Literature DB >> 23114589

Biomechanical regulation of mesenchymal cell function.

Daniel J Tschumperlin1, Fei Liu, Andrew M Tager.   

Abstract

PURPOSE OF REVIEW: Cells of mesenchymal origin are strongly influenced by their biomechanical environment. They also help to shape tissue architecture and reciprocally influence tissue mechanical environments through their capacity to deposit, remodel, and resorb extracellular matrix and to promote tissue vascularization. Although mechanical regulation of cell function and tissue remodeling has long been appreciated in other contexts, the purpose of this review is to highlight the increasing appreciation of its importance in fibrosis and hypertrophic scarring. RECENT
FINDINGS: Experiments in both animal and cellular model systems have demonstrated pivotal roles for the biomechanical environment in regulating myofibroblast differentiation and contraction, endothelial barrier function and angiogenesis, and mesenchymal stem cell fate decisions. Through these studies, a better understanding of the molecular mechanisms transducing the biomechanical environment is emerging, with prominent and interacting roles recently identified for key network components including transforming growth factor-β/SMAD, focal adhesion kinase, MRTFs, Wnt/β-catenin and YAP/TAZ signaling pathways.
SUMMARY: Progress in understanding biomechanical regulation of mesenchymal cell function is leading to novel approaches for improving clinical outcomes in fibrotic diseases and wound healing. These approaches include interventions aimed at modifying the tissue biomechanical environment, and efforts to target mesenchymal cell activation by, and reciprocal interactions with, the mechanical environment.

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Year:  2013        PMID: 23114589      PMCID: PMC5056746          DOI: 10.1097/BOR.0b013e32835b13cd

Source DB:  PubMed          Journal:  Curr Opin Rheumatol        ISSN: 1040-8711            Impact factor:   5.006


  72 in total

1.  Fibroblast polarization is a matrix-rigidity-dependent process controlled by focal adhesion mechanosensing.

Authors:  Masha Prager-Khoutorsky; Alexandra Lichtenstein; Ramaswamy Krishnan; Kavitha Rajendran; Avi Mayo; Zvi Kam; Benjamin Geiger; Alexander D Bershadsky
Journal:  Nat Cell Biol       Date:  2011-11-13       Impact factor: 28.824

2.  Stiffening hydrogels to probe short- and long-term cellular responses to dynamic mechanics.

Authors:  Murat Guvendiren; Jason A Burdick
Journal:  Nat Commun       Date:  2012-04-24       Impact factor: 14.919

3.  Substrate stiffening promotes endothelial monolayer disruption through enhanced physical forces.

Authors:  Ramaswamy Krishnan; Darinka D Klumpers; Chan Y Park; Kavitha Rajendran; Xavier Trepat; Jan van Bezu; Victor W M van Hinsbergh; Christopher V Carman; Joseph D Brain; Jeffrey J Fredberg; James P Butler; Geerten P van Nieuw Amerongen
Journal:  Am J Physiol Cell Physiol       Date:  2010-09-22       Impact factor: 4.249

4.  Modulating F-actin organization induces organ growth by affecting the Hippo pathway.

Authors:  Leticia Sansores-Garcia; Wouter Bossuyt; Ken-Ichi Wada; Shigenobu Yonemura; Chunyao Tao; Hiroshi Sasaki; Georg Halder
Journal:  EMBO J       Date:  2011-05-10       Impact factor: 11.598

5.  Signal-regulated activation of serum response factor is mediated by changes in actin dynamics.

Authors:  A Sotiropoulos; D Gineitis; J Copeland; R Treisman
Journal:  Cell       Date:  1999-07-23       Impact factor: 41.582

6.  Matrix stiffness-induced myofibroblast differentiation is mediated by intrinsic mechanotransduction.

Authors:  Xiangwei Huang; Naiheng Yang; Vincent F Fiore; Thomas H Barker; Yi Sun; Stephan W Morris; Qiang Ding; Victor J Thannickal; Yong Zhou
Journal:  Am J Respir Cell Mol Biol       Date:  2012-03-29       Impact factor: 6.914

Review 7.  Stretchy proteins on stretchy substrates: the important elements of integrin-mediated rigidity sensing.

