Cognition seminars
November 2025
Top-down control of neocortical threat memory
Prof. Dr. Johannes Letzkus· Universität Freiburg, Germany
Wed, Nov 12 · 16:00 UTC
Accurate perception of the environment is a constructive process that requires integration of external bottom-up sensory signals with internally-generated top-down information reflecting past experiences and current aims. Decades of work have elucidated how sensory neocortex processes physical stimulus features. In contrast, examining how memory-related-top-down information is encoded and integrated with bottom-up signals has long been challenging. Here, I will discuss our recent work pinpointing the outermost layer 1 of neocortex as a central hotspot for processing of experience-dependent top-down information threat during perception, one of the most fundamentally important forms of sensation.
Organization of thalamic networks and mechanisms of dysfunction in schizophrenia and autism
Vasileios Zikopoulos· Boston University
Mon, Nov 3 · 14:00 UTC
Thalamic networks, at the core of thalamocortical and thalamosubcortical communications, underlie processes of perception, attention, memory, emotions, and the sleep-wake cycle, and are disrupted in mental disorders, including schizophrenia and autism. However, the underlying mechanisms of pathology are unknown. I will present novel evidence on key organizational principles, structural, and molecular features of thalamocortical networks, as well as critical thalamic pathway interactions that are likely affected in disorders. This data can facilitate modeling typical and abnormal brain function and can provide the foundation to understand heterogeneous disruption of these networks in sleep disorders, attention deficits, and cognitive and affective impairments in schizophrenia and autism, with important implications for the design of targeted therapeutic interventions
October 2025
Temporal Hierarchies in Reward and Behavioral Control
Ali Mohebi, Joe Paton· University of Wisconsin-Madison & Champalimaud Centre
Thu, Oct 30 · 16:00 UTC
Generation and use of internal models of the world to guide flexible behavior
Antonio Fernandez-Ruiz· Cornell University, USA
Mon, Oct 27 · 11:00 UTC
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
NeuroscienceNeuro-Informatics+1 moreSeries: Carboncopies Foundation - Brain Emulation ChallengeVideo
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.
September 2025
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
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
NeuroscienceComputational NeuroscienceSeries: Carboncopies Foundation - Brain Emulation ChallengeVideo
July 2025
Memory Decoding Journal Club: "Binary and analog variation of synapses between cortical pyramidal neurons
Kenneth Hayworth· Co-Founder and Chief Science Officer, Carboncopies
Tue, Jul 15 · 06:00 UTC
Binary and analog variation of synapses between cortical pyramidal neurons
The reinstatement of a forgotten infantile memory
Flavio Donato· Biozentrum, University of Basel, Switzerland
Thu, Jul 10 · 16:15 UTC
Continuity and segmentation - two ends of a spectrum or independent processes?
Aya Ben Yakov· Hebrew University
Tue, Jul 8 · 16:00 UTC
Is it Time for MS Patients to Receive Cognitive Rehabilitation?
John DeLuca· Kessler Foundation, West Orange, New Jersey
Thu, Jul 3 · 16:15 UTC
Memory Decoding Journal Club: Systems consolidation reorganizes hippocampal engram circuitry
Ariel Zeleznikow-Johnston· Monash University
Tue, Jul 1 · 06:00 UTC
Systems consolidation reorganizes hippocampal engram circuitry
June 2025
Functional Imaging of the Human Brain: A Window into the Organization of the Human Mind
Nancy Kanwisher· Massachusetts Institute of Technology & McGovern Institute for Brain Research
Thu, Jun 26 · 16:15 UTC
Neural control of internal affective states”
David J. Anderson· California Institute of Technology, Tianqiao and Chrissy Chen Institute for Neuroscience, California, USA
Thu, Jun 19 · 12:15 UTC
Memory Decoding Journal Club: Neocortical synaptic engrams for remote contextual memories
Randal A. Koene· Co-Founder and Chief Science Officer, Carboncopies
Tue, Jun 17 · 06:00 UTC
Neocortical synaptic engrams for remote contextual memories
Neural circuits underlying sleep structure and functions
Antoine Adamantidis· University of Bern
Fri, Jun 13 · 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) sleep and emotion encoding to improve treatments for mental health. This lecture will summarize our investigation of the cellular and circuit mechanisms underlying sleep architecture, sleep oscillations, and local brain dynamics across sleep-wake states using electrophysiological recordings combined with single-cell calcium imaging or optogenetics. The presentation will detail the discovery of a 'somato-dendritic decoupling'in prefrontal cortex pyramidal neurons underlying REM sleep-dependent stabilization of optimal emotional memory traces. This decoupling reflects a tonic inhibition at the somas of pyramidal cells, occurring simultaneously with a selective disinhibition of their dendritic arbors selectively during REM sleep. Recent findings on REM sleep-dependent subcortical inputs and neuromodulation of this decoupling will be discussed in the context of synaptic plasticity and the optimization of emotional responses in the maintenance of mental health.
From Spiking Predictive Coding to Learning Abstract Object Representation
Prof. Jochen Triesch· Frankfurt Institute for Advanced Studies
Thu, Jun 12 · 16:00 UTC
In a first part of the talk, I will present Predictive Coding Light (PCL), a novel unsupervised learning architecture for spiking neural networks. In contrast to conventional predictive coding approaches, which only transmit prediction errors to higher processing stages, PCL learns inhibitory lateral and top-down connectivity to suppress the most predictable spikes and passes a compressed representation of the input to higher processing stages. We show that PCL reproduces a range of biological findings and exhibits a favorable tradeoff between energy consumption and downstream classification performance on challenging benchmarks. A second part of the talk will feature our lab’s efforts to explain how infants and toddlers might learn abstract object representations without supervision. I will present deep learning models that exploit the temporal and multimodal structure of their sensory inputs to learn representations of individual objects, object categories, or abstract super-categories such as „kitchen object“ in a fully unsupervised fashion. These models offer a parsimonious account of how abstract semantic knowledge may be rooted in children's embodied first-person experiences.
Computational NeuroscienceNeuroscience+3 moreSeries: Max Planck Institute for Biological Cybernetics