Seminars
February 2022
The Role of Cerebrovascular Pathology in Aging and Neurodegenerative Disease Populations
Mahsa Dadar· Assistant Professor, Department of Psychiatry, McGill University, Canada
Wed, Feb 23 · 10:00 UTC
Late-life cognitive impairment and dementia are heterogeneous and multifactorial conditions driven by a combination of genetic, vascular, and lifestyle-related factors. More than 75% of patients with dementia have evidence of cerebrovascular pathology at autopsy. Cerebrovascular disease lesions can be detected on structural MRI and used as biomarkers to determine the extent of cerebrovascular pathology. These biomarkers are associated with cognitive difficulties and increase the risk of dementia for the same level of neurodegenerative pathology. Given that some of the risk factors for cerebrovascular disease are potentially modifiable, identifying the role of cerebrovascular pathology in aging and neurodegenerative disease populations opens a window for prevention of cognitive decline and dementia.
Leadership Support and Workplace Psychosocial Stressors
Leslie B. Hammer· Portland State University
Wed, Feb 23 · 09:30 UTC
Research evidence indicates that psychosocial stressors such as work-life stress serves as a negative occupational exposure relating to poor health behaviors including smoking, poor food choices, low levels of exercise, and even decreased sleep time, as well as a number of chronic health outcomes. The association between work-life stress and adverse health behaviors and chronic health suggests that Occupational Health Psychology (OHP) interventions such as leadership support trainings may be helpful in mitigating effects of work-life stress and improving health, consistent with the Total Worker Health approach. This presentation will review workplace psychosocial stressors and leadership training approaches to reduces stress and improve health, highlighting a randomized controlled trial, the Military Employee Sleep and Health study.
Studying cortical development through the lens of autism spectrum disorders
Gaia Novarino· Institute of Science and Technology Austria
Wed, Feb 23 · 05:00 UTC
Neural circuits exhibit complex activity patterns, both spontaneously and in response to external stimuli. Information encoding and learning in neural circuits depend on the ability of time-varying stimuli to control spontaneous network activity. In particular, variability arising from the sensitivity to initial conditions of recurrent cortical circuits can limit the information conveyed about the sensory input. Spiking and firing rate network models can exhibit such sensitivity to initial conditions that are reflected in their dynamic entropy rate and attractor dimensionality computed from their full Lyapunov spectrum. I will show how chaos in both spiking and rate networks depends on biophysical properties of neurons and the statistics of time-varying stimuli. In spiking networks, increasing the input rate or coupling strength aids in controlling the driven target circuit, which is reflected in both a reduced trial-to-trial variability and a decreased dynamic entropy rate. With sufficiently strong input, a transition towards complete network state control occurs. Surprisingly, this transition does not coincide with the transition from chaos to stability but occurs at even larger values of external input strength. Controllability of spiking activity is facilitated when neurons in the target circuit have a sharp spike onset, thus a high speed by which neurons launch into the action potential. I will also discuss chaos and controllability in firing-rate networks in the balanced state. For these, external control of recurrent dynamics strongly depends on correlations in the input. This phenomenon was studied with a non-stationary dynamic mean-field theory that determines how the activity statistics and the largest Lyapunov exponent depend on frequency and amplitude of the input, recurrent coupling strength, and network size. This shows that uncorrelated inputs facilitate learning in balanced networks. The results highlight the potential of Lyapunov spectrum analysis as a diagnostic for machine learning applications of recurrent networks. They are also relevant in light of recent advances in optogenetics that allow for time-dependent stimulation of a select population of neurons.
Neurocognitive mechanisms of enhanced implicit temporal processing in action video game players
Francois R. Foerster· Giersch Lab, INSERM U1114
Wed, Feb 23 · 04:00 UTC
Playing action video games involves both explicit (conscious) and implicit (non-conscious) expectations of timed events, such as the appearance of foes. While studies revealed that explicit attention skills are improved in action video game players (VGPs), their implicit skills remained untested. To this end, we investigated explicit and implicit temporal processing in VGPs and non-VGPs (control participants). In our variable foreperiod task, participants were immersed in a virtual reality and instructed to respond to a visual target appearing at variable delays after a cue. I will present behavioral, oculomotor and EEG data and discuss possible markers of the implicit passage of time and explicit temporal attention processing. All evidence indicates that VGPs have enhanced implicit skills to track the passage of time, which does not require conscious attention. Thus, action video game play may improve a temporal processing found altered in psychopathologies, such as schizophrenia. Could digital (game-based) interventions help remediate temporal processing deficits in psychiatric populations?
