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Topic: Optogenetics

Seminar
53 seminars
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The Allen Institute for Neural Dynamics seeks a Research Associate I to record thousands of neurons across brain regions while mice perform cognitive and foraging tasks. The role uses Neuropixels electrophysiology, optogenetics, optical physiology, rodent behavior, histology, and data-quality analysis within a collaborative brain-wide-circuit programme.

Seminar · Neuroscience

Neural circuits underlying sleep structure and functions

Antoine Adamantidis · University of Bern

Fri, Jun 13, 2025 · 11:00 UTC

Sleep is an active state critical for processing emotional memories encoded during waking in both humans and animals. There is a remarkable overlap between the brain structures and circuits active during sleep, particularly rapid eye-movement (REM) sleep, and the those encoding emotions. Accordingly, disruptions in sleep quality or quantity, including REM sleep, are often associated with, and precede the onset of, nearly all affective psychiatric and mood disorders. In this context, a major biomedical challenge is to better understand the underlying mechanisms of the relationship between (REM)

Seminar · Neuroscience

Fear learning induces synaptic potentiation between engram neurons in the rat lateral amygdala

Kenneth Hayworth · Carboncopies Foundation & BPF Aspirational Neuroscience

Tue, Apr 22, 2025 · 06:00 UTC

Fear learning induces synaptic potentiation between engram neurons in the rat lateral amygdala. This study by Marios Abatis et al. demonstrates how fear conditioning strengthens synaptic connections between engram cells in the lateral amygdala, revealed through optogenetic identification of neuronal ensembles and electrophysiological measurements. The work provides crucial insights into memory formation mechanisms at the synaptic level, with implications for understanding anxiety disorders and developing targeted interventions. Presented by Dr. Kenneth Hayworth, this journal club will explore

Seminar · Neuroscience

Mouse Motor Cortex Circuits and Roles in Oromanual Behavior

Gordon Shepherd · Northwestern University

Tue, Jan 14, 2025 · 01:00 UTC

I’m interested in structure-function relationships in neural circuits and behavior, with a focus on motor and somatosensory areas of the mouse’s cortex involved in controlling forelimb movements. In one line of investigation, we take a bottom-up, cellularly oriented approach and use optogenetics, electrophysiology, and related slice-based methods to dissect cell-type-specific circuits of corticospinal and other neurons in forelimb motor cortex. In another, we take a top-down ethologically oriented approach and analyze the kinematics and cortical correlates of “oromanual” dexterity as mice hand

Seminar · Electrophysiology

Combined electrophysiological and optical recording of multi-scale neural circuit dynamics

Chris Lewis · University of Zurich

Tue, Apr 30, 2024 · 14:00 UTC

This webinar will showcase new approaches for electrophysiological recordings using our silicon neural probes and surface arrays combined with diverse optical methods such as wide-field or 2-photon imaging, fiber photometry, and optogenetic perturbations in awake, behaving mice. Multi-modal recording of single units and local field potentials across cortex, hippocampus and thalamus alongside calcium activity via GCaMP6F in cortical neurons in triple-transgenic animals or in hippocampal astrocytes via viral transduction are brought to bear to reveal hitherto inaccessible and under-appreciated a

Seminar · Computational Neuroscience

Roles of inhibition in stabilizing and shaping the response of cortical networks

Nicolas Brunel · Duke University

Fri, Apr 5, 2024 · 06:30 UTC

Inhibition has long been thought to stabilize the activity of cortical networks at low rates, and to shape significantly their response to sensory inputs. In this talk, I will describe three recent collaborative projects that shed light on these issues. (1) I will show how optogenetic excitation of inhibition neurons is consistent with cortex being inhibition stabilized even in the absence of sensory inputs, and how this data can constrain the coupling strengths of E-I cortical network models. (2) Recent analysis of the effects of optogenetic excitation of pyramidal cells in V1 of mice and mon

Thu, Oct 26, 2023 · 14:00 UTC

Recent studies identified memory engram neurons, a neuronal population that is recruited by initial learning and is reactivated during memory recall. Memory engram neurons are connected to one another through memory engram synapses in a distributed network of brain areas. Our central hypothesis is that an associative memory is encoded and consolidated by selective strengthening of engram synapses. We are testing this hypothesis, using a combination of engram cell labeling, optogenetic/chemogenetic, electrophysiological, and virus tracing approaches in rodent models of contextual fear condit

Seminar · Neuroscience

Rodents to Investigate the Neural Basis of Audiovisual Temporal Processing and Perception

Ashley Schormans · BrainsCAN, Western University, Canada.

