Neuroscience seminars
October 2025
Memory Decoding Journal Club: Functional connectomics reveals general wiring rule in mouse visual cortex
Ariel Zeleznikow-Johnston· Monash University
Tue, Oct 21 · 06:00 UTC
Functional connectomics reveals general wiring rule in mouse visual cortex
Vision ScienceNeuro-Informatics+1 moreSeries: Carboncopies Foundation - Brain Emulation ChallengeVideo
The tubulin code in neuron health and disease : focus on detyrosination
Marie-Jo Moutin· Grenoble Institute Neurosciences, Univ Grenoble Alpes, Inserm U1216, CNRS
Fri, Oct 10 · 13:00 UTC
Competing Rhythms: Understanding and Modulating Auditory Neural Entrainment
Dr. Yuranny Cabral-Calderin· Freie Universität Berlin, Germany
Wed, Oct 8 · 16:00 UTC
ElectrophysiologySeries: LOOPS de Hoz - Hechavarria
Memory Decoding Journal Club: "Connectomic traces of Hebbian plasticity in the entorhinalhippocampal system
Randal A. Koene· Co-Founder and Chief Science Officer, Carboncopies
Tue, Oct 7 · 06:00 UTC
Connectomic traces of Hebbian plasticity in the entorhinalhippocampal system
Astrocytes: From Metabolism to Cognition
Juan P. Bolanos· Professor of Biochemistry and Molecular Biology, University of Salamanca
Fri, Oct 3 · 11:30 UTC
Different brain cell types exhibit distinct metabolic signatures that link energy economy to cellular function. Astrocytes and neurons, for instance, diverge dramatically in their reliance on glycolysis versus oxidative phosphorylation, underscoring that metabolic fuel efficiency is not uniform across cell types. A key factor shaping this divergence is the structural organization of the mitochondrial respiratory chain into supercomplexes. Specifically, complexes I (CI) and III (CIII) form a CI–CIII supercomplex, but the degree of this assembly varies by cell type. In neurons, CI is predominantly integrated into supercomplexes, resulting in highly efficient mitochondrial respiration and minimal reactive oxygen species (ROS) generation. Conversely, in astrocytes, a larger fraction of CI remains unassembled, freely existing apart from CIII, leading to reduced respiratory efficiency and elevated mitochondrial ROS production. Despite this apparent inefficiency, astrocytes boast a highly adaptable metabolism capable of responding to diverse stressors. Their looser CI–CIII organization allows for flexible ROS signaling, which activates antioxidant programs via transcription factors like Nrf2. This modular architecture enables astrocytes not only to balance energy production but also to support neuronal health and influence complex organismal behaviors.
Cellular Crosstalk in Brain Development, Evolution and Disease
Silvia Cappello· Molecular Physiology of Neurogenesis at the Ludwig Maximilian University of Munich
Thu, Oct 2 · 15:00 UTC
Cellular crosstalk is an essential process during brain development and is influenced by numerous factors, including cell morphology, adhesion, the local extracellular matrix and secreted vesicles. Inspired by mutations associated with neurodevelopmental disorders, we focus on understanding the role of extracellular mechanisms essential for the proper development of the human brain. Therefore, we combine 2D and 3D in vitro human models to better understand the molecular and cellular mechanisms involved in progenitor proliferation and fate, migration and maturation of excitatory and inhibitory neurons during human brain development and tackle the causes of neurodevelopmental disorders.
