Effects of dynamic matrix remodelling on <i>en masse</i> migration of fibroblasts on collagen matrices.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 28978745.
- Also identified by DOI 10.1098/rsif.2017.0287 and PMC identifier 5665820.
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Abstract
Fibroblast migration plays a key role during various physiological and pathological processes. Although migration of individual fibroblasts has been well studied, migration <i>in vivo</i> often involves simultaneous locomotion of fibroblasts sited in close proximity, so-called '<i>en masse</i> migration', during which intensive cell-cell interactions occur. This study aims to understand the effects of matrix mechanical environments on the cell-matrix and cell-cell interactions during <i>en masse</i> migration of fibroblasts on collagen matrices. Specifically, we hypothesized that a group of migrating cells can significantly deform the matrix, whose mechanical microenvironment dramatically changes compared with the undeformed state, and the alteration of the matrix microenvironment reciprocally affects cell migration. This hypothesis was tested by time-resolved measurements of cell and extracellular matrix movement during <i>en masse</i> migration on collagen hydrogels with varying concentrations. The results illustrated that a group of cells generates significant spatio-temporal deformation of the matrix before and during the migration. Cells on soft collagen hydrogels migrate along tortuous paths, but, as the matrix stiffness increases, cell migration patterns become aligned with each other and show coordinated migration paths. As cells migrate, the matrix is locally compressed, resulting in a locally stiffened and dense matrix across the collagen concentration range studied.
Medical subject headings
- Cell Movement
- Cellular Microenvironment
- Collagen
- Extracellular Matrix
- Fibroblasts
- Hydrogels