Morphology and morphometric features of the heart of the domestic horse (Equus ferus caballus)
Abstract
The article presents the results of studies of the macro- and microscopic structure, features of organo- and cytometry of the heart of the domestic hor se – Equus ferus caballus L innaeus , 1758. The obtained data are of great importance for fundamental and applied research in veterinary morphology, cardiology, and pathology. The results obtained significantly expand and su p plement the information on the morphological structure of the horse's heart in relation to the species characteristics of domestic mammals in the relevant sections of histology, zoology, comparative anatomy, etc. According to the results of morphometry, the absolute mass of the heart of a physiologically mature horse wa s 2988 ± 97 g, the relative mass wa s 0.59 ± 0.01%, and the net mass of the heart wa s 2807 ± 93 g. According to linear measurements of the heart (height – 30.26 ± 0.74 cm, width – 20.52 ± 0.55 cm, thickness – 12.84 ± 0.39 cm, circumference – 54.16 ± 2.05 cm), the development index (shape) of the horse’s heart is 147.5 ± 8. 1 %, therefore the horse’s heart is defined as of the dilated-shortened type. The more developed components of the heart are its ventricles – left and right, then the left and right atrium. According to such absolute values, the ratio of the mass of the horse’s ventricles to its net mass wa s 1:0.8, the ratio of the mass of the atria to its net heart mass was 1:0.2, and the ratio of the mass of the atrial myocardium to the mass of the ventricular myocardium wa s 1:0.24. According to the results of cytometry, the left ventricular cardiomyocytes ha d a larger volume – 12554 ± 87 8 μm 3 , the right ventricular cardiomyocytes ha d a slightly smaller volume – 840 2 ± 681 μm 3 , and the atrial cardiomyocytes ha d the smallest volume – 5729 ± 513 μm 3 . The volumes of the cardiomyocyte nuclei we re similar: in the left ventricle, 13 3 ± 9 μm 3 ; in the right ventricle, 132 ± 8 μm 3 ; and in the atrial card i omyocytes, 129 ± 8 μm 3 . And so, the smallest nuclear-cytoplasmic ratio wa s characteristic of cardiomyocytes of the left ventricle (0.0107 ± 0.0007), significantly higher is the value of cardiomyocytes of the right ventricle (0.0159 ± 0.00 10 ), and significantly higher is the value of cardiomyocytes of the atrium (0.0230 ± 0.000 7 ). We associate such ambiguous organo- and cytometric parameters of the ventricles and atria of the heart with the activity of their work – the functional features of the muscular tissue of the myocardium, capable of spontaneous rhythmic contractions, as a result of which blood moves through the vessels: the left ventricle (its cardiomyocytes) mainly performs the function of a pump, promoting the movement of blood through the vessels of the large circle of blood circulation, carrying out a correspondingly greater load; right ventricle (cardiomyocytes) – performs a predominantly volumetric function, promoting blood movement only through the vessels of the small circle of blood circulation, while performing a smaller load.References
Borovkov, S. B., Koreneva, M. I., & Borovkova, V. M. (2013). Funktsionalnyi stan sertsevo-sudynnoyi systemy [Functional state of the cardiovascular system]. Scientific Journal of Veterinary Medicine, 11(101), 22–25 (in Ukrainian).
Boselli, F., Freund, J. B., & Vermot, J. (2015). Blood flow mechanics in cardiovascular development. Cellular and Molecular Life Sciences, 72(13), 2545–2559.
Brown, S. K., Sheikh, A. M., & Guzik, T. J. (2020). Cardiovascular research at the frontier of biomedical science. Cardiovascular Research, 116(7), e83–e86.
Cesarovic, N., Lipiski, M., Falk, V., & Emmert, M. Y. (2020). Animals in cardiovascular research: Clinical relevance and translational limitations of animal models in cardiovascular medicine. European Heart Journal, 41(2), 200–203.
Chow, B., & French, A. (2014). Conversion of atrial fibrillation after levothyroxine in a dog with hypothyroidism and arterial thromboembolism. The Journal of Small Animal Practice, 55(5), 278–282.
