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Please use this identifier to cite or link to this item: http://scholars.ntou.edu.tw/handle/123456789/26803
Title: Plasma-engineered chitosan couples red-light bioenergetics to diabetic wound regeneration through programmable microenvironments
Authors: Rethi, Lekshmi
Chau, Hoa Duc
Febriani, Erlina
Chen, Yan-Ting
Tung, Szu-Yu
Jheng, Pei-Ru
Tseng, Yu-Wen
Li, Rou
Tsai, Min-Lang 
Chang, Chun-Chi
Pham, Van Khiet
Nguyen, Hieu Trung
Chuang, Andrew E. -Y.
Keywords: Chitosan;Cold atmospheric plasma;Microalgae;Diabetic wound;Bioenergetics;Mitophagy
Issue Date: 2026
Publisher: ELSEVIER SCI LTD
Journal Volume: 388
Start page/Pages: 14
Source: CARBOHYDRATE POLYMERS
Abstract: 
Diabetic wounds remain trapped in a non-healing loop driven by oxidative stress, impaired bioenergetics, and persistent inflammation. Here, we report a cold atmospheric plasma (CAP)-engineered chitosan-microalgae (CS-CHL) photobioactive dressing that converts a carbohydrate matrix into a programmable photosynthetic interface for wearable 660-nm activation. CAP remodeled the CS microenvironment in a duration-dependent manner, as verified by FTIR/XRD/NMR, and yielded a distinct optimum at 30 s with the most favorable polymer reorganization and coupling to CHL. This just-right" window tuned photochemical branching under red light showing the strongest oxygen-sensitive response as reflected by the lowest O-2 quenching index (similar to 66.3% indicating the greatest probe quenching and thus higher O-2 availability) while simultaneously enhancing reductive bioenergetic outputs including hydrogen production (similar to 117.6%) and MPP-Production (similar to 116.4%) accompanied by the strongest light-responsive electrochemical signal. In an STZ-induced diabetic full-thickness wound model CS-CHL + 660 nm accelerated macroscopic wound closure versus wound-only and CS controls while systemic hematological indices remained comparable across groups. Mechanistic tissue profiling further supported coordinated inflammation suppression angiogenic/regenerative recovery ROS reduction mitochondrial functional restoration and activation of mitophagy/autophagy-associated pathways. Collectively CAP-tuned carbohydrate microenvironments provide a powerful route to program microalgal photobioenergetics and enable light-assisted diabetic wound repair."
URI: http://scholars.ntou.edu.tw/handle/123456789/26803
ISSN: 0144-8617
DOI: 10.1016/j.carbpol.2026.125521
Appears in Collections:食品科學系

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