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Isolation of Murine Adipose Tissue-derived Microvascular Fragments as Vascularization Units for Tissue Engineering
Published on: April 30, 2017
Microvascular remodeling strategy for skin rejuvenation through microenvironmental reprogramming and appendage
Jialiang Zhou1, Shengjie Jiang2, Liyun Wang3
1Department of Oral and Cranio-Maxillofacial Surgery, Shanghai Ninth People's Hospital, Shanghai Jiao Tong University School of Medicine, College of Stomatology, Shanghai Jiao Tong University, National Center for Stomatology, National Clinical Research Center for Oral Diseases, Shanghai Key Laboratory of Stomatology; Shanghai Research Institute of Stomatology, Shanghai, 200011, China; Department of Stomatology, Xin Hua Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, 200092, China; Stomatological Hospital of Xiamen Medical College, Xiamen Key Laboratory of Stomatological Disease Diagnosis and Treatment, Xiamen, 361008, China.
None:
Skin photoaging, induced by excessive ultraviolet exposure, leads to microvascular and appendage degeneration, extracellular matrix degradation, and cellular senescence. The limited efficacy of current treatments for photoaging is partly due to underlying microvascular dysfunction. This study introduces a microneedle patch incorporating decellularized adipose-derived matrix (DAM) to enhance microvascular remodeling and mitigate photoaging. In vitro studies demonstrate that DAM enhances the function of photoaged endothelial cells via the VEGFA/PI3K/Akt pathway while simultaneously alleviating senescence in both fibroblasts and keratinocytes through intercellular communication. In a UVB-induced photoaged mouse model, DAM promotes angiogenesis, reduces matrix metalloproteinase expression, and stimulates collagen synthesis, ultimately restoring local homeostasis and reversing aging signs. Notably, DAM treatment not only reverses these signs but also regulates the hair follicle cycle, underscoring its dual impact on appendage regeneration and microvascular repair. In conclusion, the integration of DAM into a microneedle patch provides a clinically translatable and minimally invasive platform for addressing photoaging. These findings not only advance the understanding of photoaging mechanisms but also propose a novel microvascular-focused strategy for skin regeneration. Future research will focus on optimizing patch design and establishing standardized DAM quality control protocols, with potential applications in other age-related disorders.
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