Anatomical-morphological, histological and immunohistochemical features of the cardiovascular system of the intact white rats

Authors

DOI:

https://doi.org/10.26641/1997-9665.2026.1.67-75

Keywords:

heart, vessels, morphology, histology, immunohistochemistry, morphometry, intact rats

Abstract

Background. The rat heart is one of the standard objects in experimental studies that model human cardiovascular pathologies. The high degree of homology of the mammalian heart structure allows the use of the results of morphological studies for comparative anatomy and pathophysiology. Objective: To study the anatomical-morphological, histological, and immunohistochemical features of the cardiovascular system of intact laboratory white rats. Methods. Experimental studies were conducted on 10 sexually mature white non-linear male rats weighing 180-230 g. During the 10 days of quarantine, daily observations were made of the appearance, behavior, food intake and general condition of the animals. After preparation, rat heart tissue was fixed in 10% buffered formalin solution, followed by alcohols of increasing concentration and paraffin embedding according to standard protocols. Then, histological sections with a thickness of 5±1 μm and semi-thin sections with a thickness of 1 μm were prepared. Immunohistochemical studies were performed using monoclonal antibodies for vascular endothelium CD31 (Clone JC70A, Thermo Fisher scientific). Visualization of IGH reactions was performed using the DAKO EnVision+System detection system with diaminobenzidine chromogen. Morphometry of rat heart vessels, in particular their diameters and wall thickness, was performed using Aperio ImageScope v12.3.3 software (Leica biosystems, Wetzlar, Germany). Results. The anatomical and morphological features of the heart of laboratory white male rats under normal functional conditions are considered. A detailed description of the macroscopic structure of the heart is given, the histological structure of the heart muscle, endocardium, pericardium and heart vessels is investigated. The results of macroscopic and histological studies of the structure of the heart muscle, endocardium, pericardium and vascular network of the heart supplement data on the norm of the cardiovascular system, which is important for fundamental and experimental cardiology, as well as for the assessment of pathological changes in models of cardiovascular diseases. Immunohistochemical and morphometric analysis confirmed that in the myocardium of intact rats the vascular bed is represented by arteries of various calibers, arterioles, a dense capillary network and venous vessels. The arterial wall had a clearly expressed intima, media and adventitia. Arterioles were characterized by thin but clearly defined media, while venules had thin walls with a minimal muscular component. The combination of histological description of vessels with morphometry creates a reliable basis for further control–experimental comparisons. In rat myocardium, uniform expression of CD31 reflects the integrity of the vascular endothelial layer and the absence of inflammatory or dystrophic damage. The obtained indicators can serve as a reference morphological basis for experimental studies of cardiovascular pathology. Conclusion. The identified features of macro- and microscopic organization and morphometric parameters of the vascular bed of the heart are important for establishing a reference basis and subsequently for comparison with the detected changes obtained in experimental models of induced pathologies.

