Ultrastructure of mitochondrial apparatus of left ventricle cardiomyocyte of rats after different exposures of electromagnetic radiation under hypothyroidism.

Authors

  • V. V. Kosharnyi SI «Dnipropetrovsk Medical Academy of the Ministry of Health of Ukraine», Ukraine https://orcid.org/0000-0002-7815-3950
  • V. G. Rutgizer SI «Dnipropetrovsk Medical Academy of the Ministry of Health of Ukraine», Ukraine
  • L. V. Abdul-Ohly SI «Dnipropetrovsk Medical Academy of the Ministry of Health of Ukraine», Ukraine
  • K. A. Kushnaryova SI «Dnipropetrovsk Medical Academy of the Ministry of Health of Ukraine», Ukraine
  • N. S. Bondarenko SI «Dnipropetrovsk Medical Academy of the Ministry of Health of Ukraine», Ukraine
  • I. V. Tverdokhlib SI «Dnipropetrovsk Medical Academy of the Ministry of Health of Ukraine», Ukraine https://orcid.org/0000-0002-8672-3773

DOI:

https://doi.org/10.26641/1997-9665.2019.4.16-23

Keywords:

rats, hypothyroidism, electromagnetic radiation, cardiomyocytes, mitochondria, ultrastructure

Abstract

Backgroud. The dynamics of morphogenetic rearrangements of myocardial mitochondriom under the influence of hypothyroidism and electromagnetic radiation remains insufficiently studied. These circumstances determine the relevance and need to study the mitochondrial reactions of cardiomyocytes in these conditions. Objective.Determination of the reactions of the contractile cardiomyocytes mitochondrial apparatus of the left ventricle of rat heart under hypothyroidism on the effect of various exposures to electromagnetic radiation. Methods. We studied samples of the intramural zone of the free wall of left ventricle in sexually mature rats. Experimental animals were divided into 6 groups: 1) control (intact rats) 2) rats with hypothyroidism; 3) rats after general electromagnetic irradiation with an exposure of 45 minutes 4) rats after irradiation with an exposure of 120 minutes 5) rats with hypothyroidism after irradiation with an exposure of 45 minutes 6) rats with hypothyroidism after irradiation with an exposure of 120 minutes. The hypothyroid state was modeled using thyroidectomy. The effect of electromagnetic radiation was carried out daily for 10 days on the whole body. Ultrastructural analysis of the mitochondrial apparatus was performed using transmission electron microscopy. Results. Experimental hypothyroidism in rats was accompanied by an increase in mitochondrial heteromorphism of contractile cardiomyocytes of the left ventricle, cristolysis of myofibrillar mitochondria, and the appearance of giant organelles with severe swelling of the matrix. After irradiation with an exposure of 45 minutes, the overall structure of the mitochondrial apparatus is unchanged. An exposure of 120 minutes caused the destruction of subsarcolemmal and paranuclear organelles, edema and degradation of intermyofibrillar mitochondria. After exposure for 45 minutes under conditions of a hypothyroid state, mitochondria in paranuclear localization were represented by enlarged organelles with a vacuolar type of damage, without signs of destruction of the external membranes, moderate cristolysis, with an electronically clear matrix. Exposure for 120 minutes in animals with hypothyroidism led to edema and destruction of most mitochondria, destruction of cristae, effects of excessive tension on preserved organelles, damage to the structure of intermitochondrial contacts, and inhibition of reproduction of mitochondria. Conclusion. After exposure to electromagnetic radiation for 45 minutes under hypothyroid conditions, there is a compensatory restructuring of the energy apparatus of contractile cardiomyocytes of the left ventricle due to neoplasm of mitochondria and an increase in their contact interaction. After the action of irradiation for 120 minutes, the development of destructive-degenerative processes in the mitochondrial apparatus of left ventricular cardiomyocytes is observed, and damage to intermitochondrial contacts is extended.

