Repository logo
 

Cellular mechanosensing of the biophysical microenvironment: A review of mathematical models of biophysical regulation of cell responses.

Accepted version
Peer-reviewed

Type

Article

Change log

Authors

Cheng, Bo 
Lin, Min 
Huang, Guoyou 
Li, Yuhui 
Ji, Baohua 

Abstract

Cells in vivo reside within complex microenvironments composed of both biochemical and biophysical cues. The dynamic feedback between cells and their microenvironments hinges upon biophysical cues that regulate critical cellular behaviors. Understanding this regulation from sensing to reaction to feedback is therefore critical, and a large effort is afoot to identify and mathematically model the fundamental mechanobiological mechanisms underlying this regulation. This review provides a critical perspective on recent progress in mathematical models for the responses of cells to the biophysical cues in their microenvironments, including dynamic strain, osmotic shock, fluid shear stress, mechanical force, matrix rigidity, porosity, and matrix shape. The review highlights key successes and failings of existing models, and discusses future opportunities and challenges in the field.

Description

Keywords

Biomechanics, Cellular mechanosensing, Focal adhesions, Mathematical modeling, Mechanobiology, Signaling pathway

Journal Title

Physics of Life Reviews

Conference Name

Journal ISSN

1571-0645
1873-1457

Volume Title

22-23

Publisher

Elsevier
Sponsorship
This work was supported by the National Natural Science Foundation of China (11372243, 11522219, 11532009, 11402192), the Chinese Ministry of Education through a Changjiang Scholar award to GMG, the National Institutes of Health through grants U01EB016422 and R01HL109505, and the NSF Science and Technology Center for Engineering Mechanobiology, grant CMMI 1548571.