The Fifth Affiliated Hospital of Southern Medical University, Guangzhou, Guangdong, China.
Guangdong Provincial Key Laboratory of Construction and Detection in Tissue Engineering, School of Basic Medical Sciences, Southern Medical University, Guangzhou, Guangdong, China.
Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2022 Jul;14(4):e1787. doi: 10.1002/wnan.1787. Epub 2022 Mar 1.
Cardiac abnormalities, which account for extensive burdens on public health and economy, drive necessary attempts to revolutionize the traditional therapeutic system. Advances in cardiac tissue engineering have expanded a highly efficacious platform to address cardiovascular events, especially cardiac infarction. Current efforts to overcome biocompatible limitations highlight the constructs of a conductive cardiac patch to accelerate the industrial and clinical landscape that is amenable for patient-accurate therapy, regenerative medicine, disease modeling, and drug delivery. With the notion that cardiac tissue synchronically contracts triggered by electrical pulses, the cardiac patches based on conductive materials are developed and treated on the dysfunctional heart. In this review, we systematically summarize distinct conductive materials serving as the most promising alternatives (conductive nanomaterials, conductive polymers, piezoelectric polymers, and ionic electrolytes) to achieve electric signal transmission and engineered cardiac tissues. Existing applications are discussed considering how these patches containing conductive candidates are fabricated into diverse forms with major strategies. Ultimately, we try to define a new concept as a bioelectricity-coupling patch that provides a favorable cardiac micro-environment for cardiac functional activities. Underlying challenges and prospects are presented regarding industrial processing and cardiovascular treatment of conductive patch progress. This article is categorized under: Therapeutic Approaches and Drug Discovery > Nanomedicine for Cardiovascular Disease.
心脏异常对公共卫生和经济造成了巨大负担,这促使人们试图彻底改革传统的治疗体系。心脏组织工程学的进步为解决心血管事件(尤其是心肌梗死)提供了一个高效的平台。目前,人们努力克服生物相容性的限制,突出了构建导电心脏贴片的重要性,以加速适用于个体化治疗、再生医学、疾病建模和药物输送的工业和临床领域的发展。基于心脏组织通过电脉冲同步收缩的概念,开发了基于导电材料的心脏贴片,并用于治疗功能失调的心脏。在这篇综述中,我们系统地总结了不同的导电材料,这些材料是实现电信号传输和工程心脏组织的最有前途的替代品(导电纳米材料、导电聚合物、压电聚合物和离子电解质)。我们讨论了现有的应用,考虑了这些含有导电候选物的贴片如何通过主要策略制成各种形式。最终,我们试图定义一个新概念,即生物电耦合贴片,它为心脏功能活动提供了有利的心脏微环境。本文针对导电贴片在心血管治疗中的应用所面临的挑战和前景进行了探讨。本文属于以下类别:治疗方法和药物发现 > 心血管疾病的纳米医学。