Parameters of oxidative, nitrasive and anti-oxidative status in men with erectile dys-function due to combat trauma

Keywords: trauma; erectile dysfunction; MDA content; glutathione; NO-synthase; arginase

Abstract The development of oxidative and nitrative stress and the processes of free radical oxidation are associated with many pathological processes. Damage of any origin leads to the activation of free radical processes not only in the place of damage, but also in the whole organism. The aim of the study is to assess the state of lipid peroxidation, content of GSH and GSSG and the activity of NO-synthase and arginase in lymphocytes and peripheral blood serum in men with erectile dysfunction due to combat trauma. The research was conducted on peripheral blood lymphocytes of men injured as a result of combat operations (shrapnel and bullet wounds) in the Russian-Ukrainian war, and who were treated at the Military Medical Clinical Center of the Western Region (Lviv, Ukraine). The research group of men with combat injuries was divided into two age groups: men aged 20–39 years and men aged 40–53 years. The MDA content in the blood serum of patients of both age groups was 1.35 times higher than in the control group. In peripheral blood lymphocytes, the MDA content in patients of the young age group was 1.27, and in patients of the middle age group in 1.39 times higher than in the control group. Simultaneously, no significant changes in the concentration of oxidized glutathione in blood serum and blood lymphocytes were found between men with erectile dysfunction due to combat trauma and healthy men. GSH content in blood serum in patients of both age groups was significantly lower than in the control group. The arginase/NOS ratio in blood serum was 9.75 times lower in the young age group and in 20.45 times lower in the middle age group compared to healthy men. It was established that in the blood serum and blood lymphocytes of men with erectile dysfunction due to combat trauma, processes of lipid peroxidation were intensified and the GSH level was reduced. The GSH/GSSG ratio was reduced only in blood serum. It was found that the oxidative stress is associated with development of nitrative stress. The arginase/NOS ratio was shifted towards increased NOS activity. Activation of iNOS was accompanied by significant inhibition of cNOS. Further study of biochemical mechanisms is important to understand the triggers of erectile dysfunction due to combat trauma.

