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电场通过PI3K/AKT/蜗牛通路下调E-钙黏蛋白,从而逆转角质形成细胞单层的分化。

Electric fields reverse the differentiation of keratinocyte monolayer by down-regulating E-cadherin through PI3K/AKT/Snail pathway.

作者信息

Wu Chao, Chen Xu, Huang Wanqi, Yang Jinrui, Zhang Ze, Liu Jie, Liu Luojia, Chen Ying, Jiang Xupin, Zhang Jiaping

机构信息

Department of Plastic Surgery, State Key Laboratory of Trauma and Chemical Poisoning, Southwest Hospital, Third Military Medical University (Army Medical University), Chongqing, 400038, China.

Burns and Plastic Surgery Centre, General Hospital of Xinjiang Military Command, Xinjiang, 830000, China.

出版信息

Heliyon. 2024 Jun 14;10(12):e33069. doi: 10.1016/j.heliyon.2024.e33069. eCollection 2024 Jun 30.

Abstract

Re-epithelialization is an important step in skin wound healing, referring to the migration, proliferation, and differentiation of keratinocytes around the wound. During this process, the edges of the wound begin to form new epithelial cells, which migrate from the periphery of the wound towards the center, gradually covering the entire wound area. These newly formed epithelial cells proliferate and differentiate, ultimately forming a protective layer over the exposed dermal surface. Wound endogenous electric fields (EFs) are known as the dominant factor to facilitate the epidermal migration to wound center. However, the precise mechanisms by which EFs promote epidermal migration remains elusive. Here, we found that in a model of cultured keratinocyte monolayer in vitro, EFs application reversed the differentiation of cells, as indicated by the reduction of the early differentiation markers K1 and K10. Genetic manipulation confirmed that EFs reversed keratinocyte differentiation through down-regulating the E-cadherin-mediated adhesion. By RNA-sequencing analysis, we screened out Snail as the transcription suppressor of E-cadherin. Snail knockdown abolished the down-regulation of E-cadherin and the reversal of differentiation induced by EFs. KEGG analysis identified PI3K/AKT signaling for Snail induction under EFs. Inhibition of PI3K by LY294002 diminished the EFs-induced AKT activation and Snail augmentation, largely restoring the level of E-cadherin reduced by EFs. Finally, in model of full-thickness skin wounds in pigs, we found that weakening of the wound endogenous EFs by the direction-reversed exogenous EFs resulted in an up-regulation of E-cadherin and earlier differentiation in newly formed epidermis in vivo. Our research suggests that electric fields (EFs) decrease E-cadherin expression by suppressing the PI3K/AKT/Snail pathway, thereby reversing the differentiation of keratinocytes. This discovery provides us with new insights into the role of electric fields in wound healing. EFs intervene in intracellular signaling pathways, inhibiting the expression of E-cadherin, which results in a lower differentiation state of keratinocytes. In this state, keratinocytes exhibit increased migratory capacity, facilitating the migration of epidermal cells and wound reepithelialization.

摘要

重新上皮化是皮肤伤口愈合的重要步骤,指伤口周围角质形成细胞的迁移、增殖和分化。在此过程中,伤口边缘开始形成新的上皮细胞,这些细胞从伤口周边向中心迁移,逐渐覆盖整个伤口区域。这些新形成的上皮细胞增殖并分化,最终在暴露的真皮表面形成一层保护层。伤口内源性电场(EFs)是促进表皮向伤口中心迁移的主要因素。然而,EFs促进表皮迁移的确切机制仍不清楚。在这里,我们发现,在体外培养的角质形成细胞单层模型中,施加EFs可逆转细胞分化,早期分化标志物K1和K10的减少表明了这一点。基因操作证实,EFs通过下调E-钙黏蛋白介导的黏附作用来逆转角质形成细胞分化。通过RNA测序分析,我们筛选出Snail作为E-钙黏蛋白的转录抑制因子。敲低Snail可消除EFs诱导的E-钙黏蛋白下调和分化逆转。KEGG分析确定PI3K/AKT信号通路参与EFs作用下Snail的诱导。用LY294002抑制PI3K可减弱EFs诱导的AKT激活和Snail增加,很大程度上恢复了EFs降低的E-钙黏蛋白水平。最后,在猪的全层皮肤伤口模型中,我们发现反向的外源性EFs减弱伤口内源性EFs会导致体内新形成表皮中E-钙黏蛋白上调和更早分化。我们的研究表明,电场(EFs)通过抑制PI3K/AKT/Snail通路降低E-钙黏蛋白表达,从而逆转角质形成细胞分化。这一发现为电场在伤口愈合中的作用提供了新的见解。EFs干预细胞内信号通路,抑制E-钙黏蛋白表达,导致角质形成细胞处于较低分化状态。在这种状态下,角质形成细胞表现出增强的迁移能力,促进表皮细胞迁移和伤口重新上皮化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7298/11252959/d532293bd70a/gr1.jpg

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