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用于在圆形机械刺激和导电性协同作用下评估心肌细胞以增强细胞间通讯的纳米槽弹性体隔膜阵列

Nanogrooved Elastomeric Diaphragm Arrays for Assessment of Cardiomyocytes under Synergistic Effects of Circular Mechanical Stimuli and Electrical Conductivity to Enhance Intercellular Communication.

作者信息

Siddique Abdullah-Bin, Williams Keith A, Swami Nathan S

机构信息

Electrical and Computer Engineering, University of Virginia, Charlottesville, Virginia 22904, United States.

Chemistry, University of Virginia, Charlottesville, Virginia 22904, United States.

出版信息

ACS Biomater Sci Eng. 2025 Jan 13;11(1):672-681. doi: 10.1021/acsbiomaterials.4c01298. Epub 2024 Dec 16.

Abstract

Cardiovascular diseases remain the leading cause of mortality, necessitating advancements in cardiac tissue engineering platforms for improved disease modeling, drug screening, and regenerative therapies. The chief challenge to recapitulating the beating behavior of cardiomyocytes is creation of the circular stress profile experienced by hollow organs in the natural heart due to filling pressure and integrated strategies for intercellular communication to promote cell-to-cell connections. We present a platform featuring addressable arrays of nanogrooved polydimethylsiloxane (PDMS) diaphragms for cell alignment and circular mechanical stimulation, with embedded silver nanowires (AgNWs) for electrical cues, so that cardiomyocyte functionality can be assessed under these synergistic influences. Central to our innovation is a two-layer PDMS diaphragm design that electrically isolates the liquid metal (EGaIn) strain sensor in the bottom layer to enable detection and control of mechanical stimulation from conductive portions of embedded AgNWs in the top layer that supports cardiomyocyte culture and communication. In this manner, through localized detection and control of the circular mechanical stimulation, the essential role of multiaxial stretching on cardiomyocyte function is elucidated based on their contractility, sarcomere length, and connexin-43 expression. This platform can potentially transform cardiac tissue engineering, drug screening, and precision medicine approaches.

摘要

心血管疾病仍然是主要的死亡原因,因此需要推进心脏组织工程平台,以改善疾病建模、药物筛选和再生疗法。模拟心肌细胞跳动行为的主要挑战在于,要营造出天然心脏中空器官因充盈压力而经历的环形应力分布,以及制定促进细胞间连接的细胞间通信综合策略。我们展示了一个平台,其具有用于细胞排列和环形机械刺激的纳米沟槽聚二甲基硅氧烷(PDMS)隔膜的可寻址阵列,并嵌入银纳米线(AgNWs)以提供电信号,从而能够在这些协同影响下评估心肌细胞功能。我们创新的核心是双层PDMS隔膜设计,该设计将底层的液态金属(EGaIn)应变传感器进行电隔离,以便能够检测和控制来自顶层中支持心肌细胞培养和通信的嵌入式AgNWs导电部分的机械刺激。通过这种方式,通过对环形机械刺激的局部检测和控制,基于心肌细胞的收缩性、肌节长度和连接蛋白43的表达,阐明了多轴拉伸对心肌细胞功能的重要作用。该平台有可能改变心脏组织工程、药物筛选和精准医学方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8540/11733923/eacb5b563cb5/ab4c01298_0001.jpg

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