4.6 Article

DNA Repair Mechanisms are Activated in Circulating Lymphocytes of Hospitalized Covid-19 Patients

期刊

JOURNAL OF INFLAMMATION RESEARCH
卷 15, 期 -, 页码 6629-6644

出版社

DOVE MEDICAL PRESS LTD
DOI: 10.2147/JIR.S379331

关键词

Covid-19; oxidative stress; DNA damage; DNA repair; base excision repair; double strand break repair

资金

  1. Research Council of Norway [2021071]
  2. South-Eastern Norway Regional Health Authority
  3. Vivaldi Invest A/S
  4. [312780]

向作者/读者索取更多资源

This study aimed to investigate DNA damage and repair in Covid-19 patients. The results showed that patients had comparable levels of DNA damage to healthy controls, but levels of DNA repair proteins were significantly increased, indicating enhanced DNA repair during acute infection. Gene expression analysis also revealed the involvement of DNA repair genes in respiratory failure. Furthermore, the regulation of DNA repair pathway was more significant during Covid-19 compared to other viral or bacterial infections.
Purpose: Reactive oxygen species (ROS) are an important part of the inflammatory response during infection but can also promote DNA damage. Due to the sustained inflammation in severe Covid-19, we hypothesized that hospitalized Covid-19 patients would be characterized by increased levels of oxidative DNA damage and dysregulation of the DNA repair machinery. Patients and Methods: Levels of the oxidative DNA lesion 8-oxoG and levels of base excision repair (BER) proteins were measured in peripheral blood mononuclear cells (PBMC) from patients (8-oxoG, n = 22; BER, n = 17) and healthy controls (n = 10) (Cohort 1). Gene expression related to DNA repair was investigated in two independent cohorts of hospitalized Covid-19 patients (Cohort 1; 15 patents and 5 controls, Cohort 2; 15 patients and 6 controls), and by publicly available datasets. Results: Patients and healthy controls showed comparable amounts of oxidative DNA damage as assessed by 8-oxoG while levels of several BER proteins were increased in Covid-19 patients, indicating enhanced DNA repair in acute Covid-19 disease. Furthermore, gene expression analysis demonstrated regulation of genes involved in BER and double strand break repair (DSBR) in PBMC of Covid-19 patients and expression level of several DSBR genes correlated with the degree of respiratory failure. Finally, by reanalyzing publicly available data, we found that the pathway Hallmark DNA repair was significantly more regulated in circulating immune cells during Covid-19 compared to influenza virus infection, bacterial pneumonia or acute respiratory infection due to seasonal coronavirus. Conclusion: Although beneficial by protecting against DNA damage, long-term activation of the DNA repair machinery could also contribute to persistent inflammation, potentially through mechanisms such as the induction of cellular senescence. However, further studies that also include measurements of additional markers of DNA damage are required to determine the role and precise molecular mechanisms for DNA repair in SARS-CoV-2 infection.

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