Changes in the ultrastructure of cardiac telocytes during early postnatal development of the myocardium of Wistar rats

Authors

  • G.E. Zagoruiko Rivne State Humanitarian University, Rivne, Ukraine
  • V.P. Martsinovsky Rivne State Humanitarian University, Rivne, Ukraine
  • V.I. Filatova Poltava State Medical University, Poltava, Ukraine
  • T.M. Matvienko Poltava State Medical University, Poltava, Ukraine
  • O.V. Filatova Poltava State Medical University, Poltava, Ukraine
  • O.D. Sargosh Rivne State Humanitarian University, Rivne, Ukraine

DOI:

https://doi.org/10.26641/1997-9665.2025.3.80-90

Keywords:

ultrastructure of telocytes, myocardium, Wistar rats.

Abstract

Relevance. In 2010, the term "telocyte" was introduced into foreign scientific morphological literature to describe a new type of cell that is part of the connective tissue component of various organs of mammals and humans. Telocytes were found not only in the stromal component of the myocardium of the ventricles and atria, but also in the wall of arterial and venous vessels of the heart of various representatives of mammals and humans. A characteristic feature of the morphology of telocytes, which distinguishes them from other types of cells of vertebrates, is the presence of numerous thin wavy-shaped processes, the length of some of which can exceed 100 microns. Modern morphological studies indicate that the processes of telocytes - telopodia, form homocellular and heterocellular contacts with telocytes and other cells of organs, respectively. Thus, telopodia of telocytes directly contact cardiomyocytes, pericytes, fibroblasts, endothelial cells of blood capillaries, smooth muscle cells of arterioles and venules and nerve endings. It has been established that in the process of contact interaction, signaling molecules are transferred from telopodia of telocytes to other cells. Therefore, the study of telocytes is of great importance for determining the role of these cells in the morphogenesis of cardiac muscle in the process of postnatal development of mammals and humans. Goal. To investigate the features of the ultrastructure and determine changes in cardiac telocytes during early postnatal development of Wistar rats. Methods. Electron microscopic examination of the left ventricular myocardium of late embryos and Wistar rats aged from birth to 45 days of postnatal development was performed. Results and summary. It has been established that single cardiac telocytes “accompany” cardiomyocytes of the left ventricular myocardium in 20-day-old rat embryos. In the myocardium of newborn rats, optically dark and light telocytes with thin long sinuous processes are detected, in which local expansions (podomere) and thin short and long podomeres are detected. On the 10th day after the birth of rats, an increase in the number of postmitotic young cardiac telocytes, which have a triangular and rhombic shape, is determined in the myocardium. The peripheral parts of the body of these telocytes end in thin short slightly sinuous dichotomously branched processes. In the myocardium of 15-day-old rats, the number and length of sinuous processes of telocytes significantly increase. In the time interval (20 - 45) days, the content of cardiac telocytes in the rat myocardium gradually decreases. Thin podomeres form homocellular and heterocellular contacts, which suggests the influence of cardiac telocytes on the morpho-functional state of cardiomyocytes and cells of the stromal-vascular component of the myocardium.