Wed, Sep 27, 2023 · 04:00 UTC

To form a coherent perception of the world around us, we are constantly processing and integrating sensory information from multiple modalities. In fact, when auditory and visual stimuli occur within ~100 ms of each other, individuals tend to perceive the stimuli as a single event, even though they occurred separately. In recent years, our lab, and others, have developed rat models of audiovisual temporal perception using behavioural tasks such as temporal order judgments (TOJs) and synchrony judgments (SJs). While these rodent models demonstrate metrics that are consistent with humans (e.g.,

Seminar · Optogenetics

Manipulating single-unit theta phase-locking with PhaSER: An open-source tool for real-time phase estimation and manipulation

Zoe Christenson-Wick · Mount Sinai School of Medicine, NY, USA

Tue, May 9, 2023 · 04:00 UTC

Zoe has developed an open-source tool PhaSER, which allows her to perform real-time oscillatory phase estimation and apply optogenetic manipulations at precise phases of hippocampal theta during high-density electrophysiological recordings in head-fixed mice while they navigate a virtual environment. The precise timing of single-unit spiking relative to network-wide oscillations (i.e., phase locking) has long been thought to maintain excitatory-inhibitory homeostasis and coordinate cognitive processes, but due to intense experimental demands, the causal influence of this phenomenon has never b

Seminar · Neuroscience

Prox2+ and Runx3+ vagal sensory neurons regulate esophageal motility

Elijah Lowenstein · Birchmeier lab, Max Delbrück Center

Wed, Mar 1, 2023 · 17:00 UTC

Sensory neurons of the vagus nerve monitor distention and stretch in the gastrointestinal tract. We used genetically guided anatomical tracing, optogenetics and electrophysiology to identify and characterize two vagal sensory neuronal subtypes expressing Prox2 and Runx3. We show that these neuronal subtypes innervate the esophagus where they display regionalized innervation patterns. Electrophysiological analyses showed that they are both low threshold mechanoreceptors but possess different adaptation properties. Lastly, genetic ablation of Prox2 and Runx3 neurons demonstrated their essential

Seminar · Ethology

Modern Approaches to Behavioural Analysis

Alexander Mathis · EPFL, Switzerland

Mon, Nov 21, 2022 · 14:00 UTC

The goal of neuroscience is to understand how the nervous system controls behaviour, not only in the simplified environments of the lab, but also in the natural environments for which nervous systems evolved. In pursuing this goal, neuroscience research is supported by an ever-larger toolbox, ranging from optogenetics to connectomics. However, often these tools are coupled with reductionist approaches for linking nervous systems and behaviour. This course will introduce advanced techniques for measuring and analysing behaviour, as well as three fundamental principles as necessary to understan

Seminar · Neuroscience

Hypothalamic episode generators underlying the neural control of fertility

Allan Herbison · Department of Physiology, Development and Neuroscience, University of Cambridge

Tue, Nov 8, 2022 · 15:00 UTC

The hypothalamus controls diverse homeostatic functions including fertility. Neural episode generators are required to drive the intermittent pulsatile and surge profiles of reproductive hormone secretion that control gonadal function. Studies in genetic mouse models have been fundamental in defining the neural circuits forming these central pattern generators and the full range of in vitro and in vivo optogenetic and chemogenetic methodologies have enabled investigation into their mechanism of action. The seminar will outline studies defining the hypothalamic “GnRH pulse generator network” an

Seminar · Neuro-Informatics

Pynapple: a light-weight python package for neural data analysis - webinar + tutorial

Adrien Peyrache and Guillaume Viejo · McGill University, Canada

Wed, Jun 29, 2022 · 15:00 UTC

In systems neuroscience, datasets are multimodal and include data-streams of various origins: multichannel electrophysiology, 1- or 2-p calcium imaging, behavior, etc. Often, the exact nature of data streams are unique to each lab, if not each project. Analyzing these datasets in an efficient and open way is crucial for collaboration and reproducibility. In this combined webinar and tutorial, Adrien Peyrache and Guillaume Viejo will present Pynapple, a Python-based data analysis pipeline for systems neuroscience. Designed for flexibility and versatility, Pynapple allows users to perform cross-

Seminar · Neuro-Informatics

Pynapple: a light-weight python package for neural data analysis - webinar + tutorial

Adrien Peyrache and Guillaume Viejo · McGill University, Canada

Tue, Jun 28, 2022 · 15:00 UTC

In systems neuroscience, datasets are multimodal and include data-streams of various origins: multichannel electrophysiology, 1- or 2-p calcium imaging, behavior, etc. Often, the exact nature of data streams are unique to each lab, if not each project. Analyzing these datasets in an efficient and open way is crucial for collaboration and reproducibility. In this combined webinar and tutorial, Adrien Peyrache and Guillaume Viejo will present Pynapple, a Python-based data analysis pipeline for systems neuroscience. Designed for flexibility and versatility, Pynapple allows users to perform cross-

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 · Neuroscience

Modularity and Robustness of Frontal Cortical Networks

Nuo Li · Baylor College of Medicine, USA

Tue, May 24, 2022 · 14:00 UTC

Nuo Li (Baylor College of Medicine, USA) shares novel insights into coordinated interhemispheric large-scale neural network activity underpinning short-term memory in mice. Relevant techniques covered include: simultaneous multi-regional recordings using multiple 64-channel H probes during head-fixed behavior in mice. simultaneous optogenetics and population recording. analysis of population recordings to infer interactions between brain regions. Reference: Chen G, Kang B, Lindsey J, Druckmann S, Li N, (2021). Modularity and robustness of frontal cortex networks. Cell, 184(14):3717-3730.

