Literature DB >> 18632979

Epidermal growth factor-induced enhancement of glioblastoma cell migration in 3D arises from an intrinsic increase in speed but an extrinsic matrix- and proteolysis-dependent increase in persistence.

Hyung-Do Kim1, Tiffany W Guo, Angela P Wu, Alan Wells, Frank B Gertler, Douglas A Lauffenburger.   

Abstract

Epidermal growth factor (EGF) receptor-mediated cell migration plays a vital role in invasion of many tumor types. EGF receptor ligands increase invasiveness in vivo, but it remains unclear how consequent effects on intrinsic cell motility behavior versus effects on extrinsic matrix properties integrate to result in net increase of translational speed and/or directional persistence of migration in a 3D environment. Understanding this convolution is important for therapeutic targeting of tumor invasion, as key regulatory pathways for intrinsic versus extrinsic effects may not be coincident. Accordingly, we have undertaken a quantitative single-cell imaging study of glioblastoma cell movement in 3D matrices and on 2D substrata across a range of collagen densities with systematic variation of protease-mediated matrix degradation. In 3D, EGF induced a mild increase in cell speed and a strong increase in directional persistence, the latter depending heavily on matrix density and EGF-stimulated protease activity. In contrast, in 2D, EGF induced a similarly mild increase in speed but conversely a decrease in directional persistence (both independent of protease activity). Thus, the EGF-enhanced 3D tumor cell migration results only partially from cell-intrinsic effects, with override of cell-intrinsic persistence decrease by protease-mediated cell-extrinsic reduction of matrix steric hindrance.

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Year:  2008        PMID: 18632979      PMCID: PMC2555959          DOI: 10.1091/mbc.e08-05-0501

Source DB:  PubMed          Journal:  Mol Biol Cell        ISSN: 1059-1524            Impact factor:   4.138


  61 in total

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  50 in total

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Review 7.  Influence of the microenvironment on cell fate determination and migration.

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Review 8.  Toward 3D biomimetic models to understand the behavior of glioblastoma multiforme cells.

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9.  MT1-MMP controls human mesenchymal stem cell trafficking and differentiation.

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10.  A novel asymmetric 3D in-vitro assay for the study of tumor cell invasion.

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