Drug‐Loaded Passive Cooling Hydrogels for Synergistic Thermal and Anti‐Inflammatory Regulation of Skin Wounds

Chronic inflammation and inflammation-associated local microenvironmental imbalance are critical barriers to effective wound healing, while conventional dressings remain functionally limited. Here, we developed a drug-loaded passive cooling nanocomposite hydrogel that can simultaneously regulate the physical temperature and biochemical wound microenvironment. The hydrogel is constructed from a poly(vinyl alcohol)-sorbitol network incorporating sulfated cellulose nanocrystals, silica nanoparticles, and salidroside, a potent anti-inflammatory phytochemical, achieving both exceptional passive cooling with a temperature drop of 6.2°C compared to non-covered control under sunlight and the sustained release of salidroside. In vitro, the hydrogel exhibits time-dependent antibacterial efficacy over 97% bacterial inhibition and effectively suppresses inflammation. In a murine full-thickness wound model, the hydrogel promoted local cooling and accelerated wound closure, achieving near-complete healing by day 11, earlier than the phosphate-buffered saline control. Histological analyses confirm attenuated inflammation and enhanced tissue remodeling, as evidenced by suppressed TNF-α expression and CD68 macrophage infiltration, increased α-SMA myofibroblasts, and organized collagen deposition. This work introduces a cooling-and-curing strategy, where material enables physical cooling and localized drug delivery to operate synergistically to disrupt the inflammatory cycle, offering a transformative platform for intelligent wound management.

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Publication Details

Journal
Small
Published
2026-09-15
DOI
https://doi.org/10.1002/smll.75552
Primary Topic
Wound Healing and Treatments
Type
article
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article

Drug‐Loaded Passive Cooling Hydrogels for Synergistic Thermal and Anti‐Inflammatory Regulation of Skin Wounds

Jin Wang, Shu Chen, Qingchen Shen, Z Zhang et al.
Small
Wound Healing and Treatments
article

Drug‐Loaded Passive Cooling Hydrogels for Synergistic Thermal and Anti‐Inflammatory Regulation of Skin Wounds

Jin Wang, Shu Chen, Qingchen Shen, Z Zhang, Li Ding, Kai Feng, Haixin Wang, Sheng Chen, Jing Huang, Yuyue Zhong, Huangzhipeng Wu
article en

Abstract

Chronic inflammation and inflammation-associated local microenvironmental imbalance are critical barriers to effective wound healing, while conventional dressings remain functionally limited. Here, we developed a drug-loaded passive cooling nanocomposite hydrogel that can simultaneously regulate the physical temperature and biochemical wound microenvironment. The hydrogel is constructed from a poly(vinyl alcohol)-sorbitol network incorporating sulfated cellulose nanocrystals, silica nanoparticles, and salidroside, a potent anti-inflammatory phytochemical, achieving both exceptional passive cooling with a temperature drop of 6.2°C compared to non-covered control under sunlight and the sustained release of salidroside. In vitro, the hydrogel exhibits time-dependent antibacterial efficacy over 97% bacterial inhibition and effectively suppresses inflammation. In a murine full-thickness wound model, the hydrogel promoted local cooling and accelerated wound closure, achieving near-complete healing by day 11, earlier than the phosphate-buffered saline control. Histological analyses confirm attenuated inflammation and enhanced tissue remodeling, as evidenced by suppressed TNF-α expression and CD68 macrophage infiltration, increased α-SMA myofibroblasts, and organized collagen deposition. This work introduces a cooling-and-curing strategy, where material enables physical cooling and localized drug delivery to operate synergistically to disrupt the inflammatory cycle, offering a transformative platform for intelligent wound management.

Small
Hong Kong Polytechnic University (HK), University of California, San Francisco (US), Shanghai Jiao Tong University (CN), First Affiliated Hospital of Xiamen University (CN), Ministry of Education (SA), Ningbo Institute of Industrial Technology (CN), UCSF Helen Diller Family Comprehensive Cancer Center (US), McGill University (CA), Southeast University (CN)
Good health and well-being
Openalex Percentile: Top 14%
Wound Healing and Treatments
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