References

  1. Rosa I, Marini M, Manetti M. Telocytes: An Emerging Component of Stem Cell Niche Microenvironment. J Histochem Cytochem. 2021;69(12):795-818. doi: 10.1369/00221554211025489.
  2. Bruno DA Sanchez, Francisco BS Teofilo, Mathieu Y Brunet, et al. Telocytes: current research methods, problems and future perspectives. Cells and Tissue Research. 2024;396(2):141-55. doi: 10.1007/ s00441-024-03888-5.
  3. Popescu LM, Faussone-Pellegrini MS. Telocytes - a case of serendipity: the winding way from Interstitial Cells of Cajal (ICC), via Interstitial Cajal-Like Cells (ICLC) to TELOCYTES. J Cell Mol Med. 2010;14(4):729-40. doi: 10.1111/j.1582-4934.2010.01059.x.
  4. Jinhan Lv, Ligang Yuan, Guojuan Chen, Long Ma, Yumei Qi. Distribution characteristics and morphological comparison of telocytes in the aortic bulb and myocardium of yak heart. BMC Veterinary Research. 2025;21;1:1–12. doi: 10.1186/s12917-025-04553-x.
  5. Rosa I, Nardini P, Fioretto BS, Guasti D, Romano E, Sgambati E, Marini M, Manetti M. Immunohistochemical and ultrastructural identification of telocytes in the lamina propria of human vaginal mucosa. Acta Histochem. 2023;125(7):152094. doi: 10.1016/j.acthis.2023.152094.
  6. Aschacher T, Schmidt K, Aschacher O, Eichmair E, Baranyi U, Winkler B, Grabenwoeger M, Spittler A, Enzmann F, Messner B, Riebandt J, Laufer G, Bergmann M, Ehrlich M. Telocytes in the human ascending aorta: Characterization and exosome-related KLF-4/VEGF-A expression. J Cell Mol Med. 2021;25(20):9697-709. doi: 10.1111/JCMM.16919.
  7. Gherghiceanu M, Popescu LM. Cardiac telocytes - their junctions and functional implications. Cell Tissue Res. 2012;348(2):265-79. doi: 10.1007/s00441-012-1333-8.
  8. Ge T, Ye Y, Zhang H. Ultrastructure of telocytes, a new type of interstitial cells in the myocardium of the Chinese giant salamander (Andrias davidianus). Eur. J. Histochem. 2019.;63(2):3021. doi: 10.4081/ejh.2019.3021.
  9. Junatas KL, Couck L, Tay H, Sinowatz F, Van Den Broeck W. Ultrastructural evidence of telocytes in the embryonic chick heart. Anat Histol Embryol. 2024;53(1):e12970. doi: 10.1111/ahe.12970.
  10. Lv L, Liao Z, Luo J, Chen H, Guo H, Yang J, Huang R, Pu Q, Zhao H, Yuan Z, Feng S, Qi X, Cai D. Cardiac telocytes exist in the adult Xenopus tropicalis heart. J Cell Mol Med. 2020;24(4):2531-41. doi: 10.1111/jcmm.14947.
  11. Fertig ET, Gherghiceanu M, Popescu LM. Extracellular vesicles release by cardiac telocytes: electron microscopy and electron tomography. J Cell Mol Med. 2014;18(10):1938-43. doi: 10.1111/ jcmm.12436.
  12. Cantarero I, Luesma MJ, Alvarez-Dotu JM, Muñoz E, Junquera C. Transmission Electron Microscopy as Key Technique for the Characterization of Telocytes. Curr Stem Cell Res Ther. 2016;11(5):410-4. doi: 10.2174/1574888x 10666150306155435.
  13. Cretoiu D, Hummel E, Zimmermann H, Gherghiceanu M, Popescu LM. Human cardiac telocytes: 3D imaging by FIB-SEM tomography. J Cell Mol Med. 2014;18(11):2157-64. doi: 10.1111/ jcmm.12468.
  14. Suciu L, Nicolescu MI, Popescu LM. Cardiac telocytes: serial dynamic images in cell culture. J. Cell. Mol. Med. 2010;14(11):2687-92. doi: 10.1111/j.1582-4934.2010.01185.x.
  15. Mihaela Gherghiceanu & Laurentiu M. Popescu. Cardiac telocytes — their junctions and functional implications. Cell. Tissue. Res. 2012;348:265–79. doi: 10.1007/s00441-012-1333-8.
  16. Soad KM Abdel Gawad, Fatma Al-Zahra N. Al-Shahed, Mariam H. Abd El-Zaher. Histological and immunohistochemical study of telocytes in the heart of male albino rats of different age groups. Scientific Journal of Al-Azhar Faculty of Medicine for Women. 2020;4(3):373-82. doi: 10.4103/ sjamf.sjamf_43_20.
  17. Marini M, Ibba-Manneschi L, Manetti M. Cardiac Telocyte-Derived Exosomes and Their Possible Implications in Cardiovascular Pathophysiology. Adv. Exp. Med. Biol. 2017;998:237-54. doi: 10.1007/978-981-10-4397-0_16.
  18. Cucu I, Nicolescu MI, Busnatu SS, Manole CG. Dynamic involvement of telocytes in the modulation of multiple signaling pathways in cardiac cytoarchitecture. Int J. Mol. Sci. 2022;23(10):10. doi: 10.3390/ijms23105769.
  19. Kondo A, Kaestner KH. Emerging diverse roles of telocytes. Development. 2020;146(14):dev175018. doi: 10.1242/dev.175018.
  20. Popescu LM, Curici A, Wang E, Zhang H, Hu S, Gherghiceanu M. Telocytes and putative stem cells in ageing human heart. J. Cell. Mol. Med. 2015;19(1):31-45. doi: 10.1111/jcmm.12509.
  21. European Convention for the Protection of Vertebrate Animals Used for Experimental and Other Stientific Purposes. Strasburg: Council of Europe. 1986;123:52. Available from: https://rm.coe.int/ 168007a67b.
  22. Directive 2010/63/EU of the European Par-liament and of the Council of 22 September 2010 on the protection of animals used for scientific purposes. Official Journal of the European Union. 2010;53(L276):33-79.
  23. Horalskyi LP, Khomych VT, Kononskyi OI. [Fundamentals of histological technique and morphofunctional research methods in normal and pathological conditions]. Zhytomyr: Polissia; 2011. 288 p. Ukrainian. Available from: http://ir.znau.edu.ua/handle/123456789/3788.

Published

2025-10-30

How to Cite

Zagoruiko , G., Martsinovsky , V., Filatova , V., Matvienko , T., Filatova , O., & Sargosh , O. (2025). Changes in the ultrastructure of cardiac telocytes during early postnatal development of the myocardium of Wistar rats. Морфологія / Morphologia / Morfologìâ, 19(3), 80–90. https://doi.org/10.26641/1997-9665.2025.3.80-90

Issue

Section

Статті