Endocannabinoid System Dysregulations in Binge Eating Disorder and Obesity
Katia Befort· CNRS University of Strasbourg, Laboratoire de Neurosciences Cognitives et Adaptatives
Wed, Oct 1 · 13:30 UTC
September 2025
The basal ganglia and addiction
Yonatan M Kupchik, Michel Engeln· The Hebrew University of Jerusalem resp Centre national de la recherche scientifique (CNRS)
Fri, Sep 26 · 16:00 UTC
Memory Decoding Journal Club: Distinct synaptic plasticity rules operate across dendritic compartments in vivo during learning
Ken Hayworth· Co-Founder and Chief Science Officer, Carboncopies
Tue, Sep 23 · 06:00 UTC
Distinct synaptic plasticity rules operate across dendritic compartments in vivo during learning
Low intensity rTMS: age dependent effects, and mechanisms underlying neural plasticity
Ann Lohof· Sorbonne Université, Institut de Biologie Paris Seine
Fri, Sep 19 · 13:30 UTC
Neuroplasticity is essential for the establishment and strengthening of neural circuits. Repetitive transcranial magnetic stimulation (rTMS) is commonly used to modulate cortical excitability and shows promise in the treatment of some neurological disorders. Low intensity magnetic stimulation (LI-rTMS), which does not directly elicit action potentials in the stimulated neurons, have also shown some therapeutic effects, and it is important to determine the biological mechanisms underlying the effects of these low intensity magnetic fields, such as would occur in the regions surrounding the central high-intensity focus of rTMS. Our team has used a focal low-intensity (10mT) magnetic stimulation approach to address some of these questions and to identify cellular mechanisms. I will present several studies from our laboratory, addressing (1) effects of LIrTMS on neuronal activity and excitability ; and (2) neuronal morphology and post-lesion repair. The ensemble of our results indicate that the effects of LI-rTMS depend upon the stimulation pattern, the age of the animal, and the presence of cellular magnetoreceptors.
Go with the visual flow: circuit mechanisms for gaze control during locomotion
Eugenia Chiappe· Champalimaud Foundation
Fri, Sep 12 · 16:00 UTC
Unpacking the role of the medial septum in spatial coding in the medial entorhinal cortex
Jennifer Robinson· McGill University
Thu, Sep 11 · 06:30 UTC
Neural Representations of Abstract Cognitive Maps in Prefrontal Cortex and Medial Temporal Lobe
Janahan Selvanayagam· University of Oxford
Thu, Sep 11 · 06:00 UTC
Memory Decoding Journal Club: A combinatorial neural code for long-term motor memory
Ariel Zeleznikow-Johnston· Monash University
Tue, Sep 9 · 06:00 UTC
A combinatorial neural code for long-term motor memory
August 2025
How the presynapse forms and functions”
Volker Haucke· Department of Molecular Pharmacology & Cell Biology, Leibniz Institute, Berlin, Germany
Thu, Aug 28 · 12:15 UTC
Nervous system function relies on the polarized architecture of neurons, established by directional transport of pre- and postsynaptic cargoes. While delivery of postsynaptic components depends on the secretory pathway, the identity of the membrane compartment(s) that supply presynaptic active zone (AZ) and synaptic vesicle (SV) proteins is largely unknown. I will discuss our recent advances in our understanding of how key components of the presynaptic machinery for neurotransmitter release are transported and assembled focussing on our studies in genome-engineered human induced pluripotent stem cell-derived neurons. Specifically, I will focus on the composition and cell biological identity of the axonal transport vesicles that shuttle key components of neurotransmission to nascent synapses and on machinery for axonal transport and its control by signaling lipids. Our studies identify a crucial mechanism mediating the delivery of SV and active zone proteins to developing synapses and reveal connections to neurological disorders. In the second part of my talk, I will discuss how exocytosis and endocytosis are coupled to maintain presynaptic membrane homeostasis. I will present unpublished data regarding the role of membrane tension in the coupling of exocytosis and endocytosis at synapses. We have identified an endocytic BAR domain protein that is capable of sensing alterations in membrane tension caused by the exocytotic fusion of SVs to initiate compensatory endocytosis to restore plasma membrane area. Interference with this mechanism results in defects in the coupling of presynaptic exocytosis and SV recycling at human synapses.
