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2027 Human Genetics and Genomics Conference
The 2027 Gordon Research Conference on Human Genetics and Genomics will convene researchers for intensive discussion of current developments across human genetics and genomic science. The meeting uses the GRC application model, with attendance applications accepted through May 30, 2027 unless the conference becomes oversubscribed earlier.
OHBM 2027 Annual Meeting
Annual meeting of the Organization for Human Brain Mapping at the Metro Toronto Convention Centre, bringing together researchers to share groundbreaking research, engage in educational forums, and foster collaboration across neuroimaging methods and applications.
FENS Regional Meeting 2027
FENS Regional Meeting held 26-29 May 2027 in Istanbul, Turkey, jointly organised by the Neuroscience Society of Turkey, the Hellenic Society for Neuroscience, the Serbian Neuroscience Society and the Slovenian Neuroscience Association.
VSS 2027
The 2027 Annual Meeting of the Vision Sciences Society, held May 21-25, 2027 in Seattle, Washington, gathering the interdisciplinary vision science community spanning visual perception, psychophysics, and visual neuroscience.
Comparative (neuro)science in insects
This EMBO Workshop integrates developmental biology, sensory neuroscience, central circuits, motor control, behavior, population genetics, genomics, and ecology to advance comparative insect neuroscience. Early-career researchers are prioritized for selected talks, and all accepted participants present their work.
ACS Spring 2027
One of the American Chemical Society's twice-yearly ACS Meetings & Expositions, held March 21-25, 2027 in New Orleans, LA, featuring presentations across the chemistry divisions and an exposition.
Marine microbial chemical communication
This EMBO Workshop brings together researchers studying chemical crosstalk among marine microorganisms, spanning metabolite-mediated ecological interactions, analytical chemistry, microscale fluid dynamics, cell biology and omics-based microbial ecology.
Cosyne 2027
The annual Computational and Systems Neuroscience (Cosyne) meeting, an exchange forum for experimental and theoretical/computational approaches to problems in systems neuroscience. Cosyne returns to Montreal, Canada, from 11-16 March 2027.
Cancer Neuroscience: Neural Mechanisms as Therapeutic Targets in Cancer
This Keystone Symposium examines how nerves and neural activity shape cancer initiation, progression, metastasis, cognition, and treatment, with a focus on actionable therapeutic targets.
Single Cell Biology: Expanding Potential Across Diseases
A Keystone Symposium bringing together single-cell genomics, spatial biology, perturbation technologies, computational methods, and clinical translation across high-burden diseases.
BRAIN Initiative: Development and Validation of Novel Tools to Probe Cell-Specific and Circuit-Specific Processes in the Brain
This NIH BRAIN Initiative R01 supports development and validation of transformative tools for cell-specific and circuit-specific analysis in the nervous system. Priorities include precise genetic and non-genetic targeting, molecular sensors, minimally invasive repeated measurements, scalable single-cell assays, cross-species tools, and technologies that break current barriers in monitoring or manipulating neural circuits.
SICB 2027
Annual meeting of the Society for Integrative and Comparative Biology at the David L. Lawrence Convention Center in Pittsburgh, PA, spanning research across integrative and comparative biology.
Cell Bio 2026 - An ASCB|EMBO Meeting
Joint ASCB|EMBO meeting at the San Diego Convention Center bringing together the cell biology community to share scientific discoveries, network with colleagues across career stages, and explore new research areas and methodologies.
Neuromodulation of Circuit Plasticity: From Adaptive Behavior to Precision Therapeutics
Kuan Hong Wang examines how dopaminergic, cannabinoid, and neuroimmune signaling regulate circuit plasticity across development, experience, and disease, and how cross-species work may inform selective therapies.
Neuroscience 2026
The Society for Neuroscience annual meeting brings together the global neuroscience community for lectures, symposia, nanosymposia, posters, professional-development sessions and exhibits. The 2026 meeting offers in-person participation in Washington, D.C. and a virtual component with posters and livestreamed featured lectures.
Transformative sustainable AI technologies
UK Research and Innovation is funding speculative, high-risk projects that could deliver a step change in the sustainability of future AI systems. Proposals may address energy-efficient algorithms, resource-constrained AI, hardware-software co-design, repairable hardware, and other technology-led advances across the AI stack.
EMBO Workshop: Proteostasis shaping health span: from protein folding to failure
This EMBO Workshop examines how protein synthesis, folding, trafficking, and degradation shape health across the lifespan, connecting fundamental proteostasis mechanisms with ageing and degenerative disease.
Knight Initiative - Rosenkranz Aging Symposium
An in-person Stanford symposium highlighting recent progress in brain resilience and aging research, followed by a neuroscience poster session featuring work from the Stanford community.
McKnight Scholar Awards
Supports exceptional young neuroscientists in the early stages of establishing an independent laboratory and research career. Up to ten scholars receive a total award of $225,000 paid in equal installments of $75,000 in 2027, 2028, and 2029; applications open early August 2026.
Emily Jacobs - New frontiers in women's brain health
Emily Jacobs will examine how endocrine transitions such as the circadian cycle, menstrual cycle, pregnancy, and menopause reshape the human brain. The talk combines precision brain imaging with a review of research, policy, and funding efforts intended to close persistent gaps in women's brain-health evidence.
Simons Collaborations in Mathematics and the Physical Sciences
The Simons Foundation invites letters of intent for ambitious collaborations addressing fundamental questions of major importance in mathematics, theoretical physics, or theoretical computer science. Awards support multi-investigator teams across career stages for four years, with up to three new collaborations expected to begin in January 2028.
The 2026 Picower Lecture with Richard L. Huganir
Richard L. Huganir discusses research on the molecular mechanisms that regulate glutamate receptors, the brain's major excitatory neurotransmitter receptors, and thereby modulate communication between neurons.
HICCC Cancer Neuroscience Symposium
Columbia's half-day symposium examines neural mechanisms in brain, gastrointestinal, pancreatic, and lung cancers. The program spans neuron-glioma crosstalk, tumor-induced neurological dysfunction, cancer pain circuits, peripheral nervous-system structure, metabolism, and therapeutic targets.
