Comparative analysis of the nitrogen monoxide content and optical-morphometric characteristics of erythrocyte-containing blood components during storage
- Authors: Akulich N.V1, Zinchuk V.V2
- 
							Affiliations: 
							- National Antidoping Laboratory
- Grodno State Medical University
 
- Issue: Vol 68, No 1 (2023)
- Pages: 79-86
- Section: Articles
- URL: https://cardiosomatics.ru/0006-3029/article/view/673616
- DOI: https://doi.org/10.31857/S0006302923010088
- EDN: https://elibrary.ru/NZUGLR
- ID: 673616
Cite item
Abstract
Flow cytometry was used to analyze the content of intracellular nitrogen monoxide in erythrocyte-containing blood components during blood storage with hemopreservative for 4 weeks. It was found that storing of blood is accompanied by increased levels of intracellular nitrogen monoxide in erythrocytes and thus by a change in optical and morphometric parameters of red blood cells. In the early stages of storage, erythrocytes were represented by discocytes, and during long storage erythrocytes became more spherical (spherocytes) as the percentage of microcytes that accumulated nitrogen monoxide increased and their intracellular hemoglobin levels were decreased.
			                Keywords
About the authors
N. V Akulich
National Antidoping Laboratory
														Email: akulichn@gmail.com
				                					                																			                												                								Minsk Region, Belarus						
V. V Zinchuk
Grodno State Medical UniversityGrodno, Belarus
References
- K. Thangaraju, S. Neerukonda, U. Katneni, et al., Int. J. Mol. Sci., 22, 153 (2021).
- V.V. Zinchuk, D. D. Zhadko, Nitric Oxide 1 (84) 45 (2019).
- А. И. Костин, О. А. Майорова, А. В. Ложкин и др., Трансфузиология, 12 (2), 12 (2011).
- В. В. Зинчук и Е. С. Билецкая, Биофизика, 65, 915 (2020).
- C. Donadee, N. J. Raat, T. Kanias, et al., Circulation
- (4), 465 (2011). M. García-Roa, M. Del Carmen Vicente-Ayuso, M. Bobes, et al., Blood Transfus., 15 (3), 22 (2017).
- R. Stapley, B. Y. Owusu, and A. Brandon, Biochem. J., 446 (3), 499 (2012).
- F. J. Willekens, J. M. Werre, Y. A. Groenen-Döpp, et al., Br. J. Haematol., 141 (4), 549 (2008).
- N. Li, J. Sul, and P. Haydon, Neuroscitnce, 23, 10302 (2003).
- C. Briggs, R. Rogers, B. Tompson, et al., Sysmex J.Int., 11 (2), 63 (2001).
- J. T. Alexander, A. M. El-Ali, J. L. Newman, et al., Transfusion, 53 (11), 2619 (2013).
- B. Sandhagen, C. F. Hogman, C-H de Verdier, et al., Vox Sang, 55, 139 (1988).
- C. Liu, X. Liu, J. Janes, et al., Redox Biol., 2, 211 (2014).
- В. П. Реутов, Успехи биол. наук, 35, 189 (1995).
- S. Suriany, I. Xub H. Liu, et al., Free Radic. Biol. Med., 171, 143 (2021).
- A. H. Tayer, N. Amirizadeh, M. Ahmadinejad, et al., Transfus. Med. Hemother., 46 (4), 224 (2019).
- C. Donadee, N. J. Raat, T. Kanias, et al., Circulation, 124, 465 (2011).
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