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Journal ArticleDOI

Wiring specificity in the direction-selectivity circuit of the retina

Kevin L. Briggman, +2 more
- 10 Mar 2011 - 
- Vol. 471, Iss: 7337, pp 183-188
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TLDR
It is shown, using serial block-face electron microscopy and two-photon calcium imaging, that the dendrites of mouse starburst amacrine cells make highly specific synapses with direction-selective ganglion cells depending on the ganglION cell’s preferred direction.
Abstract
The proper connectivity between neurons is essential for the implementation of the algorithms used in neural computations, such as the detection of directed motion by the retina. The analysis of neuronal connectivity is possible with electron microscopy, but technological limitations have impeded the acquisition of high-resolution data on a large enough scale. Here we show, using serial block-face electron microscopy and two-photon calcium imaging, that the dendrites of mouse starburst amacrine cells make highly specific synapses with direction-selective ganglion cells depending on the ganglion cell's preferred direction. Our findings indicate that a structural (wiring) asymmetry contributes to the computation of direction selectivity. The nature of this asymmetry supports some models of direction selectivity and rules out others. It also puts constraints on the developmental mechanisms behind the formation of synaptic connections. Our study demonstrates how otherwise intractable neurobiological questions can be addressed by combining functional imaging with the analysis of neuronal connectivity using large-scale electron microscopy.

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Citations
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DissertationDOI

How individual olfactory receptors affect olfactory guided behavior in Drosophila

Tom Retzke
TL;DR: In this paper, the authors present a study of the Attraktion der Fliege zum Kot durch ein Zusammenspiel aller genannten Komponenten zustande kommt.
Posted ContentDOI

Correlated Light-Serial Scanning Electron Microscopy (CoLSSEM) for ultrastructural visualization of single neurons in vivo

TL;DR: This method significantly improves the the feasibility of large-scale reconstructions of neurons within a circuit, and bridges the description of ultrastructural features of genetically-identified neurons with their functional and/or structural connectivity, one of the main goal of connectomics.
Journal ArticleDOI

A connectomic approach to the lateral geniculate nucleus.

TL;DR: Connectomic analysis of the LGN can answer longstanding questions about the organization of the visual thalamus but also presents unique opportunities for investigating fundamental properties of mammalian circuit formation.
Journal ArticleDOI

Dissecting cascade computational components in spiking neural networks.

TL;DR: In this paper, a spike-triggered non-negative matrix factorization (STNMF) method is proposed to find the functional connections within a circuit by simulating different scenarios of spiking neural networks with various connections between neurons and stages.
References
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Journal ArticleDOI

Two-Photon Laser Scanning Fluorescence Microscopy

TL;DR: The fluorescence emission increased quadratically with the excitation intensity so that fluorescence and photo-bleaching were confined to the vicinity of the focal plane as expected for cooperative two-photon excitation.
Journal ArticleDOI

User-guided 3D active contour segmentation of anatomical structures: Significantly improved efficiency and reliability

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Journal ArticleDOI

The structure of the nervous system of the nematode Caenorhabditis elegans

TL;DR: The structure and connectivity of the nervous system of the nematode Caenorhabditis elegans has been deduced from reconstructions of electron micrographs of serial sections as discussed by the authors.
Journal ArticleDOI

The mechanism of directionally selective units in rabbit's retina.

TL;DR: Experiments are described which show, first, that directional selectivity is not due to optical aberrations of some kind and, secondly, that it is not a simple matter of the latency of response varying systematically across the receptive field.
Journal ArticleDOI

Serial block−face scanning electron microscopy to reconstruct three−dimensional tissue nanostructure

TL;DR: It is demonstrated that datasets meeting these requirements can be obtained by automated block-face imaging combined with serial sectioning inside the chamber of a scanning electron microscope, opening the possibility of automatically obtaining the electron-microscope-level 3D datasets needed to completely reconstruct the connectivity of neuronal circuits.
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