
Bree Aldridge· Tufts University, USA
Nov 2, 2020
Oct 26, 2020
We are interested in understanding how microbes impact the behavior of host animals. Animal nervous systems likely evolved in environments richly surrounded by microbes, yet the impact of bacteria on nervous system function has been relatively under-studied. A challenge has been to identify systems in which both host and microbe are amenable to genetic manipulation, and which enable high-throughput behavioral screening in response to defined and naturalistic conditions. To accomplish these goals, we use an animal host — the roundworm C. elegans, which feeds on bacteria — in combination with its natural gut microbiome to identify inter-organismal signals driving host-microbe interactions and decision-making. C. elegans has some of the most extensive molecular, neurobiological and genetic tools of any multicellular eukaryote, and, coupled with the ease of gnotobiotic culture in these worms, represents a highly attractive system in which to study microbial influence on host behavior. Using this system, we discovered that commensal bacterial metabolites directly modulate nervous system function of their host. Beneficial gut microbes of the genus Providencia produce the neuromodulator tyramine in the C. elegans intestine. Using a combination of behavioral analysis, neurogenetics, metabolomics and bacterial genetics we established that bacterially produced tyramine is converted to octopamine in C. elegans, which acts directly in sensory neurons to reduce odor aversion and increase sensory preference for Providencia. We think that this type of sensory modulation may increase association of C. elegans with these microbes, increasing availability of this nutrient-rich food source for the worm and its progeny, while facilitating dispersal of the bacteria.