References

  1. Pankiv VI. [Practical thyroidology]. Donetsk: Zaslavskyi; 2011. 224 p. Ukrainian.
  2. Prystupiuk OM. [Hypothyroidism: alterations of organs and systems]. Mezhdunarodnyi Endocrinologicheskiy Zhurnal. 2011;4(36):104-109.
  3. Boelaert K, Franklyn JA. Thyroid hormones in health and disease. J Endocrinology. 2005;187:1-15.
  4. Nazarpour S, Tehrani FR, Simbar M, Azizi F. Thyroid disfunction and pregnancy outcomes. Iran J Reprod Med. 2015; 13(7):387-396.
  5. Vrijkotte TGM, Hrudey EJ, Twickler MB. Early maternal thyroid function during gestation is associated with fetal growth, particularly in male newborns. J Clinical Endocrinology Metabolism. 2017; 102(3): 1059-1066.
  6. Shegedin AYu, Ambarova NA, Yashchenko AM. [Immunohistochemical investigation of testi-cular morphogenesis in offspring rats, developing under the influence of maternal hypothyroidism]. Morphologia. 2019;13(2):63-70. Ukrainian.
  7. Ivanchenko MV, Tverdokhlib IV. [Formation of mitochondrial apparatus of contractile cardiomyocytes during normal and hypoxic injury of cardiogenesis]. Morphologia. 2013;7(1):5-20. Ukrainian.
  8. Petruk NS, Ivanchenko MV, Tverdokhleb IV. [Interrelation of reactions of the mitochondrial apparatus and the distribution of nexus of contractile cardiomyocytes in postnatal ontogenesis in response to the effects of chronic intrauterine hypoxia in the experiment]. Bulletin of Volgograd State Medical University. 2014;50(2):97-100. Russian.
  9. Ivanchenko MV, Tverdokhleb IV. [Character of the formation of intermitochondrial contacts during the ontogenetic formation of the mitochondrial apparatus under normal conditions and under conditions of hypoxic damage to cardiogenesis]. Russian medical and biological bulletin. 2014;2:12-9. Russian.
  10. Ivanchenko MV, Tverdokhleb IV. [The influence of intrauterine hypoxia on the mitochondrial heterogeneity and the ways of its implementation during rat ventricular myocardial alteration]. Bulletin of Volgograd State Medical University. 2014;52(4):101-6.
  11. Meyers DE. Mitochondrial cardiomyopathy: pathophysiology, diagnosis, and management. Tex. Heart Inst. J. 2013; 40(4):385–94.
  12. Ibanez B, Fuster V, Jiménez-Borreguero J, Badimon JJ. Lethal myocardial reperfusion injury: a necessary evil? Int. J. Cardiol. 2011;151(1):3-11.
  13. Dai DF, Hsieh EJ, Chen T. Global proteomics and pathway analysis of pressure-overload induced heart failure and its attenuation by mitochondrial targeted peptides. Circ. Heart Fail. 2013;6(5):1067-76.
  14. Ishihara T, Ban-Ishihara R, Maeda M. Dynamics of mitochondrial DNA nucleoids regulated by mitochondrial fission is essential for maintenance of homogeneously active mitochondria during neonatal heart development. Mol. Cell Biol. 2015;35(1):211-23.
  15. Sabbah HN, Gupta RC, Kohli S. Chronic therapy with a partial adenosine a1 receptor agonist, improves left ventricular function and remodeling in dogs with advanced heart failure. Circ. Heart Fail. 2013;6(3):563–71.
  16. Mironov AA, Komissarchik YuYa, Mironov VA. Metody elektronnoy mikroskopii v biologii i meditsine: Metodicheskoe rukovodstvo. [Electron microscopy methods in biology and medicine : Methodological Guide]. St. Petersburg: Science; 1994. 400 p. Russian.
  17. Tverdokhlib IV, Petruk NS, Ivanchenko MV, Silkina JuV, Khripkov IS, Pertseva NO, Shevchenko KM, Goodlett TO, Malkov II, Berehovenko IM, Zinenko DYu, Galaida NO, Varin VV, inventors; State Institution «Dnipropetrovsk medical academy of the Health Ministry of Ukraine». Method of determining the coordinates of ultrastructures in transmission electron microscopy of biological objects. Ukrainian patent UA 83611. 2013 Sep 25. Int. CI. G01N 1/28. Ukrainian.
  18. Kuo J. Electron microscopy: methods and protocols. Totowa, New Jersey: Humana Press Inc. 2007. 608 p.
  19. European convention for the protection of vertebrate animals used for experimental and other scientific purposes. Strasbourg: Council of Europe. 18 Mar 1986. 53 p.
  20. Mishalov VD, Chaikovsky JuB, Tverdokhleb IV. [About legal, legislative, ethical standards and requirements at performance scientific morphological researches]. Morphologia. 2007;1(2):108-15. Ukrainian.

How to Cite

Kosharnyi, V. V., Rutgizer, V. G., Abdul-Ohly, L. V., Kushnaryova, K. A., Bondarenko, N. S., & Tverdokhlib, I. V. (2019). Ultrastructure of mitochondrial apparatus of left ventricle cardiomyocyte of rats after different exposures of electromagnetic radiation under hypothyroidism. Морфологія / Morphologia / Morfologìâ, 13(4), 16–23. https://doi.org/10.26641/1997-9665.2019.4.16-23

Issue

Section

Статті