自愈水凝胶
生物相容性
材料科学
纳米技术
明胶
生物医学工程
纤维素
化学工程
化学
生物化学
医学
工程类
高分子化学
冶金
作者
Junmei Wang,Qian Liu,Jixing Gong,Zhongjun Wan,Jinping Zhou,Chunyu Chang,Donghui Zhang
出处
期刊:Small
[Wiley]
日期:2022-09-11
卷期号:18 (45)
被引量:21
标识
DOI:10.1002/smll.202202235
摘要
Abstract Cardiac microphysiological systems are accurate in vitro platforms that reveal the biological mechanisms underlying cardiopathy, accelerating pharmaceutical research in this field. Current cardiac microphysiological devices and organs‐on‐chips consist of several layers prepared with complex, multi‐step processes. Incorporating inorganic photonic crystals may cause long‐term biocompatibility issues. Herein, micropatterned hydrogels with anisotropic structural colors are prepared by locking shear‐oriented tunicate cellulose nanocrystals (TCNCs) in hydrogel networks through in situ polymerization, allowing the visualization and monitoring of cardiomyocytes. The anisotropic hydrogels are composed of highly ordered TCNCs with bright interference color and micro‐grooved methacrylated gelatin with excellent biocompatibility. The microgroove patterns induce cardiomyocyte alignment and the autonomous beating of cardiomyocytes causes the hydrogels to deform, dynamically shifting the interference color. These micropatterned hydrogels could noninvasively monitor real‐time changes of cardiomyocytes under pharmaceutical treatment and electrical stimulation through wavelength shifts in the transmittance spectra. This system provides a new way to detect the beat rate of cardiac tissue and it may contribute to high throughput develop.
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