PEER-REVIEWED PUBLICATION

2025

Spatial regulation of mitochondrial membrane potential by α5β1 integrin engagement in collective cell migration

Pacheco GG, Dzamba BJ, et al.

Journal of Cell Science

University of Virginia School of Medicine

RESEARCH SUMMARY
This study reveals a mechanistic connection between extracellular matrix (ECM) engagement, integrin signaling, and mitochondrial bioenergetic regulation during collective cell migration. Using *Xenopus laevis* mesendoderm tissues as a developmental model, the authors show that mitochondrial membrane potential (MMP) is spatially elevated at the leading edge of migrating cell cohorts where α5β1 integrin–fibronectin traction forces are highest. Real-time metabolic analysis demonstrates that α5β1 engagement enhances respiratory efficiency, and this effect is diminished by inhibition of focal adhesion kinase (FAK) signaling. Engagement of both the RGD and PPSRN synergy sites of fibronectin is required to elicit maximal increases in MMP. Mechanical stretching of cells on deformable fibronectin substrates produces a FAK-dependent increase in mitochondrial activity, linking substrate mechanics to cellular metabolism. In vivo experiments further demonstrate that disrupting MMP or ATP synthase slows collective cell migration, highlighting bioenergetics as a functional contributor to tissue-scale morphogenesis.

CELLSCALE INSTRUMENT USED

MechanoCulture FX

Cells plated on fibronectin-coated elastic substrates were subjected to controlled cyclic stretch using a CellScale MechanoCulture FX system. After allowing cell attachment, mesendoderm tissues were stretched at 10% strain under cyclic loading conditions. The MechanoCulture FX provided precise, repeatable deformation of the fibronectin substrate, enabling investigation of how mechanical loading influences mitochondrial membrane potential and integrin-dependent metabolic signaling. These stretch experiments directly demonstrated that mechanical cues synergize with α5β1 integrin engagement to elevate mitochondrial activity through FAK-dependent pathways.
AUTHORS

Gustavo G. Pacheco, Bette J. Dzamba, Wakako Endo, Benjamin C. Edwards, Minah Khan, Tien Comlekoglu, David R. Shook, Keri Quasey, Maureen A. Bjerke, Glen D. Hirsh, David F. Kashatus, Douglas W. DeSimone.

PUBLICATION DETAILS
JOURNAL

Journal of Cell Science

YEAR

2025

INSTITUTIONS

University of Virginia School of Medicine

COUNTRIES

United States

INSTRUMENT USED

MechanoCulture FX

TESTING METHODS

Hydrated and Temperature Controlled TestingViscoelastic & Time-Dependent Testing

RESEARCH APPLICATIONS

ECM & Decellularized Matrix MechanicsMechanotransductionStem Cell Mechanobiology

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