Regulation of valve interstitial cell homeostasis by mechanical deformation: implications for heart valve disease and surgical repair

Author:

Ayoub Salma1,Lee Chung-Hao2,Driesbaugh Kathryn H.3,Anselmo Wanda3,Hughes Connor T.1,Ferrari Giovanni3,Gorman Robert C.3,Gorman Joseph H.3,Sacks Michael S.1ORCID

Affiliation:

1. Center for Cardiovascular Simulation, Institute for Computational Engineering and Sciences (ICES), Department of Biomedical Engineering, The University of Texas at Austin, Austin, TX 78712, USA

2. School of Aerospace and Mechanical Engineering, The University of Oklahoma, Norman, OK 73019, USA

3. Gorman Cardiovascular Research Group, University of Pennsylvania, Philadelphia, PA 19104, USA

Abstract

Mechanical stress is one of the major aetiological factors underlying soft-tissue remodelling, especially for the mitral valve (MV). It has been hypothesized that altered MV tissue stress states lead to deviations from cellular homeostasis, resulting in subsequent cellular activation and extracellular matrix (ECM) remodelling. However, a quantitative link between alterations in the organ-level in vivo state and in vitro- based mechanobiology studies has yet to be made. We thus developed an integrated experimental–computational approach to elucidate MV tissue and interstitial cell responses to varying tissue strain levels. Comprehensive results at different length scales revealed that normal responses are observed only within a defined range of tissue deformations, whereas deformations outside of this range lead to hypo- and hyper-synthetic responses, evidenced by changes in α-smooth muscle actin, type I collagen, and other ECM and cell adhesion molecule regulation. We identified MV interstitial cell deformation as a key player in leaflet tissue homeostatic regulation and, as such, used it as the metric that makes the critical link between in vitro responses to simulated equivalent in vivo behaviour. Results indicated that cell responses have a delimited range of in vivo deformations that maintain a homeostatic response, suggesting that deviations from this range may lead to deleterious tissue remodelling and failure.

Funder

NHBLI

Publisher

The Royal Society

Subject

Biomedical Engineering,Biochemistry,Biomaterials,Bioengineering,Biophysics,Biotechnology

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