Effects of cytoskeletal network mesh size on cargo transport.

Eur Phys J E Soft Matter

Physics Department, Syracuse University, Crouse Drive, Syracuse, NY, 13104, USA.

Published: November 2023

AI Article Synopsis

  • Intracellular transport is crucial for cell organization and function, particularly in large and elongated cells with complex cytoskeletal networks.
  • Researchers created microtubule networks with different mesh sizes to study how kinesin-driven quantum dot cargo travels through these networks.
  • They developed an analytical theory and simulations that accurately matched experimental results, showing a strong correlation between mesh size and cargo run length, displacement, and trajectory persistence.

Article Abstract

Intracellular transport of cargoes in the cell is essential for the organization and functioning cells, especially those that are large and elongated. The cytoskeletal networks inside large cells can be highly complex, and this cytoskeletal organization can have impacts on the distance and trajectories of travel. Here, we experimentally created microtubule networks with varying mesh sizes and examined the ability of kinesin-driven quantum dot cargoes to traverse the network. Using the experimental data, we deduced parameters for cargo detachment at intersections and away from intersections, allowing us to create an analytical theory for the run length as a function of mesh size. We also used these parameters to perform simulations of cargoes along paths extracted from the experimental networks. We find excellent agreement between the trends in run length, displacement, and trajectory persistence length comparing the experimental and simulated trajectories.

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http://dx.doi.org/10.1140/epje/s10189-023-00358-8DOI Listing

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