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Updated: Sep 4, 2026

Concentric Gel System to Study the Biophysical Role of Matrix Microenvironment on 3D Cell Migration
Published on: April 3, 2015
Cell-matrix interactions drive functional compartmentalization of mitochondria during 3D migration
Breanne R Hewitt1, Jacob J Duggan1, Ryan J Petrie1
1Department of Biology, Drexel University, Philadelphia, PA 19104.
Abstract:
Cells migrating through three-dimensional (3D) tissues adapt their mechanical properties in response to extracellular matrix architecture through migratory plasticity. In primary human dermal fibroblasts, matrix elasticity drives distinct low- and high-pressure migration modes in which forces either push or pull the nucleus, respectively. How these mechanically distinct modes of nuclear translocation influence mitochondrial organization and function is not known. Here, we show that mitochondria become enriched anterior to the nucleus during 3D migration and segregate into spatially distinct populations with different motility and energetic states. During high-pressure, nuclear-pulling migration, a highly energized mitochondrial pool forms immediately anterior to the nucleus. This mitochondrial pool occupies a specialized perinuclear compartment organized by ROCK-dependent contractility and vimentin intermediate filaments and is selectively lost when this machinery is disrupted. Together, these findings reveal that extracellular matrix mechanics spatially organize mitochondrial dynamics and energetics during 3D migration, coupling localized mitochondrial function to the mechanical requirements of nuclear translocation. [Media: see text] [Media: see text] [Media: see text] [Media: see text] [Media: see text] [Media: see text] [Media: see text] [Media: see text] [Media: see text].
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