Electrical Signals at the Subcellular Scale: How Electroactive Materials Regulate Stem Cell Fate

X Xinhui Liu L Laijun Song (Institute For Advanced Interdisciplinary Research (iAIR) School of Chemistry and Chemical Engineering University of Jinan Jinan P. R. China) J Jie Wang (State Key Laboratory of Molecular Oncology, Beijing Key Laboratory, CAMS Key Laboratory of Translational Research on Lung Cancer, Department of Medical Oncology Cancer Hospital, Chinese Academy of Medical Sciences Beijing China) C Chunhui Sun J Jingang Wang (Institute For Advanced Interdisciplinary Research (iAIR) School of Chemistry and Chemical Engineering University of Jinan Jinan P. R. China) S Shuping Wang N Na Ren (The Key Laboratory of Power Semiconductor Materials and Device of Zhejiang Province, and Institute of Advanced Semiconductors, ZJU-Hangzhou Global Scientific and Technological Innovation Center 2 , Zhejiang, Hangzhou 311215,) H Hong Liu

Abstract

ABSTRACT Electroactive materials have emerged as a pioneering frontier at the convergence of regenerative medicine and biomaterials science. Unlike conventional biochemical approaches, which often lack spatiotemporal precision, electroactive materials such as conductive polymers and piezoelectric nanostructures can mimic the native electrical microenvironment of tissues. By directly modulating subcellular electrical signals, including organelle membrane potential and ion dynamics (e.g., in mitochondria and endoplasmic reticulum), these materials present a paradigm shift in controlling stem cell fate. This review begins by outlining the classification of electroactive biomaterials and their mechanisms of generating electrical signals under external stimuli, highlighting their dynamic interactions with stem cells. It subsequently explores how material‐mediated electrical cues precisely modulate subcellular architecture and function, detailing key processes such as calcium oscillations regulated by membrane potential in endoplasmic reticulum and potential‐dependent regulation of mitochondrial redox homeostasis. This article further systematically evaluates the role of electroactive materials in guiding stem cell differentiation and reprogramming, while surveying their emerging applications in neural, bone, and cardiac tissue regeneration. Finally, it presents current challenges such as precise organelle targeting and long‐term electrical safety and suggests future directions, offering a theoretical and technological framework for developing electrically driven regenerative therapies.

Article Details

Volume / Issue Vol. 38, Issue 47
Published August 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (8)

X

Xinhui Liu

L

Laijun Song

Institute For Advanced Interdisciplinary Research (iAIR) School of Chemistry and Chemical Engineering University of Jinan Jinan P. R. China

J

Jie Wang

State Key Laboratory of Molecular Oncology, Beijing Key Laboratory, CAMS Key Laboratory of Translational Research on Lung Cancer, Department of Medical Oncology Cancer Hospital, Chinese Academy of Medical Sciences Beijing China

C

Chunhui Sun

J

Jingang Wang

Institute For Advanced Interdisciplinary Research (iAIR) School of Chemistry and Chemical Engineering University of Jinan Jinan P. R. China

S

Shuping Wang

N

Na Ren

The Key Laboratory of Power Semiconductor Materials and Device of Zhejiang Province, and Institute of Advanced Semiconductors, ZJU-Hangzhou Global Scientific and Technological Innovation Center 2 , Zhejiang, Hangzhou 311215,

H

Hong Liu