» Articles » PMID: 22253752

Spatial Modeling of Vesicle Transport and the Cytoskeleton: the Challenge of Hitting the Right Road

Overview
Journal PLoS One
Date 2012 Jan 19
PMID 22253752
Citations 19
Authors
Affiliations
Soon will be listed here.
Abstract

The membrane trafficking machinery provides a transport and sorting system for many cellular proteins. We propose a mechanistic agent-based computer simulation to integrate and test the hypothesis of vesicle transport embedded into a detailed model cell. The method tracks both the number and location of the vesicles. Thus both the stochastic properties due to the low numbers and the spatial aspects are preserved. The underlying molecular interactions that control the vesicle actions are included in a multi-scale manner based on the model of Heinrich and Rapoport (2005). By adding motor proteins we can improve the recycling process of SNAREs and model cell polarization. Our model also predicts that coat molecules should have a high turnover at the compartment membranes, while the turnover of motor proteins has to be slow. The modular structure of the underlying model keeps it tractable despite the overall complexity of the vesicle system. We apply our model to receptor-mediated endocytosis and show how a polarized cytoskeleton structure leads to polarized distributions in the plasma membrane both of SNAREs and the Ste2p receptor in yeast. In addition, we can couple signal transduction and membrane trafficking steps in one simulation, which enables analyzing the effect of receptor-mediated endocytosis on signaling.

Citing Articles

The relation in MreB and intrabacterial nanotransportation system for VacA in Helicobacter pylori.

Wu H, Fujioka Y, Iwai N, Sakaguchi S, Suzuki Y, Nakano T Med Mol Morphol. 2024; .

PMID: 39704844 DOI: 10.1007/s00795-024-00416-w.


Passive diffusion accounts for the majority of intracellular nanovesicle transport.

Sittewelle M, Royle S Life Sci Alliance. 2023; 7(1).

PMID: 37857498 PMC: 10587482. DOI: 10.26508/lsa.202302406.


Galectin-9 interacts with Vamp-3 to regulate cytokine secretion in dendritic cells.

Mendez R, Rodgers Furones A, Classens R, Fedorova K, Haverdil M, Canela Capdevila M Cell Mol Life Sci. 2023; 80(10):306.

PMID: 37755527 PMC: 10533640. DOI: 10.1007/s00018-023-04954-x.


A multiscale model of the regulation of aquaporin 2 recycling.

Leberecht C, Schroeder M, Labudde D NPJ Syst Biol Appl. 2022; 8(1):16.

PMID: 35534498 PMC: 9085758. DOI: 10.1038/s41540-022-00223-y.


Spatial redistribution of neurosecretory vesicles upon stimulation accelerates their directed transport to the plasma membrane.

Schenk E, Meunier F, Oelz D PLoS One. 2022; 17(3):e0264521.

PMID: 35294476 PMC: 8926195. DOI: 10.1371/journal.pone.0264521.


References
1.
Lippincott-Schwartz J . Cytoskeletal proteins and Golgi dynamics. Curr Opin Cell Biol. 1998; 10(1):52-9. DOI: 10.1016/s0955-0674(98)80086-0. View

2.
Andrews S, Bray D . Stochastic simulation of chemical reactions with spatial resolution and single molecule detail. Phys Biol. 2005; 1(3-4):137-51. DOI: 10.1088/1478-3967/1/3/001. View

3.
Foret L, Sens P . Kinetic regulation of coated vesicle secretion. Proc Natl Acad Sci U S A. 2008; 105(39):14763-8. PMC: 2567441. DOI: 10.1073/pnas.0801173105. View

4.
Cai H, Reinisch K, Ferro-Novick S . Coats, tethers, Rabs, and SNAREs work together to mediate the intracellular destination of a transport vesicle. Dev Cell. 2007; 12(5):671-82. DOI: 10.1016/j.devcel.2007.04.005. View

5.
Moseley J, Goode B . The yeast actin cytoskeleton: from cellular function to biochemical mechanism. Microbiol Mol Biol Rev. 2006; 70(3):605-45. PMC: 1594590. DOI: 10.1128/MMBR.00013-06. View