Dynamic dopaminergic signaling probabilistically controls the timing of self-timed movements
Allison Hamilos· Assad Lab, Harvard University
Wed, Feb 23 · 04:00 UTC
Human movement disorders and pharmacological studies have long suggested molecular dopamine modulates the pace of the internal clock. But how does the endogenous dopaminergic system influence the timing of our movements? We examined the relationship between dopaminergic signaling and the timing of reward-related, self-timed movements in mice. Animals were trained to initiate licking after a self-timed interval following a start cue; reward was delivered if the animal’s first lick fell within a rewarded window (3.3-7 s). The first-lick timing distributions exhibited the scalar property, and we leveraged the considerable variability in these distributions to determine how the activity of the dopaminergic system related to the animals’ timing. Surprisingly, dopaminergic signals ramped-up over seconds between the start-timing cue and the self-timed movement, with variable dynamics that predicted the movement/reward time, even on single trials. Steeply rising signals preceded early initiation, whereas slowly rising signals preceded later initiation. Higher baseline signals also predicted earlier self-timed movement. Optogenetic activation of dopamine neurons during self-timing did not trigger immediate movements, but rather caused systematic early-shifting of the timing distribution, whereas inhibition caused late-shifting, as if dopaminergic manipulation modulated the moment-to-moment probability of unleashing the planned movement. Consistent with this view, the dynamics of the endogenous dopaminergic signals quantitatively predicted the moment-by-moment probability of movement initiation. We conclude that ramping dopaminergic signals, potentially encoding dynamic reward expectation, probabilistically modulate the moment-by-moment decision of when to move. (Based on work from Hamilos et al., eLife, 2021).
Do heart rate oscillations enhance function of emotion networks in the brain
Mara Mather· USC Davis School of Gerontology
Tue, Feb 22 · 17:00 UTC
Keeping visual cortex in the back of your mind: From visual inputs to behavior and memory
Sharon Gilaie-Dotan· Bar Ilan University
Tue, Feb 22 · 16:00 UTC
Deception, ExoNETs, SmushWare & Organic Data: Tech-facilitated neurorehabilitation & human-machine training
James Patton· University of Illinois at Chicago, Shirley Ryan Ability Lab
Tue, Feb 22 · 15:00 UTC
Making use of visual display technology and human-robotic interfaces, many researchers have illustrated various opportunities to distort visual and physical realities. We have had success with interventions such as error augmentation, sensory crossover, and negative viscosity. Judicial application of these techniques leads to training situations that enhance the learning process and can restore movement ability after neural injury. I will trace out clinical studies that have employed such technologies to improve the health and function, as well as share some leading-edge insights that include deceiving the patient, moving the "smarts" of software into the hardware, and examining clinical effectiveness
Cell assembly activation coordinated by rhythmic oscillation in the prefrontal-ventral striatum-hippocampal network
Sidney Wiener· CIRB, Collège de France
Mon, Feb 21 · 16:00 UTC
Attention to visual motion: shaping sensation into perception
Stefan Treue· German Primate Center - Leibniz Institute for Primate Research, Goettingen, Germany
Mon, Feb 21 · 15:00 UTC
Evolution has endowed primates, including humans, with a powerful visual system, seemingly providing us with a detailed perception of our surroundings. But in reality the underlying process is one of active filtering, enhancement and reshaping. For visual motion perception, the dorsal pathway in primate visual cortex and in particular area MT/V5 is considered to be of critical importance. Combining physiological and psychophysical approaches we have used the processing and perception of visual motion and area MT/V5 as a model for the interaction of sensory (bottom-up) signals with cognitive (top-down) modulatory influences that characterizes visual perception. Our findings document how this interaction enables visual cortex to actively generate a neural representation of the environment that combines the high-performance sensory periphery with selective modulatory influences for producing an “integrated saliency map’ of the environment.
