The Bionic Interface: Considering the Material Mediated Electrical Stimulation of Stem Cells
Zhang K., De Maria D., Jebakumar M., Collins J., Fox KE., Sherrell PC.
Narrative Review on Face & Skin, published in Adv Mater (2026) — summary generated from the PubMed abstract.
Evidence from laboratory and animal studies provides groundwork for understanding mechanisms and potential before human studies continue.
- Level A · Stronger Clinical Evidence
- Level B · Emerging clinical evidence with positive signals
- Level C · Early human research exploring benefits
- Level D · Scientific groundwork from lab and animal studies
- Emerging · Emerging topic under active research
This page is generated from the PubMed record. The Thai description is an automated summary of bibliographic fields and the abstract, not a full translation, and is not medical advice.
- Study type
- Narrative Review
- Journal
- Adv Mater (2026)
- Reported sample size
- —
- Source database
- Europe PMC
- PMID
- 41020390
- PMCID
- PMC12783963
- DOI
- 10.1002/adma.202512399
- Citations
- 2
Abstract (original English)
Electromaterials, in the field of tissue engineering, are designed to use an electrical signal to induce specific biological responses in cells and tissues. Using materials to control stem cell fate is a substantial field of research within tissue engineering, where stem cell differentiation is controlled through careful design of the material properties (roughness, topography, stiffness, and surface chemistry); the introduction of electromaterials into this field has added an extra dimensionality along with the ability to provide dynamic, temporally controlled cues through electrical stimulation. While significant research has focused on the cell-material interface for electrical stimulation platforms, the underlying reasons why certain materials outperform others remain poorly understood. Most existing studies emphasise mechanical stiffness and chemical composition, often overlooking the role of electronic charge transport. In this perspective, the focus is shifted to the charge transport properties of commonly used electrically conductive materials-such as metal-based electrode, carbon-based composites, and conjugated polymers-and discusses how these mechanisms modulate cellular responses. It is proposed that a deeper understanding of how materials inject, store, and redistribute charge at the interface can offer a new paradigm in designing electrically active scaffolds for
What this study does not prove
- • This study does not prove SVF is an approved treatment or a replacement for standard care.
- • This is a narrative review: it collects no new patient data and does not systematically appraise evidence quality.
Evidence level
Evidence from laboratory and animal studies provides groundwork for understanding mechanisms and potential before human studies continue.
How we grade evidenceBrowse all related research
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