2026 Lake Conference - Comparative and Evolutionary Neurobiology
This Lake Conference is a 3.5-day forum on comparative and evolutionary approaches to nervous-system function. The program includes invited and selected talks, poster sessions, comparative genomics and genetics, evolutionary and developmental mechanisms, and evolutionary neuroscience systems biology.
Towards Biologically Informed Subgroups Across Neurodevelopmental Disorders
Jason Lerch presents a translational neuroimaging analysis spanning mouse models and human MRI cohorts to identify biologically informed subgroups across autism and related neurodevelopmental conditions.
A Riemannian Geometry Perspective on Foundation Models
Oden Institute Seminar by Rex Ying (Yale University) on how non-Euclidean geometries, particularly hyperbolic geometry, can enhance foundation models by better capturing hierarchies and symmetries in real-world data, with applications across Transformers, language model training, multimodal systems, and recommender systems.
ASHG 2026 Annual Meeting
Annual meeting of the American Society of Human Genetics at the Palais des Congres de Montreal, gathering 7,500+ attendees from 75 countries for 100+ scientific sessions and 240 exhibitors and sponsors across human genetics and genomics research.
Wu Tsai Neurosciences Institute Symposium 2026: Building the Brain
This Stanford symposium examines how molecular, cellular, and circuit-level advances in neurodevelopment shape understanding of behavior and health, with scientific talks, awards, and a poster session.
EMBL Entrepreneurial Minds - Beyond the Structure: My Journey Through Science, Innovation and Life Choices
Ilaria Ferlenghi discusses a career spanning structural biology, cryo-electron microscopy, vaccine research and development, and the growing role of artificial intelligence and machine learning in scientific innovation and entrepreneurship.
A cell-type-specific cortical circuit for maintenance of value representations
Takaki Komiyama presents longitudinal imaging and circuit-manipulation studies of history-dependent decision-making. The work identifies retrosplenial-cortex populations and local and long-range interactions that maintain option values across trials, update them after outcomes and translate past experience into future choices.
Takaki Komiyama - A cell-type-specific cortical circuit for maintenance of value representations
Takaki Komiyama will discuss how cortical circuits maintain information about the value of behavioral options across trials and transform past experience into future choices. The talk draws on longitudinal imaging and circuit manipulation in mice to examine distinct neuronal populations and local and long-range interactions in history-dependent decision-making.
BRAIN Initiative: Research Resource Grants for Technology Integration and Dissemination (U24 Clinical Trial Not Allowed)
This NIH BRAIN Initiative opportunity supports dissemination of existing resources into neuroscience research practice. Activities may include distribution of tools and reagents, training in new technologies, access to technology platforms or specialized facilities, minor improvements to resource delivery, and adaptations for user communities.
BRAIN Initiative: Theories, Models and Methods for Analysis of Complex Data from the Brain (R01 Clinical Trial Not Allowed)
This NIH BRAIN Initiative funding opportunity supports new or substantially advanced theories, mechanistic or predictive models, and computational or statistical methods that improve quantitative understanding of brain function across scales. Tools must address complex neural and behavioral data and be made broadly available to the neuroscience research community.
Colloquium on the Brain and Cognition with Christopher Harvey, PhD, Harvard University
Picower Institute Colloquium on the Brain and Cognition featuring Christopher Harvey, PhD, of Harvard University, held in Singleton Auditorium (46-3002) at MIT Building 46, 43 Vassar Street.
Integrative Structural Biology: Bridging Fields, Techniques, and Scales
This Keystone Symposium brings structural and cellular biologists together to integrate cryo-electron microscopy, super-resolution and multiscale imaging, data science, computational modeling and deep learning. The programme connects molecular structure to tissue-level function and includes in-person, livestream and on-demand participation.
Bernstein Conference 2026
Annual conference of the Bernstein Network Computational Neuroscience, bringing together students, postdocs and PIs from around the world to meet and discuss new scientific discoveries in computational neuroscience. Satellite workshops Sep 28-29, main conference Sep 29-Oct 1 at Goethe University, Campus Westend, Frankfurt am Main.
6th Annual Precision Mental Health Symposium: From Circuits to Mindsets: Precision Mental Health in the Real World
Stanford's annual Precision Mental Health Symposium explores how neuroscience, psychiatry, data science, and artificial intelligence can translate brain research into real-world mental-health care. Themes include circuits and cognition, biomarkers and neuroimaging, rapid-acting interventions, neuromodulation, and precision therapeutics.
Hidden Order: The Geometry of Complex Patterns
Salvatore Torquato gives a public lecture in the Simons Foundation's 2026 Randomness series, connecting the geometry of complex systems with random structures and applications across mathematics, computer science, physics and chemistry.
Stem Cell & Developmental Biology Early Career Symposium
A three-day scientific symposium led by early-career scientists, combining invited talks, selected short talks, poster sessions, workshops, networking, and cross-disciplinary exchange in stem cell and developmental biology.
Invertebrate oncology: ancient origins of tumor-host interactions
MIT Biology Colloquium Series talk by David Bilder (University of California, Berkeley), hosted by Yukiko Yamashita, on invertebrate oncology and the ancient evolutionary origins of tumor-host interactions.
Lessons from the Dead
Z Yan Wang presents comparative neuroscience research on the brains and behaviors of octopuses and bumblebees to illuminate life-history processes. The talk is part of Columbia's Tuesdays@10 neuroscience seminar program for researchers across fields and career stages.
Early Sleep Biomarkers of Alzheimer's Disease Pathophysiology and Memory Impairment
Bryce Mander presents research on early sleep biomarkers associated with Alzheimer's disease pathophysiology and memory impairment. The William C. Dement Seminar connects sleep and circadian neuroscience with neurodegeneration, cognition and clinically relevant approaches to detecting disease-related change.