Seminar · Neuroscience

Neural Representations of Social Homeostasis

Kay M. Tye · HHMI Investigator, and Wylie Vale Chair, The Salk Institute for Biological Studies, SNL-KT

Tue, May 17, 2022 · 10:00 UTC

How does our brain rapidly determine if something is good or bad? How do we know our place within a social group? How do we know how to behave appropriately in dynamic environments with ever-changing conditions? The Tye Lab is interested in understanding how neural circuits important for driving positive and negative motivational valence (seeking pleasure or avoiding punishment) are anatomically, genetically and functionally arranged. We study the neural mechanisms that underlie a wide range of behaviors ranging from learned to innate, including social, feeding, reward-seeking and anxiety-rela

Seminar · Neuroscience

Cognitive experience alters cortical involvement in navigation decisions

Charlotte Arlt · Harvard

Fri, Apr 22, 2022 · 13:00 UTC

The neural correlates of decision-making have been investigated extensively, and recent work aims to identify under what conditions cortex is actually necessary for making accurate decisions. We discovered that mice with distinct cognitive experiences, beyond sensory and motor learning, use different cortical areas and neural activity patterns to solve the same task, revealing past learning as a critical determinant of whether cortex is necessary for decision tasks. We used optogenetics and calcium imaging to study the necessity and neural activity of multiple cortical areas in mice with diffe

Seminar · Neuroscience

Cortex-dependent corrections as the mouse tongue reaches for and misses targets

Brendan Ito & Teja Bollu · Cornell University, USA & Salk Institute, USA

Wed, Apr 20, 2022 · 14:00 UTC

Brendan Ito (Cornell University, USA) and Teja Bollu (Salk Institute, USA) share unique insights into rapid online motor corrections during mouse licking, analogous to primate goal-oriented reaching. Techniques covered include large-scale single unit recording during behaviour with optogenetics, and a deep-learning-based neural network to resolve 3D tongue kinematics during licking.

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

Seminar · Optogenetics

Building a Simple and Versatile Illumination System for Optogenetic Experiments

Phillip Kyriakakis · Stanford University and Wu Tsai Neuroscience Institute

Wed, Mar 9, 2022 · 10:00 UTC

Controlling biological processes using light has increased the accuracy and speed with which researchers can manipulate many biological processes. Optical control allows for an unprecedented ability to dissect function and holds the potential for enabling novel genetic therapies. However, optogenetic experiments require adequate light sources with spatial, temporal, or intensity control, often a bottleneck for researchers. Here we detail how to build a low-cost and versatile LED illumination system that is easily customizable for different available optogenetic tools. This system is configurab

Seminar · Neuroscience

Dynamic dopaminergic signaling probabilistically controls the timing of self-timed movements

Allison Hamilos · Assad Lab, Harvard University

Wed, Feb 23, 2022 · 04:00 UTC

Human movement disorders and pharmacological studies have long suggested molecular dopamine modulates the pace of the internal clock. But how does the endogenous dopaminergic system influence the timing of our movements? We examined the relationship between dopaminergic signaling and the timing of reward-related, self-timed movements in mice. Animals were trained to initiate licking after a self-timed interval following a start cue; reward was delivered if the animal’s first lick fell within a rewarded window (3.3-7 s). The first-lick timing distributions exhibited the scalar property, and we

Seminar · Neuroscience

Dissecting the role of accumbal D1 and D2 medium spiny neurons in information encoding

Munir Gunes Kutlu · Calipari Lab, Vanderbilt University

Wed, Feb 9, 2022 · 17:00 UTC

Nearly all motivated behaviors require the ability to associate outcomes with specific actions and make adaptive decisions about future behavior. The nucleus accumbens (NAc) is integrally involved in these processes. The NAc is a heterogeneous population primarily composed of D1 and D2 medium spiny projection (MSN) neurons that are thought to have opposed roles in behavior, with D1 MSNs promoting reward and D2 MSNs promoting aversion. Here we examined what types of information are encoded by the D1 and D2 MSNs using optogenetics, fiber photometry, and cellular resolution calcium imaging. First

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