BSP通过调节SCEL的表达水平促进皮肤创面愈合。

IF 2 4区 生物学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Cytotechnology Pub Date : 2025-04-01 Epub Date: 2025-01-25 DOI:10.1007/s10616-025-00712-y
Yan Wu, Chun-Yu Li
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引用次数: 0

摘要

烧伤是复杂的、危及生命的事件,涉及复杂的细胞和分子过程,包括血管生成,这对有效的伤口愈合至关重要。白芨多糖(Bletilla striata多糖,BSP)是一种从白芨中提取的生物活性化合物,具有抗炎和伤口愈合的特性。然而,它对血管生成调节的影响,特别是通过突触蛋白2样(SCEL)基因,仍然知之甚少。BSP对暴露于脂多糖(LPS)的HMEC-1细胞的影响通过细胞活力、迁移、凋亡和血管生成实验来评估。通过慢病毒转染操纵SCEL表达,探索SCEL的作用。采用动物模型评价BSP在烧伤创面愈合中的治疗潜力,通过组织学分析、免疫组化(IHC)和分子分析评估组织修复和血管生成。BSP通过促进HMEC-1细胞存活、减少细胞凋亡、促进细胞迁移和血管生成,显著减轻lps诱导的HMEC-1细胞损伤。BSP处理下调了SCEL表达,逆转了lps诱导的细胞损伤。在过表达SCEL的细胞和小鼠中,BSP对伤口愈合的有益作用减弱,表明SCEL在血管生成中的调节作用。在体内,BSP加速烧伤创面愈合,改善组织组织,促进血管生成,CD31表达增加。SCEL过表达削弱了这些作用,强调了SCEL下调在bsp介导的愈合中的重要作用。BSP通过下调SCEL调节血管生成,促进细胞存活、迁移和血管化,从而促进烧伤创面愈合。这些发现表明BSP是一种很有前景的烧伤创面治疗药物,对SCEL分子机制的进一步研究为新的创面护理策略提供了潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
BSP promotes skin wound healing by regulating the expression level of SCEL.

Burn injuries are complex, life-threatening events involving intricate cellular and molecular processes, including angiogenesis, which is vital for effective wound healing. Bletilla striata polysaccharide (BSP), a bioactive compound from Bletilla striata, exhibits anti-inflammatory and wound-healing properties. However, its impact on angiogenesis modulation, particularly through the synaptopodin-2-like (SCEL) gene, remains poorly understood. The effects of BSP on HMEC-1 cells exposed to lipopolysaccharide (LPS) were assessed using cell viability, migration, apoptosis, and angiogenesis assays. SCEL's role was explored through lentiviral transfection to manipulate SCEL expression. Animal models were employed to evaluate BSP's therapeutic potential in burn wound healing, with histological analysis, immunohistochemistry (IHC), and molecular assays to assess tissue repair and angiogenesis. BSP significantly alleviated LPS-induced damage in HMEC-1 cells by promoting cell survival, reducing apoptosis, and enhancing migration and angiogenesis. BSP treatment downregulated SCEL expression, reversing LPS-induced cellular damage. In SCEL-overexpressing cells and mice, BSP's beneficial effects on wound healing were attenuated, indicating SCEL's regulatory role in angiogenesis. In vivo, BSP accelerated burn wound closure, improved tissue organization, and enhanced angiogenesis, as evidenced by increased CD31 expression. SCEL overexpression impaired these effects, highlighting the essential role of SCEL downregulation in BSP-mediated healing. BSP promotes burn wound healing by modulating angiogenesis via SCEL downregulation, facilitating cell survival, migration, and vascularization. These findings position BSP as a promising therapeutic agent for burn wound treatment, with further investigation into SCEL's molecular mechanisms offering potential for novel wound care strategies.

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来源期刊
Cytotechnology
Cytotechnology 生物-生物工程与应用微生物
CiteScore
4.10
自引率
0.00%
发文量
49
审稿时长
6-12 weeks
期刊介绍: The scope of the Journal includes: 1. The derivation, genetic modification and characterization of cell lines, genetic and phenotypic regulation, control of cellular metabolism, cell physiology and biochemistry related to cell function, performance and expression of cell products. 2. Cell culture techniques, substrates, environmental requirements and optimization, cloning, hybridization and molecular biology, including genomic and proteomic tools. 3. Cell culture systems, processes, reactors, scale-up, and industrial production. Descriptions of the design or construction of equipment, media or quality control procedures, that are ancillary to cellular research. 4. The application of animal/human cells in research in the field of stem cell research including maintenance of stemness, differentiation, genetics, and senescence, cancer research, research in immunology, as well as applications in tissue engineering and gene therapy. 5. The use of cell cultures as a substrate for bioassays, biomedical applications and in particular as a replacement for animal models.
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