References

Adeoye, O., Olawumi, J., Opeyemi, A., & Christiania, O. (2018). Review on the role of glutathione on oxidative stress and infertility. JBRA Assisted Reproduction, 22(1), 61–66.
Agarwal, A., Henkel, R., Sharma, R., Tadros, N. N., & Sabanegh, E. (2018). Deter-mination of seminal oxidation-reduction potential (ORP) as an easy and cost-effective clinical marker of male infertility. Andrologia, 50(3), e12914.
Akimov, O. Y., & Kostenko, V. O. (2016). Functioning of nitric oxide cycle in gastric mucosa of rats under excessive combined intake of sodium nitrate and fluoride. Ukrainian Biochemical Journal, 88(6), 70–75.
Atli, A., Bulut, M., Bez, Y., Kaplan, İ., Özdemir, P. G., Uysal, C., Selçuk, H., & Sir, A. (2016). Altered lipid peroxidation markers are related to post-traumatic stress disorder (PTSD) and not trauma itself in earthquake survivors. European Archives of Psychiatry and Clinical Neuroscience, 266(4), 329–336.
Averill-Bates, D. A. (2023). The antioxidant glutathione. Vitamins and Hormones, 121, 109–141.
Ayala, A., Muñoz, M. F., & Argüelles, S. (2014). Lipid peroxidation: Production, metabolism, and signaling mechanisms of malondialdehyde and 4-hydroxy-2-nonenal. Oxidative Medicine and Cellular Longevity, 2014, 360438.
Ayaz, A., Agarwal, A., Sharma, R., Arafa, M., Elbardisi, H., & Cui, Z. (2015). Impact of precise modulation of reactive oxygen species levels on spermatozoa proteins in infertile men. Clinical Proteomics, 12(1), 4.
Bryan, N. S., Bian, K., & Murad, F. (2009). Discovery of the nitric oxide signaling pathway and targets for drug development. Frontiers in Bioscience-Landmark, 14(1), 1–18.
Cacciatore, I., Cornacchia, C., Pinnen, F., Mollica, A., & Di Stefano, A. (2010). Prodrug approach for increasing cellular glutathione levels. Molecules, 15(3), 1242–1264.
Chaudhary, P., Janmeda, P., Docea, A. O., Yeskaliyeva, B., Abdull Razis, A. F., Modu, B., Calina, D., & Sharifi-Rad, J. (2023), Oxidative stress, free radicals and antioxidants: Potential crosstalk in the pathophysiology of human diseases. Frontiers in Chemistry, 11, 1158198.
Fafula, R. V., Iefremova, U. P., Onufrovych, O. K., Maksymyuk, H. V., Besedina, A. S., Nakonechnyi, I. A., Vorobets, D. Z., & Vorobets, Z. D. (2018). Altera-tions in arginase-NO-synthase system of spermatozoa in human subjects with different fertility potential. Journal of Medical Biochemistry, 37(2), 134–140.
Fafula, R. V., Onufrovych, O. K., Iefremova, U. P., Melnyk, O. V., Vorobets, D. Z., & Vorobets, Z. D. (2017). Glutthione content in sperm cells of infertile men. Regulatory Mechanism in Biosystems, 8(2), 157–161.
Fafula, R., Melnyk, О., Gromnatska, N., Vorobets, D., Fedorovych, Z., Besedina, A., & Vorobets, Z. (2023). Prooxidant-antioxidant balance in seminal and blood plasma of men with idiopathic infertility and infertile men in combination with rheumatoid arthritis. Studia Biologica, 17(2), 15–26.
Gavriliouk, D., & Aitken, R. J. (2015). Damage to sperm DNA mediated by reactive oxygen species: Its impact on human reproduction and the health trajectory of offspring. Advances in Experimental Medicine and Biology, 868, 23–47.
Haro Girón, S., Monserrat Sanz, J., Ortega, M. A., Garcia-Montero, C., Fraile-Martínez, O., Gómez-Lahoz, A. M., Boaru, D. L., de Leon-Oliva, D., Guijarro, L. G., Atienza-Perez, M., Diaz, D., Lopez-Dolado, E., & Álvarez-Mon, M. (2023). Prognostic value of malondialdehyde (MDA) in the temporal progres-sion of chronic spinal cord injury. Journal of Personalized Medicine, 3(4), 626.
Henkel., R. R. (2011). Leukocytes and oxidative stress: Dilemma for sperm function and male fertility. Asian Journal of Andrology, 13(1), 43–52.
Hosseinzadeh, Colagar, A., Karimi, F., & Jorsaraei, S. G. (2013). Correlation of sperm parameters with semen lipid peroxidation and total antioxidants levels in astheno- and oligoasheno-teratospermic men. The Iranian Red Crescent Medi-cal Journal, 15(9), 780–785.
Iakubets', O. I., Fafula, R. V., Vorobets, D. Z., & Vorobets, Z. D. (2013). Arginase and NO-synthase pathways of L-arginine metabolism in peripheral blood lymphocytes of patients with ovarian cancer. Ukrainskij Biokhimicheskij Zhurnal, 85(5), 105–113.
Ko, E. Y., Sabanegh Jr, E. S., & Agarwal, A. (2014). Male infertility testing: Reactive oxygen species and antioxidant capacity. Fertility and Sterility, 102(6), 1518–1527.
Monostori, P., Wittmann, G., Karg, E., & Túri, S. (2009). Determination of gluta-thione and glutathione disulfide in biological samples: An in-depth review. Journal of Chromatography, B, Analytical Technologies in the Biomedical and Life Sciences, 877(28), 3331–3346.
Nabil, H., Moemen, L. A., & Abuelela, M. (2008). Studying the levels of malondial-dehyde and antioxidant parameters in normal and abnormal human seminal plasma. Australian Journal of Basic and Applied Sciences, 2, 773–778.
Pautz, A., Art, J., Hahn, S., Nowag, S., Voss, C., & Kleinert, H. (2010). Regulation of the expression of inducible nitric oxide synthase. Nitric Oxide, 23(2), 75–93.
Sheweita, S., Salama, B., Hassan, M. (2015). Erectile dysfunction drugs and oxida-tive stress in the liver of male rats. Toxicology Reports, 2, 933–938.
Siomek, A. (2012). NF-κB signaling pathway and free radical impact. Acta Biochi-mica Polonica, 59(3), 323–331.
Viloria, T., Meseguer, M., Martínez-Conejero, J. A., O’Connor, J. E., Remohí, J., Pellicer, A., & Garrido, N. (2010). Cigarette smoking affects specific sperm oxidative defenses but does not cause oxidative DNA damage ininfertile men. Fertility and Sterility, 94(2), 631–637.
Vorobets, M. Z., Fafula, R. V., Melnyk, O. V., Kovalenko, I. V., Borzhievsky, A. T., & Vorobets, Z. D. (2022). Characteristics of oxidative stress and non-enzymatic link of the glutathione system in sperm plasma and spermatozoa in men with different fertilization potential. Experimental and Clinical Physiology and Biochemistry, 94, 5–12.
Weidinger, A., & Kozlov, A. V. (2015). Biological activities of reactive oxygen and nitrogen species: Oxidative stress versus signal transduction. Biomolecules, 5(2), 472–484.
Wu, G., Bazer, F. W., Satterfield, M. C., Li, X., Wang, X., Johnson, G. A., Burghardt, R. C., Dai, Z., Wang, J., & Wu, Z. (2013). Impacts of arginine nutrition on embryonic and fetal development in mammals. Amino Acids, 45(2), 241–256.

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