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Regulated extravascular microenvironment viareversible thermosensitive hydrogel for inhibiting calcium influx and vasospasm

Authors :
Zhao, Binfan
Zhuang, Yaping
Liu, Zhimo
Mao, Jiayi
Qian, Shutong
Zhao, Qiuyu
Lu, Bolun
Mao, Xiyuan
Zhang, Liucheng
Zhang, Yuguang
Cui, Wenguo
Sun, Xiaoming
Source :
Bioactive Materials; March 2023, Vol. 21 Issue: 1 p422-435, 14p
Publication Year :
2023

Abstract

Arterial vasospasm after microsurgery can cause severe obstruction of blood flow manifested as low tissue temperature, leading to tissue necrosis. The timely discovery and synchronized treatment become pivotal. In this study, a reversible, intelligent, responsive thermosensitive hydrogel system is constructed employing both the gel–sol transition and the sol–gel transition. The “reversible thermosensitive (RTS)” hydrogel loaded with verapamil hydrochloride is designed to dynamically and continuously regulate the extravascular microenvironment by inhibiting extracellular calcium influx. After accurate implantation and following in situ gelation, the RTS hydrogel reverses to the sol state causing massive drug release to inhibit vasospasm when the tissue temperature drops to the predetermined transition temperature. Subsequent restoration of the blood supply alleviates further tissue injury. Before the temperature drops, the RTS hydrogel maintains the gel state as a sustained-release reservoir to prevent vasospasm. The inhibition of calcium influx and vasospasm in vitroand in vivois demonstrated using vascular smooth muscle cells, mice mesenteric arterial rings, and vascular ultrasonic Doppler detection. Subsequent animal experiments demonstrate that RTS hydrogel can promote tissue survival and alleviate tissue injury responding to temperature change. Therefore, this RTS hydrogel holds therapeutic potential for diseases requiring timely detection of temperature change.

Details

Language :
English
ISSN :
2452199X
Volume :
21
Issue :
1
Database :
Supplemental Index
Journal :
Bioactive Materials
Publication Type :
Periodical
Accession number :
ejs61542308
Full Text :
https://doi.org/10.1016/j.bioactmat.2022.08.024