The Connectome in Use: From anatomical wiring to functional organization in the behaving C. elegans brain
Rani Borbara presents brain-wide recordings from more than 150 freely moving C. elegans to examine how anatomical connectivity becomes functional organization during behavior. Cross-animal models map cell-class conditional dependencies and test how synapses, gap junctions, neuromodulation and shared brain states shape circuit dynamics.
Deciphering the Dynamics of the Unconscious Brain under General Anesthesia
Stanford Neurosciences Seminar Series talk by Emery Brown (Massachusetts Institute of Technology, Neuroscience Statistics Research Lab) on deciphering the dynamics of the unconscious brain under general anesthesia, hosted by the Wu Tsai Neurosciences Institute.
Finding Meaning in Memories
Daphna Shohamy and Ashok Litwin-Kumar bridge experimental and computational neuroscience to explain how the brain assigns significance to memories, how dopamine shapes memory-guided decisions, and how bodily signals influence learning. Isabel Low moderates a public discussion and question session.
Kirk Public Lecture | An operator-algebraic perspective on topological orders
Kirk Public Lecture at the Isaac Newton Institute by Yoshiko Ogata (Kyoto University) on how macroscopic properties of matter emerge from quantum particle interactions and the classification of topological order from an operator-algebraic perspective in mathematical physics.
Cascadia Mucosal Biology Symposium
The inaugural Cascadia Mucosal Biology Symposium brings together mucosal biologists and immunologists to discuss mechanistic and translational research on health and disease at mucosal surfaces. Topics include tissue-immune crosstalk, microbial homeostasis, antigen-specific barrier responses, barrier development and repair, and translation to medicine.
Margaret S. Livingstone, Ph.D. - PNI Seminar Series
Margaret Livingstone of Harvard Medical School presents in Princeton Neuroscience Institute's public seminar series. Livingstone's laboratory studies how visual recognition occurs in the primate brain using behavior, brain imaging, and electrophysiology.
NIH Director’s Transformative Research Award (R01 Clinical Trial Optional)
The NIH Common Fund supports individuals or teams pursuing exceptionally innovative, unconventional research with the potential to create or overturn major paradigms across biomedical and behavioral science.
Somatic cell deformability drives reproductive evolution
Suhrid Ghosh will present work on how cell mechanics and cytoskeletal dynamics shape the evolution of reproductive structures in Drosophila ovaries. Cross-species morphology, ex-vivo live imaging, perturbations of cortical tension, and newly isolated terminal-filament cells reveal how somatic-cell deformability can alter ovariole architecture and reproductive fitness.
How to Improve Motivation & Overcome Procrastination | Dr. Masud Husain
Masud Husain explains the neuroscience of motivation, dopamine, effort, and reward, together with research on apathy, dementia, Parkinson's disease, Alzheimer's disease, and cognitive resilience.
ACS Fall 2026
One of the American Chemical Society's twice-yearly ACS Meetings & Expositions, held August 23-27, 2026 in Chicago, IL, featuring presentations across the chemistry divisions and an exposition.
Briefing Chat: New narcolepsy drug could unlock host of novel brain therapies
Nature staff discuss how a newly approved orexin-targeting narcolepsy drug could enable therapies for other neurological conditions, and examine human brain organoids that have remained viable for more than five years. The episode connects sleep medicine, therapeutic neuroscience, and long-term models of human brain development.
BI 244 Marco Facchin: Philosophy and Science of Biological Brains
Marco Facchin joins Brain Inspired to discuss computationalism and alternatives in the philosophy and science of biological brains. The conversation covers embodied and 4E cognition, predictive processing, artificial intelligence, metabolic constraints, biological detail, and how theories of mind relate to consciousness and neuroscience.
Neuroscience of Emotions & Tools for Improving Emotion Regulation | Dr. Ralph Adolphs
Ralph Adolphs explains how the brain creates emotions including fear, joy, and awe, and discusses evidence-based approaches to emotion regulation. The episode connects neural mechanisms with attention, decision-making, and bodily state.
Special Seminar with Hee-Sup Shin, MD, PhD, Institute for Basic Science (IBS)
Special seminar at MIT's Picower Institute for Learning and Memory with neuroscientist Hee-Sup Shin, MD, PhD, of the Institute for Basic Science (IBS), held in the Picower Seminar Room (46-3310) at 43 Vassar Street.
Modeling Genetic Effects Across Contexts and Phenotypes
Convergence Seminar by Alexis Battle, PhD (Wu and Zhang Professor of Biomedical Engineering and Computer Science, Johns Hopkins University), on computational and machine-learning approaches for analyzing how genetic variation impacts gene regulation and disease, including noncoding sequences and rare variants.
Emerging NeuroTech: Ultrasound in Neuroscience
MIT researchers and students are invited to two talks on emerging applications of ultrasound for non-invasive brain imaging, neural modulation and wearable human-machine interaction.
Emerging NeuroTech: Ultrasound in Neuroscience
Two talks present emerging applications of ultrasound technology in neuroscience, spanning brain imaging and human-machine interaction. The in-person seminar is open to MIT researchers, students, and staff and is supported by the MIT School of Science and the Feng Lab at the McGovern Institute.
Briefing Chat: Anthropic rolls out new AI watermark — will it make a difference?
Nature staff examine what an invisible watermark for AI-generated text could mean for research integrity and the detection of synthetic content, then discuss cross-cultural research showing that ticklishness is a distinct and specialized body sensation with common anatomical patterns.
The probiotic bacteria engineered to treat diabetes
Nature's podcast explores genetically engineered probiotic bacteria that sense elevated glucose and release therapeutic factors, lowering blood sugar in animal studies. The episode also covers ecological research on pumas, geological erosion, and how a solar eclipse can help researchers probe the Sun's magnetic corona.
Episode 104: July 2026
This eLife episode explores trade-offs between body size and sperm production in gorillas, fever-driven changes in malaria-infected cells, the neuroscience of gambling machines, whether infants are predisposed to dance, and high-altitude adaptations in bird eggs.
