Cell Biology seminars
August 2020
Dashing Through the Maze: Transport through Reticulated Organelles
Lena Koslover· UCSD
Wed, Aug 19 · 00:00 UTC
Cooperation, competition, and conviction in decision-making for motile cells
Julie Theriot· University of Washington
Sat, Aug 15 · 00:00 UTC
No membrane, no problem: condensing bacterial organelles
Steph Weber· McGill University
Wed, Aug 12 · 00:00 UTC
Following the energy in cellular information processing
Jeremy Gunawardena· Harvard University
Mon, Aug 3 · 00:00 UTC
July 2020
Mechanisms of pathogenesis in the tauopathies
Karen Duff· UK Dementia Research Institute at UCL
Thu, Jul 23 · 15:00 UTC
The distribution of pathological tau in the brain of patients with AD is highly predicable, and as disease worsens, it spreads transynaptically from initial regions of vulnerability. The reason why only some neurons are vulnerable to the accumulation and propagation of pathological forms of tau, and the mechanisms by which tauopathy spreads through the brain are not well understood. Using a combination of immunohistochemistry and computational analysis we have examined pathway differences between vulnerable and resistant neurons. How tau spreads across a synapse has been examined in vitro using different model systems. Our data show that dysregulation of tau homeostasis determines the cellular and regional vulnerability of specific neurons to tau pathology (H. Fu et al. 2019. Nat. Neuro. 22 (1):47-56) and that deficits in tau homeostasis can exacerbate tau accumulation and propagation. Aging appears to impact similar neuronal populations. Mechanisms and consequences of abnormal tau accumulation within neurons, its transfer between cells, pathology propagation and therapeutic opportunities will be discussed.
June 2020
Toward a Comprehensive Classification of Mouse Retinal Ganglion Cells: Morphology, Function, Gene Expression, and Central Projections
Greg Schwartz· Northwestern University, Feinberg School of Medicine
Mon, Jun 29 · 15:00 UTC
I will introduce a web portal for the retinal neuroscience community to explore the catalog of mouse retinal ganglion cell (RGC) types, including data on light responses, correspondences with morphological types in EyeWire, and gene expression data from single-cell transcriptomics. Our current classification includes 43 types, accounting for 90% of the cells in EyeWire. Many of these cell types have new stories to tell, and I will cover two of them that represent opposite ends of the spectrum of levels of analysis in my lab. First, I will introduce the “Bursty Suppressed-by-Contrast” RGC and show how its intrinsic properties rather than its synaptic inputs differentiate its function from that of a different well-known RGC type. Second, I will present the histogram of cell types that project to the Olivary Pretectal Nucleus, focusing on the recently discovered M6 ipRGC.
Neural Stem Cell Lineage Progression in Developing Cerebral Cortex
Simon Hippenmeyer· Institute of Science and Technology, Austria
Mon, Jun 15 · 17:00 UTC
The concerted production of the correct number and diversity of neurons and glia by neural stem cells is essential for intricate neural circuit assembly. In the developing cerebral cortex, radial glia progenitors (RGPs) are responsible for producing all neocortical neurons and certain glia lineages. We recently performed a clonal analysis by exploiting the genetic MADM (Mosaic Analysis with Double Markers) technology and discovered a high degree of non-stochasticity and thus deterministic mode of RGP behaviour. However, the cellular and molecular mechanisms controlling RGP lineage progression remain unknown. To this end we use quantitative MADM-based genetic paradigms at single cell resolution to define the cell-autonomous functions of signaling pathways controlling cortical neuron/glia genesis and postnatal stem cell behaviour in health and disease. Here I will outline our current understanding of the mechanistic framework instructing neural stem cell lineage progression and discuss new data about the role of genomic imprinting – an epigenetic phenomenon - in cortical development.
May 2020
Cell migration promotes dynamic cellular interactions to control cerebral cortex morphogenesis
Laurent NGuyen· Fonds de la Recherche Scientifique – FNRS
Thu, May 28 · 17:00 UTC
Following neuronal trajectories
Silvia Cappello· Max Planck Institute of Psychiatry
Thu, May 14 · 17:00 UTC
Malformations of the human cerebral cortex represent a major cause of developmental disabilities. To date, animal models carrying mutations of genes so far identified in human patients with brain malformations only partially recapitulate the expected phenotypes and therefore do not provide reliable models to entirely understand the molecular and cellular mechanisms responsible for these disorders. Hence, we combine the in vivo mouse model and the human brain organoids in order to better comprehend the mechanisms involved in the migration of neurons during human development and tackle the causes of neurodevelopmental disorders. Our results show that we can model human brain development and disorders using human brain organoids and contribute to open new avenues to bridge the gap of knowledge between human brain malformations and existing animal models.
April 2020
Functional characterization of human iPSC-derived neurons at single-cell resolution
Dr. Marie Obien, Dr. Michele Fiscella· VP Marketing and Sales at MaxWell Biosystems | VP Scientific Affairs at MaxWell Biosystems
Thu, Apr 23 · 17:00 UTC
Recent developments in induced pluripotent stem cell (iPSC) technology have enabled easier access to human cells in vitro. With increasing availability of human iPSC-derived neurons, both healthy and disease cell lines, screening compounds for neurodegenerative diseases on human cells can potentially be performed in the earlier stages of drug discovery. To accelerate the functional characterization of iPSC-derived neurons and the effect of compounds, reproducible and relevant results are necessary. In this webinar, the speakers will: Introduce high-resolution functional imaging of human iPSC-derived neurons Showcase how to extract functional features of hundreds of cells in a cell culture sample label-free Discuss electrophysiological parameters for characterizing the differences among several human neuronal cell lines
Fate and freedom in developing neocortical circuits
Denis Jabaudon· University of Geneva
Thu, Apr 23 · 15:00 UTC
During brain development, neurons are born in specialized niches and migrate to target regions where they assemble to form the circuits that underlie mammalian behaviour. During their journey, neurons follow cell-intrinsic, genetic programs transmitted by their mother cells but also environmental cues, which together drive their maturation. Here, focusing on the neocortex, I will discuss recent findings from our laboratory in which we untangle and manipulate the programs at play in progenitors and their daughter neurons to better understand the emergence of cellular diversity in the developing brain.
End of results.