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February 2026 in “ACS Nano” This study developed the TLMG hydrogel, a seamless in situ biointerface platform, demonstrating robust adhesion, high conductivity, and therapeutic effects for intelligent wound management in complex animal models and human tests, indicating its promise for integrated bioelectronic medicine.
February 2026 in “Advanced Sensor Research” In this review, researchers examined advanced sensing technologies and bioelectronic interfaces that could improve understanding of the skin–brain axis, highlighting challenges and strategies for integrating these platforms into models for studying skin and neural interactions.
August 2026 in “npj Flexible Electronics” This review outlines the potential of soft bioelectronics in wound care, emphasizing their ability to monitor and manage wounds through integrated smart systems and identifying challenges for future advancements in the field.
June 2026 in “bioRxiv (Cold Spring Harbor Laboratory)” In this study, researchers used embryonic chicken skin as a model to show that perturbing calcium signaling can induce feather bud formation in areas that typically do not form them, highlighting developmental bioelectricity as a crucial yet underexplored layer in tissue patterning.
December 2025 in “eScience” This study presents a new wireless bioelectronic system powered by ambient Wi-Fi signals that enhances wound healing by providing electrical stimulation and real-time monitoring, offering a promising solution for at-home treatment and regenerative therapy.