FENS Forum 2026
Europe’s leading neuroscience conference, bringing together researchers, clinicians, and innovators across molecular, cellular, systems, cognitive, and clinical neuroscience.
Togetherness: How cooperation built the world
Science journalist Rowan Hooper joins the Nature Podcast to explore symbiosis, cooperation, and the importance of organisms working together across the living world.
Adventures in Spin Labeling: Clinical Perfusion Imaging and the Path to Technical Innovation
Arterial spin labeling (ASL) MRI has become a vital tool in clinical neuroimaging, enabling noninvasive assessment of cerebral perfusion across a range of conditions including stroke, vascular malformations, and brain tumors. With broader clinical adoption, its practical strengths — as well as important limitations — have become increasingly clear.
Consciousness at the edge of chaos
Over the last 20 years, neuroimaging and electrophysiology techniques have become central to understanding the mechanisms that accompany loss and recovery of consciousness. Much of this research is performed in the context of healthy individuals with neurotypical brain dynamics. Yet, a true understanding of how consciousness emerges from the joint action of neurons has to account for how severely pathological brains, often showing phenotypes typical of unconsciousness, can nonetheless generate a subjective viewpoint. In this presentation, I will start from the context of Disorders of Consciousness and will discuss recent work aimed at finding generalizable signatures of consciousness that are reliable across a spectrum of brain electrophysiological phenotypes focusing in particular on the notion of edge-of-chaos criticality.
Computational Mechanisms of Predictive Processing in Brains and Machines
Predictive processing offers a unifying view of neural computation, proposing that brains continuously anticipate sensory input and update internal models based on prediction errors. In this talk, I will present converging evidence for the computational mechanisms underlying this framework across human neuroscience and deep neural networks. I will begin with recent work showing that large-scale distributed prediction-error encoding in the human brain directly predicts how sensory representations reorganize through predictive learning. I will then turn to PredNet, a popular predictive coding inspired deep network that has been widely used to model real-world biological vision systems. Using dynamic stimuli generated with our Spatiotemporal Style Transfer algorithm, we demonstrate that PredNet relies primarily on low-level spatiotemporal structure and remains insensitive to high-level content, revealing limits in its generalization capacity. Finally, I will discuss new recurrent vision models that integrate top-down feedback connections with intrinsic neural variability, uncovering a dual mechanism for robust sensory coding in which neural variability decorrelates unit responses, while top-down feedback stabilizes network dynamics. Together, these results outline how prediction error signaling and top-down feedback pathways shape adaptive sensory processing in biological and artificial systems.
Developmental emergence of personality
The Nature versus Nurture debate has generally been considered from the lens of genome versus experience dichotomy and has dominated our thinking about behavioral individuality and personality traits. In contrast, the role of nonheritable noise during brain development in behavioral variation is understudied. Using the Drosophila melanogaster visual system, I will discuss our efforts to dissect how individuality in circuit wiring emerges during development, and how that helps generate individual behavioral variation.
High Stakes in the Adolescent Brain: Glia Ignite Under THC’s Influence
MRI investigation of orientation-dependent changes in microstructure and function in a mouse model of mild traumatic brain injury
Convergent large-scale network and local vulnerabilities underlie brain atrophy across Parkinson’s disease stages
The tubulin code in neuron health and disease : focus on detyrosination
Astrocytes: From Metabolism to Cognition
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
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.
AutoMIND: Deep inverse models for revealing neural circuit invariances
Endocannabinoid System Dysregulations in Binge Eating Disorder and Obesity
Memory Decoding Journal Club: Distinct synaptic plasticity rules operate across dendritic compartments in vivo during learning
Distinct synaptic plasticity rules operate across dendritic compartments in vivo during learning
Go with the visual flow: circuit mechanisms for gaze control during locomotion
Scaling Up Bioimaging with Microfluidic Chips
Explore how microfluidic chips can enhance your imaging experiments by increasing control, throughput, or flexibility. In this remote, personalized workshop, participants will receive expert guidance, support and chips to run tests on their own microscopes.
The SIMple microscope: Development of a fibre-based platform for accessible SIM imaging in unconventional environments
Advancements in imaging speed, depth and resolution have made structured illumination microscopy (SIM) an increasingly powerful optical sectioning (OS) and super-resolution (SR) technique, but these developments remain inaccessible to many life science researchers due to the cost, optical complexity and delicacy of these instruments. We address these limitations by redesigning the optical path using in-line fibre components that are compact, lightweight and easily assembled in a “Plug & Play” modality, without compromising imaging performance. They can be integrated into an existing widefield microscope with a minimum of optical components and alignment, making OS-SIM more accessible to researchers with less optics experience. We also demonstrate a complete SR-SIM imaging system with dimensions 300 mm × 300 mm × 450 mm. We propose to enable accessible SIM imaging by utilising its compact, lightweight and robust design to transport it where it is needed, and image in “unconventional” environments where factors such as temperature and biosafety considerations currently limit imaging experiments.
OpenNeuro FitLins GLM: An Accessible, Semi-Automated Pipeline for OpenNeuro Task fMRI Analysis
In this talk, I will discuss the OpenNeuro Fitlins GLM package and provide an illustration of the analytic workflow. OpenNeuro FitLins GLM is a semi-automated pipeline that reduces barriers to analyzing task-based fMRI data from OpenNeuro's 600+ task datasets. Created for psychology, psychiatry and cognitive neuroscience researchers without extensive computational expertise, this tool automates what is largely a manual process and compilation of in-house scripts for data retrieval, validation, quality control, statistical modeling and reporting that, in some cases, may require weeks of effort. The workflow abides by open-science practices, enhancing reproducibility and incorporates community feedback for model improvement. The pipeline integrates BIDS-compliant datasets and fMRIPrep preprocessed derivatives, and dynamically creates BIDS Statistical Model specifications (with Fitlins) to perform common mass univariate [GLM] analyses. To enhance and standardize reporting, it generates comprehensive reports which includes design matrices, statistical maps and COBIDAS-aligned reporting that is fully reproducible from the model specifications and derivatives. OpenNeuro Fitlins GLM has been tested on over 30 datasets spanning 50+ unique fMRI tasks (e.g., working memory, social processing, emotion regulation, decision-making, motor paradigms), reducing analysis times from weeks to hours when using high-performance computers, thereby enabling researchers to conduct robust single-study, meta- and mega-analyses of task fMRI data with significantly improved accessibility, standardized reporting and reproducibility.
