From Short Circuit to Completed Circuit

Conductive Hydrogel Facilitating Oral Wound Healing

Journal Article (2024)
Author(s)

Qiangqiang Zhou (Fudan University)

Hanqing Dai (Fudan University)

Yukun Yan (Fudan University)

Zhiming Qin (Fudan University)

Mengqi Zhou (Fudan University)

Wanlu Zhang (Fudan University)

Kouchi Zhang (TU Delft - Electronic Components, Technology and Materials)

Ruiqian Guo (Fudan University)

X. Wei (Fudan University)

Research Group
Electronic Components, Technology and Materials
Copyright
© 2024 Qiangqiang Zhou, Hanqing Dai, Yukun Yan, Zhiming Qin, Mengqi Zhou, Wanlu Zhang, Kouchi Zhang, Ruiqian Guo, X. Wei
DOI related publication
https://doi.org/10.1002/adhm.202303143
More Info
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Publication Year
2024
Language
English
Copyright
© 2024 Qiangqiang Zhou, Hanqing Dai, Yukun Yan, Zhiming Qin, Mengqi Zhou, Wanlu Zhang, Kouchi Zhang, Ruiqian Guo, X. Wei
Research Group
Electronic Components, Technology and Materials
Issue number
15
Volume number
13
Reuse Rights

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Abstract

The primary challenges posed by oral mucosal diseases are their high incidence and the difficulty in managing symptoms. Inspired by the ability of bioelectricity to activate cells, accelerate metabolism, and enhance immunity, a conductive polyacrylamide/sodium alginate crosslinked hydrogel composite containing reduced graphene oxide (PAA-SA@rGO) is developed. This composite possesses antibacterial, anti-inflammatory, and antioxidant properties, serving as a bridge to turn the “short circuit” of the injured site into a “completed circuit,” thereby prompting fibroblasts in proximity to the wound site to secrete growth factors and expedite tissue regeneration. Simultaneously, the PAA-SA@rGO hydrogel effectively seals wounds to form a barrier, exhibits antibacterial and anti-inflammatory properties, and prevents foreign bacterial invasion. As the electric field of the wound is rebuilt and repaired by the PAA-SA@rGO hydrogel, a 5 × 5 mm2 wound in the full-thickness buccal mucosa of rats can be expeditiously mended within mere 7 days. The theoretical calculations indicate that the PAA-SA@rGO hydrogel can aggregate and express SOX2, PITX1, and PITX2 at the wound site, which has a promoting effect on rapid wound healing. Importantly, this PAA-SA@rGO hydrogel has a fast curative effect and only needs to be applied for the first three days, which significantly improves patient satisfaction during treatment.

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