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Confinement Primes Cells for Faster Migration by Polarizing Active Mitochondria

Overview
Journal Nanoscale Adv
Specialty Biotechnology
Date 2023 Dec 21
PMID 38125598
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Abstract

Mechanical cues in the tumor microenvironment interplay with internal cellular processes to control cancer cell migration. Microscale pores present in tumor tissue confer varying degrees of confinement on migrating cells, increasing matrix contact and inducing cytoskeletal rearrangement. Previously, we observed that increased collagen matrix contact significantly increased cell migration speed and cell-induced strains within the matrix. However, the effects of this confinement on future cell migration are not fully understood. Here, we use a collagen microtrack platform to determine the effect of confinement on priming MDA-MB-231 cancer cells for fast migration. We show that migration through a confined track results in increased speed and accumulation of migratory machinery, including actin and active mitochondria, in the front of migrating breast cancer cells. By designing microtracks that allow cells to first navigate a region of high confinement, then a region of low confinement, we assessed whether migration in high confinement changes future migratory behavior. Indeed, cells maintain their speed attained in high confinement even after exiting to a region of low confinement, indicating that cells maintain memory of previous matrix cues to fuel fast migration. Active mitochondria maintain their location at the front of the cell even after cells leave high confinement. Furthermore, knocking out vinculin to disrupt focal adhesions disrupts active mitochondrial localization and disrupts the fast migration seen upon release from confinement. Together, these data suggest that active mitochondrial localization in confinement may facilitate fast migration post-confinement. By better understanding how confinement contributes to future cancer cell migration, we can identify potential therapeutic targets to inhibit breast cancer metastasis.

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References
1.
Mosier J, Rahman-Zaman A, Zanotelli M, VanderBurgh J, Bordeleau F, Hoffman B . Extent of Cell Confinement in Microtracks Affects Speed and Results in Differential Matrix Strains. Biophys J. 2019; 117(9):1692-1701. PMC: 6838744. DOI: 10.1016/j.bpj.2019.09.024. View

2.
Fung T, Chakrabarti R, Higgs H . The multiple links between actin and mitochondria. Nat Rev Mol Cell Biol. 2023; 24(9):651-667. PMC: 10528321. DOI: 10.1038/s41580-023-00613-y. View

3.
Messi Z, Bornert A, Raynaud F, Verkhovsky A . Traction Forces Control Cell-Edge Dynamics and Mediate Distance Sensitivity during Cell Polarization. Curr Biol. 2020; 30(9):1762-1769.e5. DOI: 10.1016/j.cub.2020.02.078. View

4.
Mosier J, Schwager S, Boyajian D, Reinhart-King C . Cancer cell metabolic plasticity in migration and metastasis. Clin Exp Metastasis. 2021; 38(4):343-359. DOI: 10.1007/s10585-021-10102-1. View

5.
Zhang Y, Li Y, Thompson K, Stoletov K, Yuan Q, Bera K . Polarized NHE1 and SWELL1 regulate migration direction, efficiency and metastasis. Nat Commun. 2022; 13(1):6128. PMC: 9576788. DOI: 10.1038/s41467-022-33683-1. View