Christoffels, V., & Jensen, B. (2020). Cardiac morphogenesis: Specification of the four-chambered heart. Cold Spring Harbor Perspectives in Biology, 12(10), a037143.
Constantin, I., & Tăbăran, A. F. (2022). Dissection techniques and histological sampling of the heart in large animal models for cardiovascular diseases. Journal of Visualized Experiments, 184, e63809.
Demus, N. V. (2015). Orhanometriia sertsia telychok zalezhno vid typu avtonomnoyi rehuliatsiyi sertsevoho rytmu [Organometry of the heart of heifers depending on the type of autonomous regulation of heart rhythm]. Scientific Messenger of LNU of Veterinary Medicine and Biotechnologies, Series: Veterinary Sciences, 17(1), 24–29 (in Ukrainian).
Dukes-McEwan, J., Borgarelli, M., Tidholm, A., Vollmar, A. C., Häggström, J., & ESVC Taskforce for Canine Dilated Cardiomyopathy (2003). Proposed guidelines for the diagnosis of canine idiopathic dilated cardiomyopathy. Journal of Veterinary Cardiology, 5(2), 7–19.
Dukhnytskyi, V. B., Horalskyi, L. P., Sokolyuk, V. M., Gutyj, B. V., Ishchenko, V. D., Ligomina, І. P., Kolesnik, N. L., & Dzhmil, V. I. (2024). Morphofunctional changes in the internal organs of laying hens affected by chronic thiamethoxam intoxication. Regulatory Mechanisms in Biosystems, 15(3), 578–586.
Emam, M. A., & Abugherin, B. (2020). Histological study on the heart ventricle of Egyptian bovines (Bos aegyptiacus). Open Veterinary Journal, 9(4), 281–286.
Gaar-Humphreys, K. R., Spanjersberg, T. C. F., Santarelli, G., Grinwis, G. C. M., Szatmári, V., Roelen, B. A. J., Vink, A., van Tintelen, J. P., Asselbergs, F. W., Fieten, H., Harakalova, M., & van Steenbeek, F. G. (2022). Genetic basis of dilated cardiomyopathy in dogs and its potential as a bidirectional model. Animals, 12(13), 1679.
Gómez-Torres, F. A., Estupiñán, H. Y., & Ruíz-Saurí, A. (2021). Morphometric analysis of cardiac conduction fibers in horses and dogs, a comparative histological and immunohistochemical study with findings in human hearts. Research in Veterinary Science, 135, 200–216.
Halıgür, A., & Dursun, N. (2009). Morphological and morphometric investigation of the musculus papillaris and chordae tendineae of the donkey (Equus asinus L). Journal of Animal and Veterinary Advances, 8(4), 726–733.
Hnatyuk, M. S., Slabiy, O. B., & Tatarchuk, L. V. (2016). Yaderno-tsytoplazmatychni vidnoshennia u kardiomiotsytakh ta endoteliotsytakh shlunochkiv leheneveho sertsia [Nuclear-cytoplasmatic relations in the cardiomyocytes and endotheliocytes of the pulmonary heart ventricles]. Clinical Anatomy and Operative Surgery, 55, 67–70 (in Ukrainian).
Horalskyi, L. P., Demus, N. V., Sokulskyi, I. M., Gutyj, B. V., Kolesnik, N. L., Pavliuchenko, O. V., & Horalska, I. Y. (2023). Species specifics of morphology of the liver of the fishes of the Cyprinidae family. Regulatory Mechanisms in Biosystems, 14(2), 234–241.
Horalskyi, L. P., Khomych, V. T. & Kononskyi, O. I. (2019). Osnovy histolohichnoyi tekhniky i morfofunktsionalni metody doslidzhennia u normi ta pry patolohiyi [Basics of histological technique and morphofunctional methods of research in normal and pathology]. Polissia, Zhytomyr (in Ukrainian).
Horalskyi, L. P., Ovdiiuk, O. V., Gutyj, B. V., & Brygadyrenko, V. V. (2025). The features of the morphology of the heart of Clarias gariepinus (Siluriformes, Clariidae). Regulatory Mechanisms in Biosystems, 16(1), e25019.
