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Topic: C elegans

Seminar
14 seminars
Seminar · Neuroscience

Neural Signal Propagation Atlas of C. elegans

Andrew Leifer · Princeton University, US

Mon, May 19, 2025 · 15:15 UTC

In the age of connectomics, it is increasingly important to understand how the nodes and edges of a brain's anatomical network, or "connectome," gives rise to neural signaling and neural function. I will present the first comprehensive brain-wide cell-resolved causal measurements of how neurons signal to one another in response to stimulation in the nematode C. elegans. I will compare this signal propagation atlas to the worm's known connectome to address fundamental questions of structure and function in the brain.

Seminar · Neuroscience

CNS Control of Peripheral Mitochondrial Form and Function: Mitokines

Andy Dillin · University of California, Berkeley

Tue, Jan 28, 2025 · 04:30 UTC

My laboratory has made an intriguing discovery that mitochondrial stress in one tissue can be communicated to distal tissues. We find that mitochondrial stress in the nervous system triggers the production of entities known as mitokines. These mitokines are discharged from the nervous system, orchestrating a response in peripheral tissues that extends the lifespan of C. elegans. The revelation came as a surprise, given the prevalent belief that cell autonomous mechanisms would underlie the relationship between mitochondrial function and aging. It was also surprising given the prevailing dogma

Seminar · Neuroscience

Inter-tissue signals modify food-seeking behavior in C. elegans

Sreekanth Chalasani · Salk Institute for Biological Studies

Tue, Oct 11, 2022 · 15:00 UTC

Animals modify their behavioral outputs in response to changes in external and internal environments. We use the nematode, C. elegans to probe the pathways linking changes in internal states like hunger with behavior. We find that acute food deprivation alters the localization of two transcription factors, likely releasing an insulin-like peptide from the intestine, which in turn modifies chemosensory neurons and alters behavior. These results present a model for how inter-tissue signals to generate flexible behaviors via gut-brain signaling.

Seminar · Neuroscience

Reprogramming the nociceptive circuit topology reshapes sexual behavior in C. elegans

Vladyslava Pechuk · Oren lab, Weizmann Institute of Science

Wed, Jun 8, 2022 · 17:00 UTC

In sexually reproducing species, males and females respond to environmental sensory cues and transform the input into sexually dimorphic traits. Yet, how sexually dimorphic behavior is encoded in the nervous system is poorly understood. We characterize the sexually dimorphic nociceptive behavior in C. elegans – hermaphrodites present a lower pain threshold than males in response to aversive stimuli, and study the underlying neuronal circuits, which are composed of the same neurons that are wired differently. By imaging receptor expression, calcium responses and glutamate secretion, we show tha

Seminar · Computational Neuroscience

Network science and network medicine: New strategies for understanding and treating the biological basis of mental ill-health

Petra Vértes · Department of Psychiatry, University of Cambridge

Tue, Mar 15, 2022 · 15:00 UTC

The last twenty years have witnessed extraordinarily rapid progress in basic neuroscience, including breakthrough technologies such as optogenetics, and the collection of unprecedented amounts of neuroimaging, genetic and other data relevant to neuroscience and mental health. However, the translation of this progress into improved understanding of brain function and dysfunction has been comparatively slow. As a result, the development of therapeutics for mental health has stagnated too. One central challenge has been to extract meaning from these large, complex, multivariate datasets, which re

Mon, Nov 29, 2021 · 15:00 UTC

In this talk I will discuss our recent findings that sensory signals from the brain adjust the physiology and behavior of the nematode C. elegans, enabling this animal to deal with the lethal threat of hydrogen peroxide. Hydrogen peroxide (H2O2) is the most common chemical threat in the microbial battlefield. Prevention and repair of the damage that hydrogen peroxide inflicts on macromolecules are critical for health and survival. In the first part of the talk, I will discuss our findings that C. elegans represses their own H2O2 defenses in response to sensory perception of Escherichia coli, t

