» Articles » PMID: 36382685

The Role of Extracellular Histones in COVID-19

Overview
Journal J Intern Med
Specialty General Medicine
Date 2022 Nov 16
PMID 36382685
Authors
Affiliations
Soon will be listed here.
Abstract

The severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) had spread from China and, within 2 months, became a global pandemic. The infection from this disease can cause a diversity of symptoms ranging from asymptomatic to severe acute respiratory distress syndrome with an increased risk of vascular hyperpermeability, pulmonary inflammation, extensive lung damage, and thrombosis. One of the host defense systems against coronavirus disease 2019 (COVID-19) is the formation of neutrophil extracellular traps (NETs). Numerous studies on this disease have revealed the presence of elevated levels of NET components, such as cell-free DNA, extracellular histones, neutrophil elastase, and myeloperoxidase, in plasma, serum, and tracheal aspirates of severe COVID-19 patients. Extracellular histones, a major component of NETs, are clinically very relevant as they represent promising biomarkers and drug targets, given that several studies have identified histones as key mediators in the onset and progression of various diseases, including COVID-19. However, the role of extracellular histones in COVID-19 per se remains relatively underexplored. Histones are nuclear proteins that can be released into the extracellular space via apoptosis, necrosis, or NET formation and are then regarded as cytotoxic damage-associated molecular patterns that have the potential to damage tissues and impair organ function. This review will highlight the mechanisms of extracellular histone-mediated cytotoxicity and focus on the role that histones play in COVID-19. Thereby, this paper facilitates a bench-to-bedside view of extracellular histone-mediated cytotoxicity, its role in COVID-19, and histones as potential drug targets and biomarkers for future theranostics in the clinical treatment of COVID-19 patients.

Citing Articles

Structural bioinformatics for rational drug design.

Mozaffari S, Moen A, Ng C, Nicolaes G, Wichapong K Res Pract Thromb Haemost. 2025; 9(1):102691.

PMID: 40027444 PMC: 11869865. DOI: 10.1016/j.rpth.2025.102691.


Viral sepsis: diagnosis, clinical features, pathogenesis, and clinical considerations.

Xu J, Zhang W, Fu J, Fang X, Gao C, Li C Mil Med Res. 2024; 11(1):78.

PMID: 39676169 PMC: 11648306. DOI: 10.1186/s40779-024-00581-0.


Neutrophil extracellular traps are associated with airways inflammation and increased severity of lung disease in cystic fibrosis.

Law S, Hardisty G, Gillan J, Robinson N, Davidson D, Whyte M ERJ Open Res. 2024; 10(6).

PMID: 39624379 PMC: 11610045. DOI: 10.1183/23120541.00312-2024.


Association of corticosteroid therapy with reduced acute kidney injury and lower NET markers in severe COVID-19: an observational study.

Bulow Anderberg S, Huckriede J, Hultstrom M, Larsson A, de Vries F, Lipcsey M Intensive Care Med Exp. 2024; 12(1):85.

PMID: 39340756 PMC: 11438749. DOI: 10.1186/s40635-024-00670-3.


Histon activities in the extracellular environment: regulation and prothrombotic implications.

Keulen G, Huckriede J, Wichapong K, Nicolaes G Curr Opin Hematol. 2024; 31(5):230-237.

PMID: 39087372 PMC: 11296287. DOI: 10.1097/MOH.0000000000000827.


References
1.
Talbert P, Henikoff S . Histone variants at a glance. J Cell Sci. 2021; 134(6). PMC: 8015243. DOI: 10.1242/jcs.244749. View

2.
Alaniz C . An update on activated protein C (xigris) in the management of sepsis. P T. 2010; 35(9):504-29. PMC: 2957744. View

3.
Castanheira F, Kubes P . Neutrophils and NETs in modulating acute and chronic inflammation. Blood. 2019; 133(20):2178-2185. DOI: 10.1182/blood-2018-11-844530. View

4.
Kee J, Thudium S, Renner D, Glastad K, Palozola K, Zhang Z . SARS-CoV-2 disrupts host epigenetic regulation via histone mimicry. Nature. 2022; 610(7931):381-388. PMC: 9533993. DOI: 10.1038/s41586-022-05282-z. View

5.
Goggs R, Jeffery U, LeVine D, Li R . Neutrophil-Extracellular Traps, Cell-Free DNA, and Immunothrombosis in Companion Animals: A Review. Vet Pathol. 2019; 57(1):6-23. DOI: 10.1177/0300985819861721. View