Abstract
To change shape, divide, form junctions, and migrate, cells reorganize their cytoskeletons in response to changing mechanical environments [1–4]. Actin cytoskeletal elements, including myosin II motors and actin crosslinkers, structurally remodel and activate signaling pathways in response to imposed stresses [5–9]. Recent studies demonstrate the importance of force-dependent structural rearrangement of α-catenin in adherens junctions [10] and vinculin's molecular clutch mechanism in focal adhesions [11]. However, the complete landscape of cytoskeletal mechanoresponsive proteins and the mechanisms by which these elements sense and respond to force remain to be elucidated. To find mechanosensitive elements in mammalian cells, we examined protein relocalization in response to controlled external stresses applied to individual cells. Here, we show that non-muscle myosin II, α-actinin, and filamin accumulate to mechanically stressed regions in cells from diverse lineages. Using reaction-diffusion models for force-sensitive binding, we successfully predicted which mammalian α-actinin and filamin paralogs would be mechanoaccumulative. Furthermore, a “Goldilocks zone” must exist for each protein where the actin-binding affinity must be optimal for accumulation. In addition, we leveraged genetic mutants to gain a molecular understanding of the mechanisms of α-actinin and filamin catch-bonding behavior. Two distinct modes of mechanoaccumulation can be observed: a fast, diffusion-based accumulation and a slower, myosin II-dependent cortical flow phase that acts on proteins with specific binding lifetimes. Finally, we uncovered cell-type- and cell-cycle-stage-specific control of the mechanosensation of myosin IIB, but not myosin IIA or IIC. Overall, these mechanoaccumulative mechanisms drive the cell's response to physical perturbation during proper tissue development and disease.
Original language | English (US) |
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Pages (from-to) | 1473-1479 |
Number of pages | 7 |
Journal | Current Biology |
Volume | 26 |
Issue number | 11 |
DOIs | |
State | Published - 2016 |
Funding
This work is supported by NIH grants GM66817 and GM109863 to D.N.R., NIH grant GM086704 to P.A.I. and D.N.R., and a Wellcome Trust Research Career Development Fellowship award (090064/Z/09/Z) to E.R.G. The authors thank Mingjie Wang, Miho Iijima, Takanari Inoue, Joy Yang, Susan Craig, Allan Wells, Fumihiko Nakamura, Arnoud Sonnenberg, William Trimble, Anthony Hyman, and Michael Glotzer for their generosity with reagents. We also thank Huaqing Cai, Allen Chen, and Raihan Kabir for technical assistance.
ASJC Scopus subject areas
- General Biochemistry, Genetics and Molecular Biology
- General Agricultural and Biological Sciences