Ye Rongan, He Yu, Ni Wei, Zhang Yiqiu, Zhu Ying, Cao Muqing, He Ruida, Yao Min
Department of Plastic and Reconstructive Surgery, Shanghai Ninth People's Hospital, Shanghai Jiao Tong University, School of Medicine, Shanghai, China.
Shanghai Key Laboratory of Reproductive Medicine, Department of Histoembryology, Genetics and Developmental Biology, Shanghai Jiao Tong University School of Medicine, Shanghai, China.
Front Bioeng Biotechnol. 2024 Aug 13;12:1387474. doi: 10.3389/fbioe.2024.1387474. eCollection 2024.
The risk of skin injuries in space is increasing with longer space missions and a growing astronaut population. This highlights the importance of understanding the adverse effects of weightlessness on wound healing. The objective of this research was to examine the therapeutic potential of Low-Level Light Therapy (LLLT) on skin healing processes under simulated microgravity (SMG) conditions and uncover the underlying molecular mechanisms, thus providing innovative solutions and a sound theoretical basis for space skin injuries.
Hindlimb unloading (HU) mice models were used to simulate weightlessness conditions, with or without a complete management of LLLT for 14 days. A systematic testing consisting of HE, Masson and immunohistochemical staining was performed against the standardized mouse tissue specimens. assessment of cellular biological functions under SMG conditions was carried out in the rotation system of culture (RSOC) using HaCaT and NIH3T3 cell-lines.
Under SMG conditions, LLLT significantly reduced skin wound area in HU mice, especially on Days 10 (p < 0.001), accompanied by increased collagen deposition and elevated levels of Ki67 and CD31. Moreover, LLLT showed impressive anti-inflammatory effects represented by the reduced in pro-inflammatory markers including LY6G, F4/80 and CD86, as well as the decreased levels of IL-1β, IL-6 and TNF-α. Conversely, an elevation in the anti-inflammatory marker CD206 was observed. By employing bioinformatics technology, we further found the PI3K/AKT signaling was prominent in the KEGG pathway analysis and CCR2 acted as a hub gene in the interaction network. Therefore, we demonstrated that LLLT could enhance the phosphorylation of PI3K/AKT and reduce CCR2 expression under SMG conditions, while CCR2 knockdown promoted the phosphorylation of PI3K/AKT, suggesting an important role of CCR2/PI3K/AKT signal axis in LLLT-accelerated wound healing under SMG conditions.
LLLT induced activation of the PI3K/AKT signaling pathway through suppression of CCR2 expression, which significantly enhanced skin wound healing under SMG conditions.s.
随着太空任务时间延长和宇航员数量增加,太空皮肤损伤风险不断上升。这凸显了了解失重对伤口愈合不利影响的重要性。本研究的目的是探讨低强度光疗(LLLT)在模拟微重力(SMG)条件下对皮肤愈合过程的治疗潜力,并揭示其潜在分子机制,从而为太空皮肤损伤提供创新解决方案和坚实理论基础。
采用后肢卸载(HU)小鼠模型模拟失重条件,对其进行为期14天的LLLT完整处理或不处理。对标准化小鼠组织标本进行包括苏木精-伊红(HE)、Masson和免疫组织化学染色在内的系统检测。使用HaCaT和NIH3T3细胞系在旋转培养系统(RSOC)中对SMG条件下的细胞生物学功能进行评估。
在SMG条件下,LLLT显著减小了HU小鼠的皮肤伤口面积,尤其是在第10天时(p < 0.001),同时伴有胶原蛋白沉积增加以及Ki67和CD31水平升高。此外,LLLT表现出显著的抗炎作用,表现为促炎标志物如LY6G、F4/80和CD86减少,以及白细胞介素-1β(IL-1β)、白细胞介素-6(IL-6)和肿瘤坏死因子-α(TNF-α)水平降低。相反,抗炎标志物CD206水平升高。通过生物信息学技术,我们进一步发现PI3K/AKT信号在京都基因与基因组百科全书(KEGG)通路分析中显著,且趋化因子受体2(CCR2)在相互作用网络中作为枢纽基因。因此,我们证明LLLT可在SMG条件下增强PI3K/AKT磷酸化并降低CCR2表达,而CCR2基因敲低促进了PI3K/AKT磷酸化,表明CCR2/PI3K/AKT信号轴在LLLT加速SMG条件下伤口愈合中起重要作用。
LLLT通过抑制CCR2表达诱导PI3K/AKT信号通路激活,显著增强了SMG条件下的皮肤伤口愈合。