Abstract

The inherent complexities of excitable cardiac, nervous, and skeletal muscle tissues pose great challenges in constructing artificial counterparts that closely resemble their natural bioelectrical, structural, and mechanical properties. Recent advances have increasingly revealed the beneficial impact of bioelectrical microenvironments on cellular behaviors, tissue regeneration, and therapeutic efficacy for excitable tissues. This review aims to unveil the mechanisms by which electrical microenvironments enhance the regeneration and functionality of excitable cells and tissues, considering both endogenous electrical cues from electroactive biomaterials and exogenous electrical stimuli from external electronic systems. We explore the synergistic effects of these electrical microenvironments, combined with structural and mechanical guidance, on the regeneration of excitable tissues using tissue engineering scaffolds. Additionally, the emergence of micro/nanoscale bioelectronics has significantly broadened this field, facilitating intimate interactions between implantable bioelectronics and excitable tissues across cellular, tissue, and organ levels. These interactions enable precise data acquisition and localized modulation of cell and tissue functionalities through intricately designed electronic components according to physiological needs. The integration of tissue engineering and bioelectronics promises optimal outcomes, highlighting a growing trend in developing living tissue construct-bioelectronic hybrids for restoring and monitoring damaged excitable tissues. Furthermore, we envision critical challenges in engineering the next-generation hybrids, focusing on integrated fabrication strategies, the development of ionic conductive biomaterials, and their convergence with biosensors.

Details

Title
Enhancing regeneration and functionality of excitable tissues via integrating bioelectronics and bioengineered constructs
Author
Meng, Zijie 1 ; Gu, Bingsong 2 ; Yao, Cong 2 ; Li, Jiaxin 2 ; Yu, Kun 2 ; Ding, Yi 2 ; He, Pei 2 ; Jiang, Nan 3 ; Li, Dichen 2 ; He, Jiankang 2   VIAFID ORCID Logo 

 Frontier Institute of Science and Technology , Xi’an Jiaotong University, Xi’an 710049, People’s Republic of China; State Key Laboratory for Manufacturing Systems Engineering, Xi’an Jiaotong University , Xi’an 710049, People’s Republic of China; National Medical Products Administration (NMPA) Key Laboratory for Research and Evaluation of Additive Manufacturing Medical Devices, Xi’an Jiaotong University , Xi’an 710049, People’s Republic of China; State Industry-Education Integration Center for Medical Innovations, Xi’an Jiaotong University , Xi’an 710049, People’s Republic of China 
 State Key Laboratory for Manufacturing Systems Engineering, Xi’an Jiaotong University , Xi’an 710049, People’s Republic of China; National Medical Products Administration (NMPA) Key Laboratory for Research and Evaluation of Additive Manufacturing Medical Devices, Xi’an Jiaotong University , Xi’an 710049, People’s Republic of China; State Industry-Education Integration Center for Medical Innovations, Xi’an Jiaotong University , Xi’an 710049, People’s Republic of China 
 Department of Surgical Oncology, Shaanxi Provincial People’s Hospital, Xi’an Jiaotong University , Xi’an, Shaanxi 710068, People’s Republic of China 
First page
022004
Publication year
2025
Publication date
Apr 2025
Publisher
IOP Publishing
e-ISSN
26317990
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
3134065075
Copyright
© 2024 The Author(s). Published by IOP Publishing Ltd on behalf of the IMMT. This work is published under https://creativecommons.org/licenses/by/4.0/ (the “License”). Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License.