Understanding reward-guided learning using large-scale datasets
Understanding the neural mechanisms of reward-guided learning is a long-standing goal of computational neuroscience. Recent methodological innovations enable us to collect ever larger neural and behavioral datasets. This presents opportunities to achieve greater understanding of learning in the brain at scale, as well as methodological challenges. In the first part of the talk, I will discuss our recent insights into the mechanisms by which zebra finch songbirds learn to sing. Dopamine has been long thought to guide reward-based trial-and-error learning by encoding reward prediction errors. However, it is unknown whether the learning of natural behaviours, such as developmental vocal learning, occurs through dopamine-based reinforcement. Longitudinal recordings of dopamine and bird songs reveal that dopamine activity is indeed consistent with encoding a reward prediction error during naturalistic learning. In the second part of the talk, I will talk about recent work we are doing at DeepMind to develop tools for automatically discovering interpretable models of behavior directly from animal choice data. Our method, dubbed CogFunSearch, uses LLMs within an evolutionary search process in order to "discover" novel models in the form of Python programs that excel at accurately predicting animal behavior during reward-guided learning. The discovered programs reveal novel patterns of learning and choice behavior that update our understanding of how the brain solves reinforcement learning problems.
Digital Traces of Human Behaviour: From Political Mobilisation to Conspiracy Narratives
Digital platforms generate unprecedented traces of human behaviour, offering new methodological approaches to understanding collective action, polarisation, and social dynamics. Through analysis of millions of digital traces across multiple studies, we demonstrate how online behaviours predict offline action: Brexit-related tribal discourse responds to real-world events, machine learning models achieve 80% accuracy in predicting real-world protest attendance from digital signals, and social validation through "likes" emerges as a key driver of mobilization. Extending this approach to conspiracy narratives reveals how digital traces illuminate psychological mechanisms of belief and community formation. Longitudinal analysis of YouTube conspiracy content demonstrates how narratives systematically address existential, epistemic, and social needs, while examination of alt-tech platforms shows how emotions of anger, contempt, and disgust correlate with violence-legitimating discourse, with significant differences between narratives associated with offline violence versus peaceful communities. This work establishes digital traces as both methodological innovation and theoretical lens, demonstrating that computational social science can illuminate fundamental questions about polarisation, mobilisation, and collective behaviour across contexts from electoral politics to conspiracy communities.
“Brain theory, what is it or what should it be?”
n the neurosciences the need for some 'overarching' theory is sometimes expressed, but it is not always obvious what is meant by this. One can perhaps agree that in modern science observation and experimentation is normally complemented by 'theory', i.e. the development of theoretical concepts that help guiding and evaluating experiments and measurements. A deeper discussion of 'brain theory' will require the clarification of some further distictions, in particular: theory vs. model and brain research (and its theory) vs. neuroscience. Other questions are: Does a theory require mathematics? Or even differential equations? Today it is often taken for granted that the whole universe including everything in it, for example humans, animals, and plants, can be adequately treated by physics and therefore theoretical physics is the overarching theory. Even if this is the case, it has turned out that in some particular parts of physics (the historical example is thermodynamics) it may be useful to simplify the theory by introducing additional theoretical concepts that can in principle be 'reduced' to more complex descriptions on the 'microscopic' level of basic physical particals and forces. In this sense, brain theory may be regarded as part of theoretical neuroscience, which is inside biophysics and therefore inside physics, or theoretical physics. Still, in neuroscience and brain research, additional concepts are typically used to describe results and help guiding experimentation that are 'outside' physics, beginning with neurons and synapses, names of brain parts and areas, up to concepts like 'learning', 'motivation', 'attention'. Certainly, we do not yet have one theory that includes all these concepts. So 'brain theory' is still in a 'pre-newtonian' state. However, it may still be useful to understand in general the relations between a larger theory and its 'parts', or between microscopic and macroscopic theories, or between theories at different 'levels' of description. This is what I plan to do.
Seeing a changing world through the eyes of coral fishes
Open SPM: A Modular Framework for Scanning Probe Microscopy
OpenSPM aims to democratize innovation in the field of scanning probe microscopy (SPM), which is currently dominated by a few proprietary, closed systems that limit user-driven development. Our platform includes a high-speed OpenAFM head and base optimized for small cantilevers, an OpenAFM controller, a high-voltage amplifier, and interfaces compatible with several commercial AFM systems such as the Bruker Multimode, Nanosurf DriveAFM, Witec Alpha SNOM, Zeiss FIB-SEM XB550, and Nenovision Litescope. We have created a fully documented and community-driven OpenSPM platform, with training resources and sourcing information, which has already enabled the construction of more than 15 systems outside our lab. The controller is integrated with open-source tools like Gwyddion, HDF5, and Pycroscopy. We have also engaged external companies, two of which are integrating our controller into their products or interfaces. We see growing interest in applying parts of the OpenSPM platform to related techniques such as correlated microscopy, nanoindentation, and scanning electron/confocal microscopy. To support this, we are developing more generic and modular software, alongside a structured development workflow. A key feature of the OpenSPM system is its Python-based API, which makes the platform fully scriptable and ideal for AI and machine learning applications. This enables, for instance, automatic control and optimization of PID parameters, setpoints, and experiment workflows. With a growing contributor base and industry involvement, OpenSPM is well positioned to become a global, open platform for next-generation SPM innovation.
Neural control of internal affective states”
Neural circuits underlying sleep structure and functions
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.