Mon, Nov 15, 2021 · 15:00 UTC

Caenorhabditis elegans must distinguish pathogens from nutritious food sources among the many bacteria to which it is exposed in its environment1. Here we show that a single exposure to purified small RNAs isolated from pathogenic Pseudomonas aeruginosa (PA14) is sufficient to induce pathogen avoidance in the treated worms and in four subsequent generations of progeny. The RNA interference (RNAi) and PIWI-interacting RNA (piRNA) pathways, the germline and the ASI neuron are all required for avoidance behaviour induced by bacterial small RNAs, and for the transgenerational inheritance of this b

Seminar · Neuroscience

Microbiota in the health of the nervous system and the response to stress

Andrea Calixto · Universidad de Valparaiso, Chile

Mon, Sep 27, 2021 · 15:00 UTC

Microbes have shaped the evolution of eukaryotes and contribute significantly to the physiology and behavior of animals. Some of these traits are inherited by the progenies. Despite the vast importance of microbe-host communication, we still do not know how bacteria change short term traits or long-term decisions in individuals or communities. In this seminar I will present our work on how commensal and pathogenic bacteria impact specific neuronal phenotypes and decision making. The traits we specifically study are the degeneration and regeneration of neurons and survival behaviors in animals.

Seminar · Neuroscience

Brain Awareness Week @ IITGN

Dr. Anindya Ghosh Roy · Anindya Ghosh Roy

Wed, Mar 17, 2021 · 19:30 UTC

Traumatic injury in the nervous system leads to devastating consequences such as paralysis. The regenerative capacity of the nervous system is limited in adulthood. In this talk, Dr. Anindya would be sharing how the simple nematode C. elegans with its known connectome can inform us about the biology of nervous system repair.

Seminar · Dynamical Systems

Theory, reimagined

Greg Stephens · VU Amsterdam

Fri, Dec 11, 2020 · 13:00 UTC

Physics offers countless examples for which theoretical predictions are astonishingly powerful. But it’s hard to imagine a similar precision in complex systems where the number and interdependencies between components simply prohibits a first-principles approach, look no further than the challenge of the billions of neurons and trillions of connections within our own brains. In such settings how do we even identify the important theoretical questions? We describe a systems-scale perspective in which we integrate information theory, dynamical systems and statistical physics to extract understan

Seminar · Brain Imaging

A journey through connectomics: from manual tracing to the first fully automated basal ganglia connectomes

Joergen Kornfeld · Massachusetts Institute of Technology

Tue, Nov 17, 2020 · 16:00 UTC

The "mind of the worm", the first electron microscopy-based connectome of C. elegans, was an early sign of where connectomics is headed, followed by a long time of little progress in a field held back by the immense manual effort required for data acquisition and analysis. This changed over the last few years with several technological breakthroughs, which allowed increases in data set sizes by several orders of magnitude. Brain tissue can now be imaged in 3D up to a millimeter in size at nanometer resolution, revealing tissue features from synapses to the mitochondria of all contained cells.

Seminar · Microbiology

Modulation of C. elegans behavior by gut microbes

Michael O'Donnell · Yale University

Mon, Oct 26, 2020 · 14:00 UTC

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 it

Seminar · Neuroscience

Food Mind Control: Regulation of Sensory Behaviors by Gut-Brain Signaling

Piali Sengupta · Brandeis University

Wed, Jul 29, 2020 · 06:00 UTC

How does the presence or absence of food shape and prioritize behavioral decisions? When is food more than just food? As in other animals, prolonged food deprivation dramatically alters sensory behaviors in C. elegans. For instance, it has been known since the mid-1970s that hungry worms no longer respond to temperature changes in their environment, but the underlying mechanisms have been unclear. I will describe unpublished work showing that insulin signaling from the gut regulates thermosensory behaviors as a function of feeding state by engaging a modulatory sensorimotor circuit that gates

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