Horalskyi, L. P., Ragulya, M. R., Kolesnik, N. L., Sokulskyi, I. M., & Gutyj, B. V. (2024). Peculiarities of macro- and cytometric assessment of morphological structures of the domestic pig heart. Regulatory Mechanisms in Biosystems, 15(1), 55–61.
Horalskyi, L. P., Ragulya, М. R., Glukhova, N. M., Sokulskiy, I. M., Kolesnik, N. L., Dunaievska, O. F., Gutyj, B. V., & Goralska, I. Y. (2022). Morphology and specifics of morphometry of lungs and myocardium of heart ventricles of cattle, sheep and horses. Regulatory Mechanisms in Biosystems, 13(1), 53–59.
Horalskyi, L. P., Sokulskiy, I. M., Kolesnik, N. L., Gutyj, B. V., Romaniuk, R. K., Pavliuchenko, O. V., Shevchuk, S. Y., & Maksymenko, Y. V. (2024). Morphology and morphometric features of the cerebellum of poultry. Regulatory Mechanisms in Biosystems, 15(4), 679–687.
Janus, I., Noszczyk-Nowak, A., Nowak, M., Ciaputa, R., Kandefer-Gola, M., & Pasławska, U. (2016). A comparison of the histopathologic pattern of the left atrium in canine dilated cardiomyopathy and chronic mitral valve disease. BMC Veterinary Research, 12, 3.
Khalesi, H., Sakha, M., Veshkini, A., & Rezakhani, A. (2022). Assessing the cardiac valves conditions in athletic horses with poor performance. Veterinary Research Forum, 13(3), 423–429.
Khvatov, V., & Shchipakin, M. (2021). Histological features the atrial myocardium and scallop muscles of an Anglo-Nubian goat. Online Journal of Animal and Feed Research, 11(3), 82–87.
Kots, S. N., Kots, V. P., & Kovalenko, P. G. (2021). Dynamika pokaznykiv funktsionalnho stanu sertsevo-sudynnoyi systemy ditey shkil’noho viku pid vplyvom korektsiynoho kompleksu [Dynamics of the functional state of the cardiovascular system of school-age children under the influence of a corrective complex]. Pryrodnychyi Almanakh, Biolohichni Nauky, 31, 35–44 (in Ukrainian).
Lebedinets, A. N., Voloshin, N. A., & Reznichenko, Y. G. (2013). Osoblyvosti dynamiky masy tila i sertsia shchuriv pislia vplyvu antyheniv v antenatalnomu periodi [Dynamics of body weight and heart weight in rats after antigen influence at аntenatal perio. Tavrichesky Medical and Biological Bulletin, 16(1), 127–130 (in Ukrainian).
Legge, C. H., López, A., Hanna, P., Côté, E., Hare, E., & Martinson, S. A. (2013). Histological characterization of dilated cardiomyopathy in the juvenile toy Manchester terrier. Veterinary Pathology, 50(6), 1043–1052.
Lelovas, P. P., Kostomitsopoulos, N. G., & Xanthos, T. T. (2014). A comparative anatomic and physiologic overview of the porcine heart. Journal of the American Association for Laboratory Animal Science, 53(5), 432–438.
Levicar, C., Nolte, I., Granados-Soler, J. L., Freise, F., Raue, J. F., & Bach, J. P. (2022). Methods of radiographic measurements of heart and left atrial size in dogs with and without myxomatous mitral valve disease: Intra- and interobserver agreement and practicability of different methods. Animals, 12(19), 2531.
Lobo, L., Carvalheira, J., Canada, N., Bussadori, C., Gomes, J. L., & Faustino, A. M. (2010). Histologic characterization of dilated cardiomyopathy in Estrela mountain dogs. Veterinary Pathology, 47(4), 637–642.
Maksymovich, I. A., & Slivinska, L. G. (2013). Poshyrenist’ ta struktura zakhvoriuvan’ sertsevo-sudynnoyi systemy u koney [Prevalence and structure of diseases of the cardiovascular system in horses]. Scientific Messenger of Lviv National University of Veterinary Medicine and Biotechnologies named after S. Z. Gzhytskyj, 57, 182–186 (in Ukrainian).