Memory Decoding Journal Club: Behavioral time scale synaptic plasticity underlies CA1 place fields
Kenneth Hayworth· Co-Founder and Chief Science Officer, Carboncopies
Tue, Aug 26 · 06:00 UTC
Behavioral time scale synaptic plasticity underlies CA1 place fields
The Systems Vision Science Summer School & Symposium, August 11 – 22, 2025, Tuebingen, Germany
Marco Bertamini, David Brainard, Peter Dayan, Andrea van Doorn, Roland Fleming, Pascal Fries, Wilson S Geisler, Robbe Goris, Sheng He, Tadashi Isa, Tomas Knapen, Jan Koenderink, Larry Maloney, Keith May, Marcello Rosa, Jonathan Victor
Fri, Aug 22 · 09:00 UTC · Online
Applications are invited for our third edition of Systems Vision Science (SVS) summer school since 2023, designed for everyone interested in gaining a systems level understanding of biological vision. We plan a coherent, graduate-level, syllabus on the integration of experimental data with theory and models, featuring lectures, guided exercises and discussion sessions. The summer school will end with a Systems Vision Science symposium on frontier topics on August 20-22, with additional invited and contributed presentations and posters. Call for contributions and participations to the symposium will be sent out spring of 2025. All summer school participants are invited to attend, and welcome to submit contributions to the symposium.
Vision ScienceComputational Neuroscience+1 moreSeries: Max Planck Institute for Biological Cybernetics
The Systems Vision Science Summer School & Symposium, August 11 – 22, 2025, Tuebingen, Germany
Marco Bertamini, David Brainard, Peter Dayan, Andrea van Doorn, Roland Fleming, Pascal Fries, Wilson S Geisler, Robbe Goris, Sheng He, Tadashi Isa, Tomas Knapen, Jan Koenderink, Larry Maloney, Keith May, Marcello Rosa, Jonathan Victor
Thu, Aug 21 · 09:00 UTC · Online
Applications are invited for our third edition of Systems Vision Science (SVS) summer school since 2023, designed for everyone interested in gaining a systems level understanding of biological vision. We plan a coherent, graduate-level, syllabus on the integration of experimental data with theory and models, featuring lectures, guided exercises and discussion sessions. The summer school will end with a Systems Vision Science symposium on frontier topics on August 20-22, with additional invited and contributed presentations and posters. Call for contributions and participations to the symposium will be sent out spring of 2025. All summer school participants are invited to attend, and welcome to submit contributions to the symposium.
Vision ScienceSeries: Max Planck Institute for Biological Cybernetics
The Systems Vision Science Summer School & Symposium, August 11 – 22, 2025, Tuebingen, Germany
Marco Bertamini, David Brainard, Peter Dayan, Andrea van Doorn, Roland Fleming, Pascal Fries, Wilson S Geisler, Robbe Goris, Sheng He, Tadashi Isa, Tomas Knapen, Jan Koenderink, Larry Maloney, Keith May, Marcello Rosa, Jonathan Victor
Wed, Aug 20 · 09:00 UTC · Online
Applications are invited for our third edition of Systems Vision Science (SVS) summer school since 2023, designed for everyone interested in gaining a systems level understanding of biological vision. We plan a coherent, graduate-level, syllabus on the integration of experimental data with theory and models, featuring lectures, guided exercises and discussion sessions. The summer school will end with a Systems Vision Science symposium on frontier topics on August 20-22, with additional invited and contributed presentations and posters. Call for contributions and participations to the symposium will be sent out spring of 2025. All summer school participants are invited to attend, and welcome to submit contributions to the symposium.
The Systems Vision Science Summer School & Symposium, August 11 – 22, 2025, Tuebingen, Germany
Marco Bertamini, David Brainard, Peter Dayan, Andrea van Doorn, Roland Fleming, Pascal Fries, Wilson S Geisler, Robbe Goris, Sheng He, Tadashi Isa, Tomas Knapen, Jan Koenderink, Larry Maloney, Keith May, Marcello Rosa, Jonathan Victor
Tue, Aug 19 · 09:00 UTC · Online
Applications are invited for our third edition of Systems Vision Science (SVS) summer school since 2023, designed for everyone interested in gaining a systems level understanding of biological vision. We plan a coherent, graduate-level, syllabus on the integration of experimental data with theory and models, featuring lectures, guided exercises and discussion sessions. The summer school will end with a Systems Vision Science symposium on frontier topics on August 20-22, with additional invited and contributed presentations and posters. Call for contributions and participations to the symposium will be sent out spring of 2025. All summer school participants are invited to attend, and welcome to submit contributions to the symposium.
Vision ScienceSeries: Max Planck Institute for Biological Cybernetics