Developmental and evolutionary perspectives on thalamic function
Brain organization and function is a complex topic. We are good at establishing correlates of perception and behavior across forebrain circuits, as well as manipulating activity in these circuits to affect behavior. However, we still lack good models for the large-scale organization and function of the forebrain. What are the contributions of the cortex, basal ganglia, and thalamus to behavior? In addressing these questions, we often ascribe function to each area as if it were an independent processing unit. However, we know from the anatomy that the cortex, basal ganglia, and thalamus, are massively interconnected in a large network. One way to generate insight into these questions is to consider the evolution and development of forebrain systems. In this talk, I will discuss the developmental and evolutionary (comparative anatomy) data on the thalamus, and how it fits within forebrain networks. I will address questions including, when did the thalamus appear in evolution, how is the thalamus organized across the vertebrate lineage, and how can the change in the organization of forebrain networks affect behavioral repertoires.
Neurobiological constraints on learning: bug or feature?
Understanding how brains learn requires bridging evidence across scales—from behaviour and neural circuits to cells, synapses, and molecules. In our work, we use computational modelling and data analysis to explore how the physical properties of neurons and neural circuits constrain learning. These include limits imposed by brain wiring, energy availability, molecular noise, and the 3D structure of dendritic spines. In this talk I will describe one such project testing if wiring motifs from fly brain connectomes can improve performance of reservoir computers, a type of recurrent neural network. The hope is that these insights into brain learning will lead to improved learning algorithms for artificial systems.
Astrocytes release glutamate by regulated exocytosis in health and disease
Astrocytes release glutamate by regulated exocytosis in health and disease Vladimir Parpura, International Translational Neuroscience Research Institute, Zhejiang Chinese Medical University, Hangzhou, P.R. China Parpura will present you with the evidence that astrocytes, a subtype of glial cells in the brain, can exocytotically release the neurotransmitter glutamate and how this release is regulated. Spatiotemporal characteristic of vesicular fusion that underlie glutamate release in astrocytes will be discussed. He will also present data on a translational project in which this release pathway can be targeted for the treatment of glioblastoma, the deadliest brain cancer.
Expanding mechanisms and therapeutic targets for neurodegenerative disease
A hallmark pathological feature of the neurodegenerative diseases amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD) is the depletion of RNA-binding protein TDP-43 from the nucleus of neurons in the brain and spinal cord. A major function of TDP-43 is as a repressor of cryptic exon inclusion during RNA splicing. By re-analyzing RNA-sequencing datasets from human FTD/ALS brains, we discovered dozens of novel cryptic splicing events in important neuronal genes. Single nucleotide polymorphisms in UNC13A are among the strongest hits associated with FTD and ALS in human genome-wide association studies, but how those variants increase risk for disease is unknown. We discovered that TDP-43 represses a cryptic exon-splicing event in UNC13A. Loss of TDP-43 from the nucleus in human brain, neuronal cell lines and motor neurons derived from induced pluripotent stem cells resulted in the inclusion of a cryptic exon in UNC13A mRNA and reduced UNC13A protein expression. The top variants associated with FTD or ALS risk in humans are located in the intron harboring the cryptic exon, and we show that they increase UNC13A cryptic exon splicing in the face of TDP-43 dysfunction. Together, our data provide a direct functional link between one of the strongest genetic risk factors for FTD and ALS (UNC13A genetic variants), and loss of TDP-43 function. Recent analyses have revealed even further changes in TDP-43 target genes, including widespread changes in alternative polyadenylation, impacting expression of disease-relevant genes (e.g., ELP1, NEFL, and TMEM106B) and providing evidence that alternative polyadenylation is a new facet of TDP-43 pathology.
Investigating the Neurobiology and Neurophysiology of Psilocybin Using Drosophila melanogaster as a Model System
Restoring Sight to the Blind: Effects of Structural and Functional Plasticity
Visual restoration after decades of blindness is now becoming possible by means of retinal and cortical prostheses, as well as emerging stem cell and gene therapeutic approaches. After restoring visual perception, however, a key question remains. Are there optimal means and methods for retraining the visual cortex to process visual inputs, and for learning or relearning to “see”? Up to this point, it has been largely assumed that if the sensory loss is visual, then the rehabilitation focus should also be primarily visual. However, the other senses play a key role in visual rehabilitation due to the plastic repurposing of visual cortex during blindness by audition and somatosensation, and also to the reintegration of restored vision with the other senses. I will present multisensory neuroimaging results, cortical thickness changes, as well as behavioral outcomes for patients with Retinitis Pigmentosa (RP), which causes blindness by destroying photoreceptors in the retina. These patients have had their vision partially restored by the implantation of a retinal prosthesis, which electrically stimulates still viable retinal ganglion cells in the eye. Our multisensory and structural neuroimaging and behavioral results suggest a new, holistic concept of visual rehabilitation that leverages rather than neglects audition, somatosensation, and other sensory modalities.
“A Focus on 3D Printed Lenses: Rapid prototyping, low-cost microscopy and enhanced imaging for the life sciences”
High-quality glass lenses are commonplace in the design of optical instrumentation used across the biosciences. However, research-grade glass lenses are often costly, delicate and, depending on the prescription, can involve intricate and lengthy manufacturing - even more so in bioimaging applications. This seminar will outline 3D printing as a viable low-cost alternative for the manufacture of high-performance optical elements, where I will also discuss the creation of the world’s first fully 3D printed microscope and other implementations of 3D printed lenses. Our 3D printed lenses were generated using consumer-grade 3D printers and pose a 225x materials cost-saving compared to glass optics. Moreover, they can be produced in any lab or home environment and offer great potential for education and outreach. Following performance validation, our 3D printed optics were implemented in the production of a fully 3D printed microscope and demonstrated in histological imaging applications. We also applied low-cost fabrication methods to exotic lens geometries to enhance resolution and contrast across spatial scales and reveal new biological structures. Across these applications, our findings showed that 3D printed lenses are a viable substitute for commercial glass lenses, with the advantage of being relatively low-cost, accessible, and suitable for use in optical instruments. Combining 3D printed lenses with open-source 3D printed microscope chassis designs opens the doors for low-cost applications for rapid prototyping, low-resource field diagnostics, and the creation of cheap educational tools.
