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Topic: Single cell Transcriptomics

Seminar
4 seminars
Seminar · Neuroscience

Dorothy J Killam Lecture: Cell Type Classification and Circuit Mapping in the Mouse Brain

Hongkui Zeng · Executive Vice President and Director of Allen Institute for Brain Science, Seattle, USA

Tue, Feb 23, 2021 · 16:00 UTC

To understand the function of the brain and how its dysfunction leads to brain diseases, it is essential to have a deep understanding of the cell type composition of the brain, how the cell types are connected with each other and what their roles are in circuit function. At the Allen Institute, we have built multiple platforms, including single-cell transcriptomics, single and multi-patching electrophysiology, 3D reconstruction of neuronal morphology, high throughput brain-wide connectivity mapping, and large-scale neuronal activity imaging, to characterize the transcriptomic, physiological, m

Seminar · Neuroscience

Neurobiology of Social Behavior

Catherine Dulac · Harvard University

Thu, Sep 24, 2020 · 11:00 UTC

Social interactions are central to the human experience, yet it is also one of the faculty of the brain that is the most impaired by mental illness. Similarly, social interactions are essential for animals to survive, reproduce, and raise their young. Over the years, my lab has attempted to decipher the unique characteristics of social recognition: what are the unique cues that trigger distinct social behaviors, what is the nature and identity of social behavior circuits, how is the function of these circuits different in males and females and how are they modulated by the animal physiological

Seminar · Vision Science

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, 2020 · 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 s

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