Amacrine Cells

Amacrine cells are interneurons in the vertebrate retina that regulate communication between bipolar cells and retinal ganglion cells, helping convert light-driven signals into meaningful visual information. Using diverse dendritic networks and neurotransmitters, they provide inhibitory and excitatory feedback within the inner plexiform layer, shaping signal timing, contrast, motion sensitivity, and responses to changing illumination. Their specialized circuits can selectively influence pathways for dim-light vision, color processing, and rapid visual events. Studying amacrine cells is therefore important for understanding retinal computation, visual behavior, and how neural circuits are altered in retinal disorders.

Amacrine Cells - Related Videos

Research

JoVE Journal - Neuroscience

Patch Clamp Recording of Starburst Amacrine Cells in a Flat-mount Preparation of Deafferentated Mouse Retina

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2016

This protocol demonstrates how to perform whole-cell patch clamp recording on retinal neurons from a flat-mount preparation.

Isolation of Primary Murine Retinal Ganglion Cells (RGCs) by Flow Cytometry

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Cited by 19 •

2017

Millions of people suffer from retinal degenerative diseases that result in irreversible blindness. A common element of many of these diseases is the loss of retinal ganglion cells (RGCs). This detailed protocol describes the isolation of primary murine RGCs by positive and negative selection with flow cytometry.

Establishing a Whole-Cell Patch Clamp for Electrophysiological Recording from a Flat-Mount Mouse Retina

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2025

This video demonstrates a whole-cell patch-clamp technique for electrophysiological recording from a flat-mount mouse retina. A thin glass pipette with an electrode is used to approach starburst amacrine cells (SACs) within the retina. After forming a seal, suction is applied to rupture the membrane and form the whole-cell patch-clamp configuration. Finally, the flow of ions through the SAC synaptic receptors is measured using the configuration.

Time-Lapse Confocal Imaging of Neuronal Dendritic Dynamics in Mouse Retinal Explants

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2025

Source: Ing-Esteves, S. & Lefebvre, J. L. Time-Lapse Imaging of Neuronal Arborization using Sparse Adeno-Associated Virus Labeling of Genetically Targeted Retinal Cell Populations. J. Vis. Exp. (2021)This video demonstrates the use of confocal microscopy to visualize dendritic dynamics in live mouse retinal explants. It outlines the steps for stabilizing the retina under a confocal microscope, performing epifluorescence imaging to visualize starburst amacrine interneurons, and capturing...

Research

JoVE Journal - Cancer Research
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Tractable In Vivo Reprogramming of Tumor Cells to Type 1 Conventional Dendritic Cell-like Cells

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2025

This protocol describes the in vivo reprogramming of mouse cancer cells into type 1 dendritic-like cells within the tumor microenvironment through enforced expression of the transcription factors PU.1, IRF8, and BATF3.

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