4.6 Article

Covalent cross-linking of basement membrane-like matrices physically restricts invasive protrusions in breast cancer cells

期刊

MATRIX BIOLOGY
卷 85-86, 期 -, 页码 94-111

出版社

ELSEVIER
DOI: 10.1016/j.matbio.2019.05.006

关键词

Basement membrane; Cross-linking; Invadopodia; Invasion; Breast cancer; Biomaterials

资金

  1. Graduate Research Fellowship from the United States National Science Foundation
  2. Diversifying Academia and Recruiting Excellence (DARE) Fellowship from the Vice Provost for Graduate Education at Stanford University
  3. Provost's Postdoctoral Fellowship from the Vice Provost for Research at the University of Pennsylvania
  4. National Institutes of Health [R37 CA214136, 1R01GM126256]
  5. National Science Foundation [ACI-1548562]
  6. NSF at the San Diego Supercomputing Center (SDSC) [ACI-1341698]

向作者/读者索取更多资源

The basement membrane (BM) provides a physical barrier to invasion in epithelial tumors, and alterations in the molecular makeup and structural integrity of the BM have been implicated in cancer progression. Invadopodia are the invasive protrusions that enable cancer cells to breach the nanoporous basement membrane, through matrix degradation and generation of force. However, the impact of covalent cross-linking on invadopodia extension into the BM remains unclear. Here, we examine the impact of covalent cross-linking of extracellular matrix on invasive protrusions using biomaterials that present ligands relevant to the basement membrane and provide a nanoporous, confining microenvironment. We find that increased covalent cross-linking of reconstituted basement membrane (rBM) matrix diminishes matrix mechanical plasticity, or the ability of the matrix to permanently retain deformation due to force. Covalently cross-linked rBM matrices, and rBM-alginate interpenetrating networks (IPNs) with covalent cross-links and low plasticity, restrict cell spreading and protrusivity. The reduced spreading and reduced protrusivity in response to low mechanical plasticity occurred independent of proteases. Mechanistically, our computational model reveals that the reduction in mechanical plasticity due to covalent cross-linking is sufficient to mechanically prevent cell protrusions from extending, independent of the impact of covalent cross-linking or matrix mechanical plasticity on cell signaling pathways. These findings highlight the biophysical role of covalent cross-linking in regulating basement membrane plasticity, as well as cancer cell invasion of this confining tissue layer. (C) 2019 Elsevier B.V. All rights reserved.

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