Vision ScienceNeuroscience+1 more
Invariant neural subspaces maintained by feedback modulation
Henning Sprekeler· TU Berlin
Sat, Feb 19 · 03:00 UTC
Sensory systems reliably process incoming stimuli in spite of changes in context. Most recent models accredit this context invariance to an extraction of increasingly complex sensory features in hierarchical feedforward networks. Here, we study how context-invariant representations can be established by feedback rather than feedforward processing. We show that feedforward neural networks modulated by feedback can dynamically generate invariant sensory representations. The required feedback can be implemented as a slow and spatially diffuse gain modulation. The invariance is not present on the level of individual neurons, but emerges only on the population level. Mechanistically, the feedback modulation dynamically reorients the manifold of neural activity and thereby maintains an invariant neural subspace in spite of contextual variations. Our results highlight the importance of population-level analyses for understanding the role of feedback in flexible sensory processing.
Computational NeuroscienceNeuroscienceSeries: Sydney Systems Neuroscience and Complexity SNACVideo+2 more
Directing the timing of maturation in human pluripotent stem cell-derived neurons
Gabriele Ciceri· Memorial Sloan Kettering Cancer Center, New York, USA
Fri, Feb 18 · 14:00 UTC
Life and death of transient neurons in the development of functional and dysfunctional cortical circuits
Alessandra Pierani· Howard Hughes Medical Institute, Columbia University
Thu, Feb 17 · 17:00 UTC
Rhythms in perception: action planning and behavioral oscillations
Maria Concetta Morrone· University of Pisa - Italy
Thu, Feb 17 · 16:00 UTC
‘Autophagy regulates neurotransmission by controlling the axonal endoplasmic reticulum’
Marijn Kuijpers· Leibniz-Forschungsinstitut Für Molekulare Pharmakologie (FMP), Berlin
Thu, Feb 17 · 16:00 UTC
Dissecting sleep-wake circuitries in health and disease
Carolina Gutierrez Herrera· Inselspital Bern, Center for Experimental Neurology (ZEN), Switzerland
Thu, Feb 17 · 12:15 UTC
Keeping your Brain in Balance: the Ups and Downs of Homeostatic Plasticity (virtual)
Gina Turrigiano, PhD· Professor, Department of Biology, Brandeis University, USA
Thu, Feb 17 · 10:00 UTC
Our brains must generate and maintain stable activity patterns over decades of life, despite the dramatic changes in circuit connectivity and function induced by learning and experience-dependent plasticity. How do our brains acheive this balance between opposing need for plasticity and stability? Over the past two decades, we and others have uncovered a family of “homeostatic” negative feedback mechanisms that are theorized to stabilize overall brain activity while allowing specific connections to be reconfigured by experience. Here I discuss recent work in which we demonstrate that individual neocortical neurons in freely behaving animals indeed have a homeostatic activity set-point, to which they return in the face of perturbations. Intriguingly, this firing rate homeostasis is gated by sleep/wake states in a manner that depends on the direction of homeostatic regulation: upward-firing rate homeostasis occurs selectively during periods of active wake, while downward-firing rate homeostasis occurs selectively during periods of sleep, suggesting that an important function of sleep is to temporally segregate bidirectional plasticity. Finally, we show that firing rate homeostasis is compromised in an animal model of autism spectrum disorder. Together our findings suggest that loss of homeostatic plasticity in some neurological disorders may render central circuits unable to compensate for the normal perturbations induced by development and learning.
How does a neuron decide when and where to make a synapse?
Peter R. Hiesinger· Free University, Berlin, Germany
Wed, Feb 16 · 16:00 UTC
Precise synaptic connectivity is a prerequisite for the function of neural circuits, yet individual neurons, taken out of their developmental context, readily form unspecific synapses. How does genetically encoded brain wiring deal with this apparent contradiction? Brain wiring is a developmental growth process that is not only characterized by precision, but also flexibility and robustness. As in any other growth process, cellular interactions are restricted in space and time. Correspondingly, molecular and cellular interactions are restricted to those that 'get to see' each other during development. This seminar will explore the question how neurons decide when and where to make synapses using the Drosophila visual system as a model. New findings reveal that pattern formation during growth and the kinetics of live neuronal interactions restrict synapse formation and partner choice for neurons that are not otherwise prevented from making incorrect synapses in this system. For example, cell biological mechanisms like autophagy as well as developmental temperature restrict inappropriate partner choice through a process of kinetic exclusion that critically contributes to wiring specificity. The seminar will explore these and other neuronal strategies when and where to make synapses during developmental growth that contribute to precise, flexible and robust outcomes in brain wiring.
Activity-dependent Gene Therapy for Epilepsy
Gabriele Lignani· University College London
Wed, Feb 16 · 16:00 UTC