Biophysics seminars
October 2026
Deciphering the cortical output code – A multiscale approach to predictive brain modelling
Marcel Oberlaender
Mon, Oct 5 · 07:30 UTC
To orchestrate complex behaviors in mammals, the cerebral cortex must continuously transmit its processing results to subcortical regions. While internal cortical processing relies on highly selective sparse codes, these descending cortical output streams employ an enigmatic dense code, characterized by high firing rates and low feature selectivity. This dense population code presents a profound paradox: how can downstream regions extract precise, cognitively relevant signals when most cortical output neurons can be active at any moment? We address this paradox by testing the hypothesis that cortex does not lose information when switching to a dense code. Instead, it utilizes a mechanism for sparse-to-dense coding transformations discovered by my laboratory: thalamocortical synapses target specifically the dendritic initiation zone for calcium action potentials (APs), which enables cortical output neurons to transmit multiple information streams simultaneously via a multiplexed 1-2-3 AP syntax. I will provide first evidence that this remarkable synaptic specificity and coding syntax generalize across long-range pathways. Information coupling via an anatomically and biophysically distinct dendritic nexus may hence be a ubiquitous mechanism for sparse-to-dense coding transformations in cortex. Dissecting these mechanistic origins of cortical output streams is only now possible due to a unique in vivo – in silico approach, perfected over two decades, that my laboratory developed for bridging the gaps between dendritic and population-level computations
NeuroComp Neuro+1 more
Human balance: Delays, sensory dead zones and micro-chaos!
John G. Milton· The University of Texas at Austin
Tue, Oct 6 · 16:00 UTC · Online
How do humans stabilize an inverted pendulum, and why does a balanced pole eventually fall? Drawing on 25 years of fingertip pole-balancing research, this talk examines neural correction delays: longer poles move more slowly relative to the nervous system’s response time. Delay-differential models can stabilize the upright position, yet skilled people still experience falls. The proposed explanation is microchaos arising from interactions among delay, sensory dead zones and frequency-dependent force encoding. A region of transient falling solutions lies next to stable microchaotic dynamics. Such microchaos is absent in virtual frontal-plane balancing tasks, while models of standing postural sway lack the corresponding transient regime. The comparison suggests that human falls, unlike pole falls, are more plausibly associated with medical events or slips and trips.
NeuroComp Neuro+2 more
Mimicking Nature: Controlling Charge, Heat, and Spin at Interfaces
Paul S. Weiss· California NanoSystems Institute, UCLA Center for Quantum Science & Engineering, and Departments of Chemistry & Biochemistry, Bioengineering, and Materials Science & Engineering, UCLA
Wed, Oct 7 · 16:00 UTC · Cambridge, USA · Hybrid
Paul S. Weiss (UCLA) explores low-energy interactions and balanced cycling in natural systems as models for efficient synthetic devices and recycling. Because the relevant energies fall below visible-photon energies, tunnelling spectroscopy and imaging are used to probe these processes. Replicating biochemical cycling and low-energy transport could reduce the energy needed for devices and materials recovery. The work seeks missing physical principles, including spin conservation in chiral molecules and polarizability in biological and synthetic systems. This perspective has led to thermal-control advances in scale, speed and magnitude. Atomic-resolution imaging, spectroscopy and functional measurements help build precise structures while revealing heterogeneous nanoscale behaviour. The talk relates these advances to the physical, electronic, mechanical, thermal and chemical connections between materials and their surroundings that determine future nanomaterial measurements and devices.
NanotechnologyMaterials Science+2 more
“Quantum Biology”: How nature might be optimized to harness quantum mechanics
Clarice D. Aiello· Quantum Biology Ecosystem; Quantum Biology Institute
Wed, Oct 7 · 23:30 UTC · Online
Clarice D. Aiello examines evidence that quantum effects influence biological function, including magnetic sensing used in animal navigation, cellular metabolism and enzyme activity, and the capture of light energy in photosynthesis. The talk reviews proposed biophysical mechanisms and their implications for human, plant and environmental biology, while considering the difficulty of connecting observations from nanometre scales to whole organisms. A central question is whether quantum mechanics can be established or ruled out as the explanation for physiologically relevant effects, and whether those effects can be controlled for useful applications. Potential directions include biomimetic electromagnetic probes, quantum-computing architectures that operate at room temperature, improved solar-energy devices and new therapies. Progress will require work across disciplines and scales, with theory and experiment developed together.
PhysicsPhysics of Life+1 more
Seeing Biology in a New Light: Nanosensors for Real-Time Biosensing
Daniel Roxbury· University of Rhode Island
Fri, Oct 9 · 15:00 UTC · Online
Real-time measurement of local biomolecule concentrations in living tissue requires sensors that are stable, selective and minimally invasive. This seminar examines single-walled carbon nanotubes, whose durable near-infrared fluorescence and sensitivity to their surroundings support optical biosensing. Biopolymer functionalization gives the nanotubes biological compatibility and selectivity for particular molecular targets. Spectroscopy, microscopy and machine-learning-assisted analysis are used to characterize sensor interactions and extract biological information, with applications spanning live-cell imaging, wearable sensing and continuous monitoring.
ChemistryML+3 more
EMBL Entrepreneurial Minds - Beyond the Structure: My Journey Through Science, Innovation and Life Choices
Ilaria Ferlenghi· GSK
Tue, Oct 13 · 13:00 UTC
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.
AIMolecular Biology+3 more
Information Flows Across Scales: Development, Neuroscience, Evolution (Lecture by Prof. TKAČIK)
Gašper Tkačik· Institute of Science and Technology Austria
Wed, Oct 14 · 05:00 UTC · Online
Gašper Tkačik explores whether the language of information in biology can become a predictive scientific theory. The lecture connects information transfer from DNA to proteins, positional signals that guide cell fate during development, neural information processing, and the storage and inheritance of information in evolving genomes. It brings physics, information theory and quantitative biology together to examine these processes across biological scales. Tkačik is Professor at the Institute of Science and Technology Austria. Shinya Kuroda provides commentary; Arisa Ema moderates. Online via Zoom Webinar. Wednesday 14 October 2026, 14:00–15:00 JST (Asia/Tokyo; UTC+9). Public advance registration is required through the organizer’s event page. The lecture is in English with Japanese interpretation. Organized by Tokyo College, The University of Tokyo Institutes for Advanced Study.
Comp NeuroNeuro+3 more
Seeing the Invisible: Quantum Spectroscopy and Imaging with Photons We Never Detect
Alexander Solntsev, Isa Ahmadalidokht· University of Technology Sydney
Thu, Oct 22 · 02:00 UTC · Online
Mid-infrared spectroscopy reveals molecular signatures of proteins and lipids, but conventional detection needs specialised equipment. Quantum correlations between differently coloured photons, including entanglement, offer another approach: a mid-infrared photon interacts with the sample while interference enables its information to be measured with visible or near-infrared light. The speakers explain the underlying principle and the progression from quantum spectroscopy to imaging with undetected photons. They discuss their work at the University of Technology Sydney to turn quantum mid-infrared imaging into compact, practical instrumentation for biological research.
Physics of LifeOptical Physics+3 more
End of results.