Reversible Shear Stress-Mediated Mechanoregulation of Endothelial Cell Function In Thixotropic Hydrogels Via L-Type Ca 2+  Channel and Focal Adhesion Molecules For Accelerated Vascularization

33 Pages Posted: 19 Mar 2025

See all articles by Zhongtao Li

Zhongtao Li

Qiqihar Medical University

Sumei Li

Southwest Jiaotong University

Rongwei Cui

affiliation not provided to SSRN

Tao Jing

Southwest Jiaotong University

Haodong Peng

affiliation not provided to SSRN

Ran Wang

China National Research Institute of Food and Fermentation Industries

Jie Weng

Southwest Jiaotong University - Key Laboratory of Advanced Technologies of Materials

Chaoming Xie

Southwest Jiaotong University

Feng Lin

affiliation not provided to SSRN

Xue Gou

Southwest Jiaotong University

shuxin Qu

Southwest Jiaotong University

Abstract

Developing functional vascular networks in engineered tissues is crucial for regenerative medicine. Recently, thixotropic hydrogel has emerged as a promising approach due to their 3D-printability and force-responsive dynamics. However, their gel-sol transitions under physiological loading and subsequent mechanoregulation mechanism on vascularization remains inadequately explored. Here, the reversible shear stress induced in thixotropic hydrogels under bionic cyclic stretching (5% strain, and 0.5, 1 or 1.5 Hz) has been demonstrated to significantly accelerate endothelial cell adhesion, migration, and angiogenesis. These dynamic mechanical responses are precisely quantified and monitored through computational simulations and specially designed experimental apparatus. Mechanistic investigations reveals that the mechanically regulated cell behavior is mediated by cell adhesion molecules and calcium signaling pathways, which can be inhibited using Talin bloker (e.g., neomycin) and L-type voltage-gated calcium channel antagonists (e.g., verapamil), respectively. Furthermore, subcutaneous implantation of thixotropic hydrogels in rats results in denser and more rapid vascularization compared to non-thixotropic hydrogels. The reversible shear stress-regulated vascularization strategy is anticipated to offer a novel and efficient approach for constructing functional blood vessels in regenerative medicine.

Keywords: Shear thinning, endothelial cells, dynamic mechanical stimulation, cell adhesion molecules, calcium signaling pathways

Suggested Citation

Li, Zhongtao and Li, Sumei and Cui, Rongwei and Jing, Tao and Peng, Haodong and Wang, Ran and Weng, Jie and Xie, Chaoming and Lin, Feng and Gou, Xue and Qu, shuxin, Reversible Shear Stress-Mediated Mechanoregulation of Endothelial Cell Function In Thixotropic Hydrogels Via L-Type Ca 2+  Channel and Focal Adhesion Molecules For Accelerated Vascularization. Available at SSRN: https://ssrn.com/abstract=5175420 or http://dx.doi.org/10.2139/ssrn.5175420

Zhongtao Li

Qiqihar Medical University ( email )

Qiqihar
China

Sumei Li

Southwest Jiaotong University ( email )

No. 111, Sec. North 1, Er-Huan Rd.
Chengdu
Chengdu, 610031
China

Rongwei Cui

affiliation not provided to SSRN ( email )

Tao Jing

Southwest Jiaotong University ( email )

Haodong Peng

affiliation not provided to SSRN ( email )

Ran Wang

China National Research Institute of Food and Fermentation Industries ( email )

China

Jie Weng

Southwest Jiaotong University - Key Laboratory of Advanced Technologies of Materials ( email )

Chengdu
China

Chaoming Xie

Southwest Jiaotong University ( email )

Feng Lin

affiliation not provided to SSRN ( email )

Xue Gou

Southwest Jiaotong University ( email )

No. 111, Sec. North 1, Er-Huan Rd.
Chengdu
Chengdu, 610031
China

Shuxin Qu (Contact Author)

Southwest Jiaotong University ( email )

Do you have a job opening that you would like to promote on SSRN?

Paper statistics

Downloads
9
Abstract Views
71
PlumX Metrics