The effect of mesenchymal stem cells administration on DNA repair gene expressions in critically ill COVID-19 patients: prospective controlled study.

IF 1.1 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY Nucleosides, Nucleotides & Nucleic Acids Pub Date : 2024-01-01 Epub Date: 2024-03-09 DOI:10.1080/15257770.2024.2327478
Nilgün Işıksaçan, Gökhan Adaş, Pınar Kasapoğlu, Zafer Çukurova, Rabia Yılmaz, Kadriye Kurt Yaşar, Duygu Irmak Koyuncu, Fatima Ceren Tuncel, Gülçin Şahingöz Erdal, Asuman Gedikbaşı, Sacide Pehlivan, Erdal Karaoz
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Abstract

When the studies are evaluated, immunomodulatory effect of MSCs, administration in critically ill patients, obstacle situations in use and side effects, pulmonary fibrosis prevention, which stem cells and their products, regeneration effect, administration route, and dosage are listed under the main heading like. The effect of MSC administration on DNA repair genes in COVID-19 infection is unknown. Our aim is to determine the effect of mesenchymal stem cells (MSCs) therapy applied in critically ill patients with coronavirus infection on DNA repair pathways and genes associated with those pathways. Patients (n = 30) divided into two equal groups. Group-1: Patients in a critically ill condition, Group-2: Patients in critically ill condition and transplanted MSCs. The mechanism was investigated in eleven genes of five different pathways; Base excision repair: PARP1, Nucleotide excision repair (NER): RAD23B and ERCC1, Homologous recombinational repair (HR): ATM, RAD51, RAD52 and WRN, Mismatch repair (MMR): MLH1, MSH2, and MSH6, Direct reversal repair pathway: MGMT. It was found that MSCs application had a significant effect on 6 genes located in 3 different DNA damage response pathways. These are NER pathway genes; RAD23 and ERCC1, HR pathway genes; ATM and RAD51, MMR pathway genes; MSH2 and MSH6 (p < 0.05). Two main points were shown. First, as a result of cellular damage in critical patients with COVID-19, DNA damage occurs and then DNA repair pathways and genes are activated in reaction to this situation. Second, administration of MSC to patients with COVID-19 infection plays a positive role by increasing the expression of DNA repair genes located in DNA damage pathways.

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间充质干细胞对 COVID-19 重症患者 DNA 修复基因表达的影响:前瞻性对照研究。
在评估研究时,间充质干细胞的免疫调节作用、危重病人的用药、使用中的障碍情况和副作用、肺纤维化的预防、哪些干细胞及其产品、再生效果、给药途径和剂量等都列在 "如 "的大标题下。在COVID-19感染中,服用间充质干细胞对DNA修复基因的影响尚不清楚。我们的目的是确定间充质干细胞(MSCs)治疗冠状病毒感染的重症患者对DNA修复途径和与这些途径相关的基因的影响。患者(n = 30)分为两组。第一组:病情危重的患者;第二组:病情危重并移植了间充质干细胞的患者。研究了五种不同通路中 11 个基因的作用机制:碱基切除修复、PARP1、核苷酸修复、MSCs 修复:碱基切除修复:PARP1、核苷酸切除修复(NER)、RAD23B 和 ERCC1:RAD23B和ERCC1,同源重组修复(HR):同源重组修复(HR):ATM、RAD51、RAD52 和 WRN,错配修复(MMR):直接逆转修复途径:直接逆转修复途径:MGMT。研究发现,应用间充质干细胞对 3 种不同 DNA 损伤应答途径中的 6 个基因有显著影响。这些基因分别是 NER 途径基因、RAD23 和 ERCC1、HR 途径基因、ATM 和 RAD51、MMR 途径基因、MSH2 和 MSH6(p
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来源期刊
Nucleosides, Nucleotides & Nucleic Acids
Nucleosides, Nucleotides & Nucleic Acids 生物-生化与分子生物学
CiteScore
2.60
自引率
7.70%
发文量
91
审稿时长
6 months
期刊介绍: Nucleosides, Nucleotides & Nucleic Acids publishes research articles, short notices, and concise, critical reviews of related topics that focus on the chemistry and biology of nucleosides, nucleotides, and nucleic acids. Complete with experimental details, this all-inclusive journal emphasizes the synthesis, biological activities, new and improved synthetic methods, and significant observations related to new compounds.
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