Functional Plasticity in the Language Network – evidence from Neuroimaging and Neurostimulation
Efficient cognition requires flexible interactions between distributed neural networks in the human brain. These networks adapt to challenges by flexibly recruiting different regions and connections. In this talk, I will discuss how we study functional network plasticity and reorganization with combined neurostimulation and neuroimaging across the adult life span. I will argue that short-term plasticity enables flexible adaptation to challenges, via functional reorganization. My key hypothesis is that disruption of higher-level cognitive functions such as language can be compensated for by the recruitment of domain-general networks in our brain. Examples from healthy young brains illustrate how neurostimulation can be used to temporarily interfere with efficient processing, probing short-term network plasticity at the systems level. Examples from people with dyslexia help to better understand network disorders in the language domain and outline the potential of facilitatory neurostimulation for treatment. I will also discuss examples from aging brains where plasticity helps to compensate for loss of function. Finally, examples from lesioned brains after stroke provide insight into the brain’s potential for long-term reorganization and recovery of function. Collectively, these results challenge the view of a modular organization of the human brain and argue for a flexible redistribution of function via systems plasticity.
Neural mechanisms of rhythmic motor control in Drosophila
All animal locomotion is rhythmic,whether it is achieved through undulatory movement of the whole body or the coordination of articulated limbs. Neurobiologists have long studied locomotor circuits that produce rhythmic activity with non-rhythmic input, also called central pattern generators (CPGs). However, the cellular and microcircuit implementation of a walking CPG has not been described for any limbed animal. New comprehensive connectomes of the fruit fly ventral nerve cord (VNC) provide an opportunity to study rhythmogenic walking circuits at a synaptic scale.We use a data-driven network modeling approach to identify and characterize a putative walking CPG in the Drosophila leg motor system.
Using Fast Periodic Visual Stimulation to measure cognitive function in dementia
Fast periodic visual stimulation (FPVS) has emerged as a promising tool for assessing cognitive function in individuals with dementia. This technique leverages electroencephalography (EEG) to measure brain responses to rapidly presented visual stimuli, offering a non-invasive and objective method for evaluating a range of cognitive functions. Unlike traditional cognitive assessments, FPVS does not rely on behavioural responses, making it particularly suitable for individuals with cognitive impairment. In this talk I will highlight a series of studies that have demonstrated its ability to detect subtle deficits in recognition memory, visual processing and attention in dementia patients using EEG in the lab, at home and in clinic. The method is quick, cost-effective, and scalable, utilizing widely available EEG technology. FPVS holds significant potential as a functional biomarker for early diagnosis and monitoring of dementia, paving the way for timely interventions and improved patient outcomes.
Understanding reward-guided learning using large-scale datasets
Understanding the neural mechanisms of reward-guided learning is a long-standing goal of computational neuroscience. Recent methodological innovations enable us to collect ever larger neural and behavioral datasets. This presents opportunities to achieve greater understanding of learning in the brain at scale, as well as methodological challenges. In the first part of the talk, I will discuss our recent insights into the mechanisms by which zebra finch songbirds learn to sing. Dopamine has been long thought to guide reward-based trial-and-error learning by encoding reward prediction errors. However, it is unknown whether the learning of natural behaviours, such as developmental vocal learning, occurs through dopamine-based reinforcement. Longitudinal recordings of dopamine and bird songs reveal that dopamine activity is indeed consistent with encoding a reward prediction error during naturalistic learning. In the second part of the talk, I will talk about recent work we are doing at DeepMind to develop tools for automatically discovering interpretable models of behavior directly from animal choice data. Our method, dubbed CogFunSearch, uses LLMs within an evolutionary search process in order to "discover" novel models in the form of Python programs that excel at accurately predicting animal behavior during reward-guided learning. The discovered programs reveal novel patterns of learning and choice behavior that update our understanding of how the brain solves reinforcement learning problems.
Harnessing Big Data in Neuroscience: From Mapping Brain Connectivity to Predicting Traumatic Brain Injury
Neuroscience is experiencing unprecedented growth in dataset size both within individual brains and across populations. Large-scale, multimodal datasets are transforming our understanding of brain structure and function, creating opportunities to address previously unexplored questions. However, managing this increasing data volume requires new training and technology approaches. Modern data technologies are reshaping neuroscience by enabling researchers to tackle complex questions within a Ph.D. or postdoctoral timeframe. I will discuss cloud-based platforms such as brainlife.io, that provide scalable, reproducible, and accessible computational infrastructure. Modern data technology can democratize neuroscience, accelerate discovery and foster scientific transparency and collaboration. Concrete examples will illustrate how these technologies can be applied to mapping brain connectivity, studying human learning and development, and developing predictive models for traumatic brain injury (TBI). By integrating cloud computing and scalable data-sharing frameworks, neuroscience can become more impactful, inclusive, and data-driven..
Rejuvenating the Alzheimer’s brain: Challenges & Opportunities
COSYNE 2025
The COSYNE 2025 conference was held in Montreal with post-conference workshops in Mont-Tremblant, continuing to provide a premier forum for computational and systems neuroscience. Attendees exchanged cutting-edge research in a single-track main meeting and in-depth specialized workshops, reflecting Cosyne’s mission to understand how neural systems function.
Bernstein Conference 2024
Each year the Bernstein Network invites the international computational neuroscience community to the annual Bernstein Conference for intensive scientific exchange. Bernstein Conference 2024, held in Frankfurt am Main, featured discussions, keynote lectures, and poster sessions, and has established itself as one of the most renowned conferences worldwide in this field.
FENS Forum 2024
Organised by FENS in partnership with the Austrian Neuroscience Association and the Hungarian Neuroscience Society, the FENS Forum 2024 will take place on 25–29 June 2024 in Vienna, Austria. The FENS Forum is Europe’s largest neuroscience congress, covering all areas of neuroscience from basic to translational research.