References

  1. World Health Organization. Cardiovascular diseases (CVDs). Available from: https://www.who.int/news-room/fact-sheets/detail/cardiovascular-diseases-(cvds). Accessed: Sep 22, 2023.
  2. Ma LY, Chen WW, Gao RL, Liu LS, Zhu ML, Wang YJ, Wu ZS, Li HJ, Gu DF, Yang YJ, Zheng Z, Hu SS. China cardiovascular diseases report 2018: an updated summary. J Geriatr Cardiol. 2020;17(1):1–8. doi: 10.11909/j.issn.1671-5411.2020.01.001.Jan
  3. Luo Y, Liu J, Zeng J, Pan H. Global burden of cardiovascular diseases attributed to low physical activity: An analysis of 204 countries and territories between 1990 and 2019. Am J Prev Cardiol. 2024;17:100633. doi: 10.1016/j.ajpc.2024.100633
  4. Hutor TH, Kolinkovskyi OM, Lafarenko ORV, Tyshko LO, Timchenko NF, Omelyash UV. [Epidemiology of cardiovascular diseases in Ukraine: general trends]. Public Health Journal. 2025;1(7):77-84. Ukrainian. doi: 10.32782/pub.health.2025.1.11
  5. Ritskes-Hoitinga M, Leenaars M, Avey M, Rovers M, Scholten R. Systematic reviews of preclinical animal studies can make significant contributions to health care and more transparent translational medicine. Cochrane Database Syst Rev. 2014;2014(3):ED000078. doi: 10.1002/14651858.ED000078
  6. Oh JG, Kho C, Hajjar RJ, Ishikawa K. Experimental models of cardiac physiology and pathology. Heart Fail Rev. 2019;24(4):601-15. doi: 10.1007/s10741-019-09769-2
  7. Buetow BS, Laflamme MA. Chapter 10 – Cardiovascular Research/Editor(s): Piper M. Treuting, Suzanne M. Dintzis, Kathleen S. Montine. Comparative Anatomy and Histology (Second Edition), Academic Press; 2018:163-189. ISBN 9780128029008. doi: 10.1016/B978-0-12-802900-8.00010-5
  8. Allen PS, Dell’Italia LG, Esvelt M, Conte ML, Cadillac JM, Myers DD. Chapter 25 - Cardiovascular Research/Editor(s): Mark A. Suckow, F. Claire Hankenson, Ronald P. Wilson, Patricia L. Foley. The Laboratory Rat (Third Edition), Academic Press; 2020:927-65. ISBN 9780128143384. doi: 10.1016/B978-0-12-814338-4.00025-8
  9. European Convention for the protection of vertebrate animals used for experimental and other scientific purposes. Strasburg: Council of Europe. 1986;123:52. Available from: https://rm.coe.int/168007a67b.
  10. Directive 2010/63/EU of the European Parliament and of the Council of 22 September 2010 on the Protection of Animals Used for Scientific Purposes. Off J Eur Union. 2010;53(L276):33–79. Available from: https://eur-lex.europa.eu/LexUriServ/LexUriServ.do?uri=OJ:L:2010:276:0033:0079:en:PDF
  11. Suvarna SK, Layton C, Bancroft GD. (Eds.). Bancroft's Theory and Practice of Histological Techniques, 8th Edition. Elsevier; 2019. 558 p. doi: 10.1016/B978-0-7020-6864-5.00008-6
  12. Hayat МА. Principles and techniques of electron microscopy: Biological applications [4th ed.]. Cambridge: Cambridge University Press; 2000. 543 p. doi: 10.1006/anbo.2001.1367
  13. Nguyen T. Immunohistochemistry: A Technical Guide to Current Practices. Cambridge: Cambridge University Press; 2022. 264 p.
  14. Hruzieva TS, Lekhan VM, Ohniev VA, Haliienko LI, Kriachkova LV, Palamar BI, et al. [Biostatistics]. Vinnytsia: New Book; 2020. 384 p. ISBN 978-966-382-857-2. Ukrainian.
  15. Brandt MM, Cheng C, Merkus D, Duncker DJ, Sorop O. Mechanobiology of Microvascular Function and Structure in Health and Disease: Focus on the Coronary Circulation. Front Physiol. 2021;12:771960. doi: 10.3389/fphys.2021.771960
  16. Ritt M, Schmieder RE. Wall-to-lumen ratio of retinal arterioles as a tool to assess vascular changes. Hypertension. 2009;54(2):384-7. doi: 10.1161/HYPERTENSIONAHA.109.133025
  17. Batra S, Koyama T, Gao M, Horimoto M, Rakusan K. Microvascular geometry of the rat heart. Arteriolar and venular capillary regions. Jpn Heart J. 1992;33(6):817-28. doi: 10.1536/ihj.33.817
  18. Okruhlicova L, Tribulova N, Weismann P, Sotnikova R. Ultrastructure and histochemistry of rat myocardial capillary endothelial cells in response to diabetes and hypertension. Cell Res. 2005;15(7):532-8. doi: 10.1038/sj.cr.7290322
  19. Lauridsen HM, Pober JS, Gonzalez AL. A composite model of the human postcapillary venule for investigation of microvascular leukocyte recruitment. FASEB J. 2014;28(3):1166–80. doi: 10.1096/fj.13-240986
  20. Alon R, van Buul JD. Leukocyte Breaching of Endothelial Barriers: The Actin Link. Trends Immunol. 2017;38(8):606-15. doi: 10.1016/j.it.2017.05.002
  21. Nees S, Juchem G, Eberhorn N, Thallmair M, Förch S, Knott M, Senftl A, Fischlein T, Reichart B, Weiss DR. Wall structures of myocardial precapillary arterioles and postcapillary venules reexamined and reconstructed in vitro for studies on barrier functions. Am J Physiol Heart Circ Physiol. 2012;302(1):H51-68. doi: 10.1152/ajpheart.00358.2011
  22. Hollander MR, de Waard GA, Konijnenberg LS, Meijer-van Putten RM, van den Brom CE, Paauw N, de Vries HE, van de Ven PM, Aman J, Van Nieuw-Amerongen GP, Hordijk PL, Niessen HW, Horrevoets AJ, Van Royen N. Dissecting the Effects of Ischemia and Reperfusion on the Coronary Microcirculation in a Rat Model of Acute Myocardial Infarction. PLoS One. 2016;11(7):e0157233. doi: 10.1371/journal.pone.0157233

Published

2026-03-27

How to Cite

Shevchuk , M. (2026). Anatomical-morphological, histological and immunohistochemical features of the cardiovascular system of the intact white rats. Морфологія / Morphologia / Morfologìâ, 20(1), 67–75. https://doi.org/10.26641/1997-9665.2026.1.67-75

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