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用于可视化监测心肌细胞的具有高度有序纤维素纳米晶体的微图案水凝胶

Micropatterned Hydrogels with Highly Ordered Cellulose Nanocrystals for Visually Monitoring Cardiomyocytes.

作者信息

Wang Junmei, Liu Qian, Gong Jixing, Wan Zhongjun, Zhou Jinping, Chang Chunyu, Zhang Donghui

机构信息

College of Chemistry and Molecular Sciences, Hubei Engineering Center of Natural Polymer-based Medical Materials, Wuhan University, Wuhan, 430072, China.

Hubei Province Key Laboratory of Biotechnology of Chinese Traditional Medicine, National & Local Joint Engineering Research Center of High-throughput Drug Screening Technology, State Key Laboratory of Biocatalysis and Enzyme Engineering, School of Life Science, Hubei University, Wuhan, 430062, China.

出版信息

Small. 2022 Nov;18(45):e2202235. doi: 10.1002/smll.202202235. Epub 2022 Sep 11.

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.

摘要

心脏微生理系统是精确的体外平台,可揭示心脏病背后的生物学机制,加速该领域的药物研究。当前的心脏微生理装置和芯片器官由通过复杂的多步骤工艺制备的几层组成。掺入无机光子晶体可能会导致长期的生物相容性问题。在此,通过原位聚合将剪切取向的被囊动物纤维素纳米晶体(TCNCs)锁定在水凝胶网络中,制备出具有各向异性结构颜色的微图案水凝胶,从而实现对心肌细胞的可视化和监测。各向异性水凝胶由具有明亮干涉色的高度有序的TCNCs和具有优异生物相容性的微槽甲基丙烯酸化明胶组成。微槽图案诱导心肌细胞排列,心肌细胞的自主跳动使水凝胶变形,动态改变干涉色。这些微图案水凝胶可以通过透射光谱中的波长变化,在药物治疗和电刺激下无创地监测心肌细胞的实时变化。该系统为检测心脏组织的搏动率提供了一种新方法,可能有助于高通量开发。

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