Authors:  Simon W Moore; Pere Roca-Cusachs; Michael P Sheetz
Journal:  Dev Cell       Date:  2010-08-17       Impact factor: 12.270

8.  Myocardin-related transcription factor-a controls myofibroblast activation and fibrosis in response to myocardial infarction.

Authors:  Eric M Small; Jeffrey E Thatcher; Lillian B Sutherland; Hideyuki Kinoshita; Robert D Gerard; James A Richardson; J Michael Dimaio; Hesham Sadek; Koichiro Kuwahara; Eric N Olson
Journal:  Circ Res       Date:  2010-06-17       Impact factor: 17.367

9.  Matrix rigidity regulates a switch between TGF-β1-induced apoptosis and epithelial-mesenchymal transition.

Authors:  Jennifer L Leight; Michele A Wozniak; Sophia Chen; Michelle L Lynch; Christopher S Chen
Journal:  Mol Biol Cell       Date:  2012-01-11       Impact factor: 4.138

10.  Analysis of the myosin-II-responsive focal adhesion proteome reveals a role for β-Pix in negative regulation of focal adhesion maturation.

Authors:  Jean-Cheng Kuo; Xuemei Han; Cheng-Te Hsiao; John R Yates; Clare M Waterman
Journal:  Nat Cell Biol       Date:  2011-03-20       Impact factor: 28.824

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  30 in total

Review 1.  The Rho kinases: critical mediators of multiple profibrotic processes and rational targets for new therapies for pulmonary fibrosis.

Authors:  Rachel S Knipe; Andrew M Tager; James K Liao
Journal:  Pharmacol Rev       Date:  2015       Impact factor: 25.468

2.  Why Stress Matters: An Introduction.

Authors:  Daniel J Tschumperlin
Journal:  Methods Mol Biol       Date:  2021

Review 3.  Fibrosis--a lethal component of systemic sclerosis.

Authors:  Yuen Yee Ho; David Lagares; Andrew M Tager; Mohit Kapoor
Journal:  Nat Rev Rheumatol       Date:  2014-04-22       Impact factor: 20.543

4.  Tissue mechanics and fibrosis.

Authors:  Rebecca G Wells
Journal:  Biochim Biophys Acta       Date:  2013-02-20

Review 5.  Lung extracellular matrix and fibroblast function.

Authors:  Eric S White
Journal:  Ann Am Thorac Soc       Date:  2015-03

Review 6.  Matrix biomechanics and dynamics in pulmonary fibrosis.

Authors:  Andrew J Haak; Qi Tan; Daniel J Tschumperlin
Journal:  Matrix Biol       Date:  2017-12-21       Impact factor: 11.583

7.  Aging and anatomical variations in lung tissue stiffness.

Authors:  Delphine Sicard; Andrew J Haak; Kyoung Moo Choi; Alexandria R Craig; Laura E Fredenburgh; Daniel J Tschumperlin
Journal:  Am J Physiol Lung Cell Mol Physiol       Date:  2018-02-22       Impact factor: 5.464

Review 8.  New therapeutic targets in idiopathic pulmonary fibrosis. Aiming to rein in runaway wound-healing responses.

Authors:  Neil Ahluwalia; Barry S Shea; Andrew M Tager
Journal:  Am J Respir Crit Care Med       Date:  2014-10-15       Impact factor: 21.405

Review 9.  Targeting Senescent Cells in Fibrosis: Pathology, Paradox, and Practical Considerations.

Authors:  Marissa J Schafer; Andrew J Haak; Daniel J Tschumperlin; Nathan K LeBrasseur
Journal:  Curr Rheumatol Rep       Date:  2018-01-26       Impact factor: 4.592

10.  Bone mesenchymal stem cells differentiate into myofibroblasts in the tumor microenvironment.

Authors:  Jing Zhang; Dingqi Sun; Qiang Fu; Qingwei Cao; Hui Zhang; Keqin Zhang
Journal:  Oncol Lett       Date:  2016-05-30       Impact factor: 2.967

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