Developmental Neuroscience seminars
April 2021
Circuit homeostasis: keeping a level head when the brain gets hot
Michelle Antoine· NIH
Fri, Apr 23 · 06:00 UTC
Core body temperature is regulated to a setpoint between 36.1 to 37.8°C, with an average fluctuation of 0.5°C during a 24-hour day. Despite mechanistic safeguards, major temperature deviations (1-3°C) from the setpoint occur in the body and in turn the brain. For unknown reasons, in most mammals (humans included), these increases in brain temperature are benign. However, macro-fluctuations in brain temperature in some cases result in deleterious outcomes such as seizures. In this talk, I will describe a mechanism for circuit-level adaptive regulation of cortical activity during macro-fluctuations in brain temperature. I will also discuss how this mechanism can be applied towards the understanding of the pathology of Autism Spectrum Disorder.
Function and development of neuronal ensembles in zebrafish habenula
Emre Yaksi· Kavli Institute for Systems Neuroscience, NTNU
Thu, Apr 15 · 17:00 UTC
On the acquisition of visual functions following early-onset and prolonged visual deprivation
Udi Zohary· Hebrew University
Tue, Apr 13 · 13:00 UTC
The coming of age of neural stem cells
François Guillemot· Francis Crick Institute
Thu, Apr 1 · 17:00 UTC
March 2021
Sonic hedgehog signaling: from neurons to astrocytes during cortical circuit assembly
Corey Harwell· Harvard Medical School
Thu, Mar 18 · 17:00 UTC
A developmental-cognitive perspective on the impact of adolescent social media use
Amy Orben· MRC Cognition and Brain Sciences Unit, University of Cambridge
Tue, Mar 2 · 15:00 UTC
Concerns about the impact of social media use on adolescent well-being and mental health are common. While the amount of research in this area has increased rapidly over the last 5 years, most outputs are still marred by a multitude of limitations. These shortcomings have left our understanding of social media effects severely limited, holding back both scientific discovery and policy interventions. This talk discusses how developmental, cognitive and neuroscientific approaches might provide a new and improved way of studying social media effects. It will detail new studies in support of this idea, and raise potential avenues for collaborative work across the Cambridge Neuroscience community. As the digital world now (re)shapes what it means for us to live, communicate and develop, only an interdisciplinary approach will allow us to truly understand its impacts.
February 2021
Transient cortical circuits match spontaneous and sensory driven activity during development
Zoltan Molnar· University of Oxford
Thu, Feb 25 · 17:00 UTC
The emergence and plasticity of visual domain organization in the cerebral hemispheres
Marlene Behrmann· CMU
Tue, Feb 23 · 16:00 UTC
Playing fast and loose with glutamate builds healthy circuits in the developing cortex
Chris Dulla· Tufts University
Wed, Feb 17 · 16:00 UTC
The construction of cortical circuits requires the precise formation of connections between excitatory and inhibitory neurons during early development. Multiple factors, including neurotransmitters, neuronal activity, and neuronal-glial interactions, shape how these critical circuits form. Disruptions of these early processes can disrupt circuit formation, leading to epilepsy and other neurodevelopmental disorders. Here, I will describe our work into understanding how prolonged post-natal astrocyte development in the cortex creates a permissive window for glutamate signaling that provides tonic activation of developing interneurons through Grin2D NMDA receptors. Experimental disruption of this pathway results in hyperexcitable cortical circuits and human mutations in the Grin2D gene, as well as other related molecules that regulate early life glutamate signaling, are associated with devastating epileptic encephalopathies. We will explore fundamental mechanisms linking early life glutamate signaling and later circuit hyperexcitability, with an emphasis on potential therapeutic interventions aimed at reducing epilepsy and other neurological dysfunction.
Molecular and activity-dependent mechanisms of cortical development underlying corpus callosum dysgenesis
Linda Richards· Queensland Brain Institute, University of Queensland
Thu, Feb 11 · 11:00 UTC
Rare Disease Natural History Studies: Experience from the GNAO1 Natural History study in a pre and postpandemic world
Amy R. Viehoever· Washington University, Saint Louis, USA
Tue, Feb 9 · 15:00 UTC
January 2021
Brain cancer and the single-cell architecture of human brain development
Sten Linnarsson· Karolinska Institutet
Thu, Jan 28 · 17:00 UTC
Nature, nurture and synaptic adhesion in between
Adema Ribic· Department of Psychology, University of Virginia
Mon, Jan 25 · 05:00 UTC
Exposure to proper environment during early development is essential for brain maturation. Impaired sensory input or abnormal experiences can have long-term negative consequences on brain health. We seek to define the precise synaptic aberrations caused by abnormal visual experiences early in life, and how these can be remedied through viral, genetic and environmental approaches. Resulting knowledge will contribute to the development of new approaches to mitigate nervous system damage caused by abnormal early life experience.
