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F-actin patches associated with glutamatergic synapses control positioning of dendritic lysosomes.

Bas van Bommel | Anja Konietzny | Oliver Kobler | Julia Bär | Marina Mikhaylova
The EMBO journal | 2019

Organelle positioning within neurites is required for proper neuronal function. In dendrites, with their complex cytoskeletal organization, transport of organelles is guided by local specializations of the microtubule and actin cytoskeleton, and by coordinated activity of different motor proteins. Here, we focus on the actin cytoskeleton in the dendritic shaft and describe dense structures consisting of longitudinal and branched actin filaments. These actin patches are devoid of microtubules and are frequently located at the base of spines, or form an actin mesh around excitatory shaft synapses. Using lysosomes as an example, we demonstrate that the presence of actin patches has a strong impact on dendritic organelle transport, as lysosomes frequently stall at these locations. We provide mechanistic insights on this pausing behavior, demonstrating that actin patches form a physical barrier for kinesin-driven cargo. In addition, we identify myosin Va as an active tether which mediates long-term stalling. This correlation between the presence of actin meshes and halting of organelles could be a generalized principle by which synapses control organelle trafficking.

Pubmed ID: 31267565

Research resources used in this publication

None found

Antibodies used in this publication

None found

Associated grants

  • Agency: Deutsche Forschungsgemeinschaft, International
    Id: MI 1923/1-1
  • Agency: Deutsche Forschungsgemeinschaft, International
    Id: MI 1923/2-1
  • Agency: Deutsche Forschungsgemeinschaft, International
    Id: MI 1923/2-2
  • Agency: Deutsche Forschungsgemeinschaft, International
    Id: INST 257/602-1
  • Agency: Deutsche Forschungsgemeinschaft, International
    Id: SCHE 132/18-1

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RRID:SCR_005375

THIS RESOURCE IS NO LONGER IN SERVICE. Documented on May 5,2022.Tool that predicts interactions between transcription factors and their regulated genes from binding motifs. Understanding vertebrate development requires unraveling the cis-regulatory architecture of gene regulation. PRISM provides accurate genome-wide computational predictions of transcription factor binding sites for the human and mouse genomes, and integrates the predictions with GREAT to provide functional biological context. Together, accurate computational binding site prediction and GREAT produce for each transcription factor: 1. putative binding sites, 2. putative target genes, 3. putative biological roles of the transcription factor, and 4. putative cis-regulatory elements through which the factor regulates each target in each functional role.

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WI (tool)

RRID:RGD_13508588

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