通过沉默 Marveld3 上调 PRRX2,作为皮肤细胞对抗辐射诱导的铁蜕变的一种保护机制。

IF 6 2区 医学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Molecular Medicine Pub Date : 2024-10-21 DOI:10.1186/s10020-024-00958-w
Jinming Cao, Mengyao Wu, Wei Mo, Min Zhao, Liming Gu, Xi Wang, Bin Zhang, Jianping Cao
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引用次数: 0

摘要

背景:辐射诱发的皮肤损伤(RISI)是接受放射治疗的患者和暴露于核事故的个人的一种重要并发症,其特点是伤口愈合过程相对于其他病因造成的损伤要长。目前的预防和管理方法仍然不足。因此,研究针对疾病进展特点的有效干预策略具有重要的现实意义:方法:使用小干扰 RNA(siRNA)和过表达质粒来调节含马弗尔结构域 3(Marveld3)和成对相关同源染色体 2(PRRX2)的表达。蛋白和 mRNA 水平分别通过 Western 印迹和实时 PCR 进行评估。细胞内丙二醛(MDA)水平是脂质过氧化的终极产物,按照制造商提供的 MDA 检测试剂盒进行测定。同样,细胞内亚铁(Fe2+)和活性氧(ROS)的含量也是通过各自的检测试剂盒测定的。细胞内的脂质过氧化状态通过 BODIPY 染色法进行评估。对大鼠照射后不同时间点采集的皮肤组织进行免疫组化,以确定 PRRX2 的表达。采用 H 评分法评估阳性染色细胞的百分比和染色强度。OE 生物技术公司进行了 RNA 测序、基因本体(GO)分析和京都基因组百科全书(KEGG)通路富集分析:本研究结果表明,抑制 Marveld3 能有效抑制辐照皮肤细胞的脂质过氧化水平,同时降低细胞内的 Fe2+ 含量。此外,Marveld3 的沉默还能有效减弱铁氧化激动剂对细胞活力的影响,从而导致辐照后的 HaCaT 和 WS1 细胞中分别有 66 和 178 个基因上调,以及 188 和 31 个基因下调。在差异表达的基因中,参与铁突变过程的 PRRX2 出现了统计学意义上的显著上调。而 PRRX2 表达的上调可能会减轻辐射诱导的皮肤细胞脂质过氧化反应,从而作为一种潜在的应激反应机制来抵消辐射效应:本研究阐明了 Marveld3 在辐射诱导的皮肤细胞铁氧化中的作用。抑制 Marveld3 会导致 PRRX2 上调,进而降低 Fe2+ 和 ROS 水平,抑制脂质过氧化。这些作用共同缓解了铁变态反应的发生。
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Upregulation of PRRX2 by silencing Marveld3 as a protective mechanism against radiation-induced ferroptosis in skin cells.

Background: Radiation-induced skin injury (RISI) represents a significant complication in patients receiving radiotherapy and individuals exposed to nuclear accidents, characterized by a protracted wound-healing process relative to injuries from other etiologies. Current preventive and management approaches remain inadequate. Consequently, investigating efficacious intervention strategies that target the disease's progression characteristics holds significant practical importance.

Methods: Small interfering RNA (siRNA) and overexpression plasmid were used to modulate the expression of Marvel domain containing 3 (Marveld3) and paired related homeobox 2 (PRRX2). Protein and mRNA levels were estimated by Western Blot and real-time PCR, respectively. Intracellular levels of Malondialdehyde (MDA), a terminal product of lipid peroxidation, were measured following the manufacturer's protocol for MDA assay kit. Similarly, intracellular levels of ferrous iron (Fe2+) and reactive oxygen species (ROS) were determined using their respective assay kits. Lipid peroxidation status within the cells was evaluated via BODIPY staining. Immunohistochemistry was conducted to ascertain the expression of PRRX2 in skin tissues collected at various time points following irradiation of rats. The H-score method was used to evaluate the percentage of positively stained cells and staining intensity. RNA sequencing, Gene Ontology (GO) analysis, and Kyoto Encyclopedia of Genes and Genomes (KEGG) pathway enrichment analysis were conducted by OE Biotech Company.

Results: In this study, our findings indicated that Marveld3 suppression could effectively inhibit lipid peroxidation levels in irradiated skin cells, concomitantly reducing intracellular Fe2+ content. Additionally, the silencing of Marveld3 effectively abrogated the impact of a ferroptosis agonist on cellular viability, resulting in the upregulation of 66 and 178 genes, as well as the downregulation of 188 and 31 genes in irradiated HaCaT and WS1 cells, respectively. Among the differentially expressed genes, the PRRX2 which was found to be involved in the process of ferroptosis, exhibited statistically significant upregulation. And the upregulation of PRRX2 expression may attenuate radiation-induced lipid peroxidation in skin cells, thereby functioning as a potential stress-responsive mechanism to counteract radiation effects.

Conclusions: This study elucidates the role of Marveld3 in radiation-induced ferroptosis in skin cells. Inhibition of Marveld3 led to the upregulation of PRRX2, which subsequently resulted in a reduction of Fe2+ and ROS levels, as well as the suppression of lipid peroxidation. These effects collectively mitigated the occurrence of ferroptosis.

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来源期刊
Molecular Medicine
Molecular Medicine 医学-生化与分子生物学
CiteScore
8.60
自引率
0.00%
发文量
137
审稿时长
1 months
期刊介绍: Molecular Medicine is an open access journal that focuses on publishing recent findings related to disease pathogenesis at the molecular or physiological level. These insights can potentially contribute to the development of specific tools for disease diagnosis, treatment, or prevention. The journal considers manuscripts that present material pertinent to the genetic, molecular, or cellular underpinnings of critical physiological or disease processes. Submissions to Molecular Medicine are expected to elucidate the broader implications of the research findings for human disease and medicine in a manner that is accessible to a wide audience.
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