COSYNE 2023
The COSYNE 2023 conference provided an inclusive forum for exchanging experimental and theoretical approaches to problems in systems neuroscience, continuing the tradition of bringing together the computational neuroscience community. The main meeting was held in Montreal followed by post-conference workshops in Mont-Tremblant, fostering intensive discussions and collaboration.
Neuromatch 5
Neuromatch 5 (Neuromatch Conference 2022) was a fully virtual conference focused on computational neuroscience broadly construed, including machine learning work with explicit biological links. After four successful Neuromatch conferences, the fifth edition consolidated proven innovations from past events, featuring a series of talks hosted on Crowdcast and flash talk sessions (pre-recorded videos) with dedicated discussion times on Reddit.
COSYNE 2022
The annual Cosyne meeting provides an inclusive forum for the exchange of empirical and theoretical approaches to problems in systems neuroscience, in order to understand how neural systems function. The main meeting is single-track, with invited talks selected by the Executive Committee and additional talks and posters selected by the Program Committee based on submitted abstracts. The workshops feature in-depth discussion of current topics of interest in a small group setting.
NSF 26-517: Core Research in Biological Sciences (BIO Core)
The National Science Foundation's BIO Core solicitation supports fundamental biological research across scales, including the neural basis of cognition. The new solicitation was posted on 17 August 2026, accepts proposals at any time, anticipates 250 to 300 awards, and replaces earlier core-program guidance in the Directorate for Biological Sciences.
Division of Integrative Organismal Systems Core Programs (IOS)
NSF core-programs solicitation (NSF 24-546) supporting research on integrative organismal biology, including behavioral, developmental, neural and physiological systems. Proposals are accepted anytime, with an estimated $70,000,000 available per fiscal year across ~150 standard or continuing grants.
Set-based Fitness Comparisons - Could Neuroscientists Benefit from Engineering Studies on Conceptual Design?
Bernstein Conference 2024
Open-source solutions for research data management in neuroscience collaborations
Bernstein Conference 2024
Stable cortical coding for a dexterous reach-to-grasp task across motor cortical laminae
Bernstein Conference 2024
Unveiling ageism and aging anxiety in Egypt: A cross-sectional study
FENS Forum 2024
Multi-task representations across human cortex transform along a sensory-to-motor hierarchy
COSYNE 2022
Effects of flavonoids on adipose tissue/microglia cross-talk
FENS Forum 2024
Neural dynamics of associative learning across the dorsoventral hippocampus
Neuromatch 5
Intelligence Offloading and the Neurosimulation of Developmental Agents
Neuromatch 5
New method to characterize wasteosomes (corpora amylacea) from the human intraventricular cerebrospinal fluid
FENS Forum 2024
Estimating flexible across-area communication with neurally-constrained RNNs
Bernstein Conference 2024
The mitochondria-targeted antioxidant AntiOxCIN4 mitigates cardiac oxidative/nitrosative stress in the amyotrophic lateral sclerosis SOD1G93A mouse
FENS Forum 2024
Thoughtful faces: Using facial features to infer naturalistic cognitive processing across species
COSYNE 2023
Advancing neuroscience education without borders: make your training resources FAIR with INCF!
Neuromatch 5
Optimization techniques for machine learning based classification involving large-scale neuroscience datasets
Neuromatch 5
Presynaptic mechanisms underlying GABAB receptor-mediated heterosynaptic depression at hippocampal mossy fiber bouton to CA3 pyramidal neuron synapses
FENS Forum 2024
Region-based conversion of neural activity across sessions
Neuromatch 5
Cleo: a simulation testbed for bridging model and experiment in mesoscale neuroscience
Neuromatch 5
Deep Reinforcement Learning for anatomically accurate musculoskeletal models to investigate neural control of movement across animal species
Neuromatch 5
Population Dynamics and Network Behaviour of ON- and OFF-cells in the Rostral Ventral Medulla
Bernstein Conference 2024
Bottom-up approach to preprint peer-review: PCI Neuroscience
Neuromatch 5
Quantitative modeling of the emergence of macroscopic grid-like representations
Bernstein Conference 2024
Network properties of structural-functional interplay across disease stages in early psychosis (EP): a whole brain model approach
Neuromatch 5
Novel potential biomarkers for multiple sclerosis: Evaluating the expression levels of miR-141, miR-9, MEG3, IFNG-AS1 and their relationship to different LINC00513 polymorphisms
FENS Forum 2024
Granular retrosplenial cortex high frequency oscillation dynamics in hippocampo-cortical dialogue
COSYNE 2023
A census of neural timescales across the mouse brain
Bernstein Conference 2024
Experimental model for strain-induced mechanical neurostimulation on human progenitor neurons
FENS Forum 2024
Inter-areal patterned microstimulation selectively drives PFC activity and behavior in a memory task
COSYNE 2022
Optimising local diameters across entire dendritic trees
Bernstein Conference 2024
Cross-correlation--response relation for spike-driven neurons
Bernstein Conference 2024
A trained humanoid robot can perform human-like crossmodal attention and social interaction
Neuromatch 5
Modelling rTMS-Induced Metaplasticity Dynamics within Macroscopic Oscillatory Brain Circuits
Neuromatch 5
Computational Neuroscience in the Arabic region
Neuromatch 5
Modeling neural population responses to intracortical microstimulation
Neuromatch 5
Efficient nonlinear receptive field estimation across processing stages of sensory systems
Bernstein Conference 2024
Identifying patterns across brains from 10 years of human single-neuron recordings
Bernstein Conference 2024
Homeostatic regulation of synaptic connectivity across connectomes
Bernstein Conference 2024
Utilizing Random Forest for Multivariate Analysis: Exploring the Influence of Dopaminergic Neurons on Drosophila Larvae Locomotion
Bernstein Conference 2024
Unstructured representations in a structured brain: a cross-region analysis of the neural code
Bernstein Conference 2024
State dependence of pontine astrocyte calcium dynamics across sleep-wake cycles
FENS Forum 2024
Increase in dimensionality and sparsification of neural activity over development across diverse cortical areas
Bernstein Conference 2024