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Quantification of cell edge velocities and traction forces reveals distinct motility modules during cell spreading.

Publication ,  Journal Article
Dubin-Thaler, BJ; Hofman, JM; Cai, Y; Xenias, H; Spielman, I; Shneidman, AV; David, LA; Döbereiner, H-G; Wiggins, CH; Sheetz, MP
Published in: PLoS One
2008

Actin-based cell motility and force generation are central to immune response, tissue development, and cancer metastasis, and understanding actin cytoskeleton regulation is a major goal of cell biologists. Cell spreading is a commonly used model system for motility experiments -- spreading fibroblasts exhibit stereotypic, spatially-isotropic edge dynamics during a reproducible sequence of functional phases: 1) During early spreading, cells form initial contacts with the surface. 2) The middle spreading phase exhibits rapidly increasing attachment area. 3) Late spreading is characterized by periodic contractions and stable adhesions formation. While differences in cytoskeletal regulation between phases are known, a global analysis of the spatial and temporal coordination of motility and force generation is missing. Implementing improved algorithms for analyzing edge dynamics over the entire cell periphery, we observed that a single domain of homogeneous cytoskeletal dynamics dominated each of the three phases of spreading. These domains exhibited a unique combination of biophysical and biochemical parameters -- a motility module. Biophysical characterization of the motility modules revealed that the early phase was dominated by periodic, rapid membrane blebbing; the middle phase exhibited continuous protrusion with very low traction force generation; and the late phase was characterized by global periodic contractions and high force generation. Biochemically, each motility module exhibited a different distribution of the actin-related protein VASP, while inhibition of actin polymerization revealed different dependencies on barbed-end polymerization. In addition, our whole-cell analysis revealed that many cells exhibited heterogeneous combinations of motility modules in neighboring regions of the cell edge. Together, these observations support a model of motility in which regions of the cell edge exhibit one of a limited number of motility modules that, together, determine the overall motility function. Our data and algorithms are publicly available to encourage further exploration.

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Published In

PLoS One

DOI

EISSN

1932-6203

Publication Date

2008

Volume

3

Issue

11

Start / End Page

e3735

Location

United States

Related Subject Headings

  • Pseudopodia
  • Protein Transport
  • Phosphoproteins
  • Microfilament Proteins
  • Mice
  • General Science & Technology
  • Fibroblasts
  • Cytochalasin D
  • Cell Movement
  • Cell Membrane
 

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Dubin-Thaler, B. J., Hofman, J. M., Cai, Y., Xenias, H., Spielman, I., Shneidman, A. V., … Sheetz, M. P. (2008). Quantification of cell edge velocities and traction forces reveals distinct motility modules during cell spreading. PLoS One, 3(11), e3735. https://doi.org/10.1371/journal.pone.0003735
Dubin-Thaler, Benjamin J., Jake M. Hofman, Yunfei Cai, Harry Xenias, Ingrid Spielman, Anna V. Shneidman, Lawrence A. David, Hans-Günther Döbereiner, Chris H. Wiggins, and Michael P. Sheetz. “Quantification of cell edge velocities and traction forces reveals distinct motility modules during cell spreading.PLoS One 3, no. 11 (2008): e3735. https://doi.org/10.1371/journal.pone.0003735.
Dubin-Thaler BJ, Hofman JM, Cai Y, Xenias H, Spielman I, Shneidman AV, et al. Quantification of cell edge velocities and traction forces reveals distinct motility modules during cell spreading. PLoS One. 2008;3(11):e3735.
Dubin-Thaler, Benjamin J., et al. “Quantification of cell edge velocities and traction forces reveals distinct motility modules during cell spreading.PLoS One, vol. 3, no. 11, 2008, p. e3735. Pubmed, doi:10.1371/journal.pone.0003735.
Dubin-Thaler BJ, Hofman JM, Cai Y, Xenias H, Spielman I, Shneidman AV, David LA, Döbereiner H-G, Wiggins CH, Sheetz MP. Quantification of cell edge velocities and traction forces reveals distinct motility modules during cell spreading. PLoS One. 2008;3(11):e3735.

Published In

PLoS One

DOI

EISSN

1932-6203

Publication Date

2008

Volume

3

Issue

11

Start / End Page

e3735

Location

United States

Related Subject Headings

  • Pseudopodia
  • Protein Transport
  • Phosphoproteins
  • Microfilament Proteins
  • Mice
  • General Science & Technology
  • Fibroblasts
  • Cytochalasin D
  • Cell Movement
  • Cell Membrane