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Understanding the Behaviour of Human Cell Types Under Simulated Microgravity Conditions: The Case of Erythrocytes

Overview
Journal Int J Mol Sci
Publisher MDPI
Date 2022 Jun 24
PMID 35743319
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Abstract

Erythrocytes are highly specialized cells in human body, and their main function is to ensure the gas exchanges, O and CO, within the body. The exposure to microgravity environment leads to several health risks such as those affecting red blood cells. In this work, we investigated the changes that occur in the structure and function of red blood cells under simulated microgravity, compared to terrestrial conditions, at different time points using biochemical and biophysical techniques. Erythrocytes exposed to simulated microgravity showed morphological changes, a constant increase in reactive oxygen species (ROS), a significant reduction in total antioxidant capacity (TAC), a remarkable and constant decrease in total glutathione (GSH) concentration, and an augmentation in malondialdehyde (MDA) at increasing times. Moreover, experiments were performed to evaluate the lipid profile of erythrocyte membranes which showed an upregulation in the following membrane phosphocholines (PC): PC16:0_16:0, PC 33:5, PC18:2_18:2, PC 15:1_20:4 and SM d42:1. Thus, remarkable changes in erythrocyte cytoskeletal architecture and membrane stiffness due to oxidative damage have been found under microgravity conditions, in addition to factors that contribute to the plasticity of the red blood cells (RBCs) including shape, size, cell viscosity and membrane rigidity. This study represents our first investigation into the effects of microgravity on erythrocytes and will be followed by other experiments towards understanding the behaviour of different human cell types in microgravity.

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References
1.
Armstrong D, Browne R . The analysis of free radicals, lipid peroxides, antioxidant enzymes and compounds related to oxidative stress as applied to the clinical chemistry laboratory. Adv Exp Med Biol. 1994; 366:43-58. DOI: 10.1007/978-1-4615-1833-4_4. View

2.
Buys A, Van Rooy M, Soma P, van Papendorp D, Lipinski B, Pretorius E . Changes in red blood cell membrane structure in type 2 diabetes: a scanning electron and atomic force microscopy study. Cardiovasc Diabetol. 2013; 12:25. PMC: 3599682. DOI: 10.1186/1475-2840-12-25. View

3.
Yagi K . Simple assay for the level of total lipid peroxides in serum or plasma. Methods Mol Biol. 1999; 108:101-6. DOI: 10.1385/0-89603-472-0:101. View

4.
Unsworth B, Lelkes P . Growing tissues in microgravity. Nat Med. 1998; 4(8):901-7. DOI: 10.1038/nm0898-901. View

5.
Rizzo A, Corsetto P, Montorfano G, Milani S, Zava S, Tavella S . Effects of long-term space flight on erythrocytes and oxidative stress of rodents. PLoS One. 2012; 7(3):e32361. PMC: 3296700. DOI: 10.1371/journal.pone.0032361. View