Temporal patterning and the generation of neural diversity
Claude Desplan· New York University
Thu, Jan 21 · 17:00 UTC
Synaesthesia as a Model System for Understanding Variation in the Human Mind and Brain
Jamie Ward· University of Sussex
Sat, Jan 16 · 02:00 UTC
During this talk, I will seek to reposition synaesthesia as model system for understanding variation in the construction of the human mind and brain. People with synaesthesia inhabit a remarkable mental world in which numbers can be coloured, words can have tastes, and music is a visual spectacle. Synaesthesia has now been documented for over two hundred years but key questions remain unanswered about why it exists, and what such conditions might mean for theories of the human mind. I will argue that we need to rethink synaesthesia as not just representing exceptional experiences, but as a product of an unusual neurodevelopmental cascade from genes to brain to cognition of which synaesthesia is only one outcome. Rather than synaesthesia being a kind of 'dangling qualia' (atypical experiences attached to a typical mind/brain) it should be thought of as unusual experiences that accompany an unusual mind/brain. Specifically, differences in the brains of synaesthetes support a distinctive way of thinking (enhanced memory, imagery etc.) and may also predispose towards particular clinical vulnerabilities. It is this neurodiverse phenotype that is an important object of study in its own right and may explain any adaptive value for having synaesthesia.
Developmental regulation of H3K27me3 drives synapse maturation and social behavior
Urann Chan· Duke
Wed, Jan 13 · 08:30 UTC
Human neuronal activity-dependent gene regulation in development and disease
Gabriella Boulting· Harvard Medical School
Wed, Jan 13 · 08:00 UTC
December 2020
Cellular-resolution gene expression profiling in the neonatal marmoset brain reveals dynamic species- and region-specific differences
Tomomi Shimogori· Center for Brain Science, RIKEN
Thu, Dec 10 · 16:00 UTC
Beyond energy - an unconventional role of mitochondria in cone photoreceptors
Wei Li· NIH Bethesda
Tue, Dec 8 · 15:00 UTC
The long-term goal of my research is to study the mammalian retina as a model for the central nervous system (CNS) -- to understand how it functions in physiological conditions, how it is formed, how it breaks down in pathological conditions, and how it can be repaired. I have focused on two research themes: 1) Photoreceptor structure, synapse, circuits, and development, 2) Hibernation and metabolic adaptations in the retina and beyond. As the first neuron of the visual system, photoreceptors are vital for photoreception and transmission of visual signals. I am particularly interested in cone photoreceptors, as they mediate our daylight vision with high resolution color information. Diseases affecting cone photoreceptors compromise visual functions in the central macular area of the human retina and are thus most detrimental to our vision. However, because cones are much less abundant compared to rods in most mammals, they are less well studied. We have used the ground squirrel (GS) as a model system to study cone vision, taking advantage of their unique cone-dominant retina. In particular, we have focused on short-wavelength sensitive cones (S-cones), which are not only essential for color vision, but are also an important origin of signals for biological rhythm, mood and cognitive functions, and the growth of the eye during development. We are studying critical cone synaptic structures – synaptic ribbons, the synaptic connections of S-cones, and the development of S-cones with regard to their specific connections. These works will provide knowledge of normal retinal development and function, which can also be extended to the rest of CNS; for example, the mechanisms of synaptic targeting during development. In addition, such knowledge will benefit the development of optimal therapeutic strategies for regeneration and repair in cases of retinal degenerative disease. Many neurodegenerative diseases, including retinal diseases, are rooted in metabolic stress in neurons and/or glial cells. Using the same GS model, we aim to learn from this hibernating mammal, which possesses an amazing capability to adapt to the extreme metabolic conditions during hibernation. By exploring the mechanisms of such adaptation, we hope to discover novel therapeutic tactics for neurodegenerative diseases.