Looking both ways: Electroactive biomaterials with bidirectional implications for dynamic cell-material crosstalk.

IF 2.9 Q2 BIOPHYSICS
Biophysics reviews Pub Date : 2024-05-08 eCollection Date: 2024-06-01 DOI:10.1063/5.0181222
Kathryn Kwangja Lee, Natalie Celt, Herdeline Ann M Ardoña
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引用次数: 0

Abstract

Cells exist in natural, dynamic microenvironmental niches that facilitate biological responses to external physicochemical cues such as mechanical and electrical stimuli. For excitable cells, exogenous electrical cues are of interest due to their ability to stimulate or regulate cellular behavior via cascade signaling involving ion channels, gap junctions, and integrin receptors across the membrane. In recent years, conductive biomaterials have been demonstrated to influence or record these electrosensitive biological processes whereby the primary design criterion is to achieve seamless cell-material integration. As such, currently available bioelectronic materials are predominantly engineered toward achieving high-performing devices while maintaining the ability to recapitulate the local excitable cell/tissue microenvironment. However, such reports rarely address the dynamic signal coupling or exchange that occurs at the biotic-abiotic interface, as well as the distinction between the ionic transport involved in natural biological process and the electronic (or mixed ionic/electronic) conduction commonly responsible for bioelectronic systems. In this review, we highlight current literature reports that offer platforms capable of bidirectional signal exchange at the biotic-abiotic interface with excitable cell types, along with the design criteria for such biomaterials. Furthermore, insights on current materials not yet explored for biointerfacing or bioelectronics that have potential for bidirectional applications are also provided. Finally, we offer perspectives aimed at bringing attention to the coupling of the signals delivered by synthetic material to natural biological conduction mechanisms, areas of improvement regarding characterizing biotic-abiotic crosstalk, as well as the dynamic nature of this exchange, to be taken into consideration for material/device design consideration for next-generation bioelectronic systems.

双向观察:电活性生物材料对细胞与材料之间的动态串扰具有双向影响。
细胞存在于自然、动态的微环境中,这些微环境有利于生物对外部物理化学信号(如机械和电刺激)做出反应。对于可兴奋细胞而言,外源电刺激线索能够通过涉及离子通道、间隙连接和跨膜整合素受体的级联信号刺激或调节细胞行为,因而备受关注。近年来,导电生物材料已被证明能够影响或记录这些电敏感生物过程,其主要设计标准是实现细胞与材料的无缝集成。因此,目前可用的生物电子材料主要是为了实现高性能设备,同时保持再现局部可兴奋细胞/组织微环境的能力。然而,此类报道很少涉及生物-生物界面上发生的动态信号耦合或交换,以及自然生物过程中涉及的离子传输与生物电子系统通常负责的电子(或离子/电子混合)传导之间的区别。在这篇综述中,我们重点介绍了目前的文献报道,这些报道提供了能够在生物-生物界面与可兴奋细胞类型进行双向信号交换的平台,以及此类生物材料的设计标准。此外,我们还对目前尚未用于生物界面或生物电子学的、具有双向应用潜力的材料进行了深入探讨。最后,我们提出了一些观点,旨在使人们关注合成材料传递的信号与自然生物传导机制的耦合、生物-生物串扰特性的改进领域以及这种交换的动态性质,以便在下一代生物电子系统的材料/设备设计中加以考虑。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
3.60
自引率
0.00%
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0
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