Mishalov, V. D., Chaikovskyi, Y. B., & Tverdokhlib, I. V. (2007). Pro pravovi, zakonodavchi ta etychni normy i vymohy pry vykonanni naukovykh morfolohichnykh doslidzhen’ [Legal, legislative and ethical norms and requirements when conducting scientific morphological research]. Morfolohiia, 1(2), 108–115 (in Ukrainian).
Mits, I. R., Denefil, O. V., & Andriishyn, O. P. (2016). Morphological changes of internal organs in animals of different sexes with chronic stress. Bulletin of Scientific Research, 3, 107–110.
Molesan, A., Wang, M., Sun, Q., Pierce, V., Desideri, R., Palmer, S., Todhunter, R., & Kelly, K. (2019). Cardiac pathology and genomics of sudden death in racehorses from New York and Maryland racetracks. Veterinary Pathology, 56(4), 576–585.
Mubanga, M., Byberg, L., Nowak, C., Egenvall, A., Magnusson, P. K., Ingelsson, E., & Fall, T. (2017). Dog ownership and the risk of cardiovascular disease and death – a nationwide cohort study. Scientific Reports, 7(1), 15821.
Protsak, T. V., Zabrodska, O. S., & Hovanets, K. R. (2018). Features of heart embryogenesis and its structures. Bulletin of Problems in Biology and Medicine, 3(145), 38–41.
Raiola, M., Sendra, M., & Torres, M. (2023). Imaging approaches and the quantitative analysis of heart development. Journal of Cardiovascular Development and Disease, 10(4), 145.
Savchuk, T., Boshtan, S., & Marushak, A. (2018). Istoriia rozvytku fiziolohiyi sertsevo-sudynnoyi systemy (vid Halena do suchasnosti) [History of the development of the physiology of the cardiovascular system (from Galen to nowadays)]. Aktualni Pytannia Suspilnykh Nauk ta Istoriyi Medytsyny, 18, 100–104 (in Ukrainian).
Siwinska, N., Janus, I., Zak-Bochenek, A., & Noszczyk-Nowak, A. (2022). Influence of obesity on histological tissue structure of the cardiovascular system in horses. Animals, 12(6), 732.
Somberg, J. (2020). The importance of cardiology research. Cardiology Research, 11(6), 355.
Szatmári, V. (2020). Spontaneous tricuspid valve chordal rupture in a dog with severe, irreversible pulmonary hypertension caused by Angiostrongylus vasorum infection. BMC Veterinary Research, 16(1), 311.
Tidholm, A., & Jönsson, L. (2005). Histologic characterization of canine dilated cardiomyopathy. Veterinary pathology, 42(1), 1–8.
Townsend, K. S., Johnson, P. J., LaCarrubba, A. M., Leach, S. B., Zinn, M. M., Kim, D. Y., & Johnson, G. C. (2022). Pathology in practice. Journal of the American Veterinary Medical Association, 259(S2), 1–4.
Trachsel, D. S., Giraudet, A., Maso, D., Hervé, G., Hauri, D. D., Barrey, E., & Robert, C. (2016). Relationships between body dimensions, body weight, age, gender, breed and echocardiographic dimensions in young endurance horses. BMC Veterinary Research, 12(1), 226.
Tsang, H. G., Rashdan, N. A., Whitelaw, C. B., Corcoran, B. M., Summers, K. M., & MacRae, V. E. (2016). Large animal models of cardiovascular disease. Cell Biochemistry and Function, 34(3), 113–132.
Vadzyuk, S. N., & Huk, V. O. (2023). Features of the circulatory system in people with different heat sensitivity. Achievements of Clinical and Experimental Medicine, 1, 44–52.
Vernemmen, I., Vera, L., Van Steenkiste, G., Deserranno, B., Muylle, S., Decloedt, A., & van Loon, G. (2021). Right atrial-related structures in horses of interest during electrophysiological studies. Equine Veterinary Journal, 53(6), 1210–1217.
Zaragoza, C., Gomez-Guerrero, C., Martin-Ventura, J. L., Blanco-Colio, L., Lavin, B., Mallavia, B., Tarin, C., Mas, S., Ortiz, A., & Egido, J. (2011). Animal models of cardiovascular diseases. Journal of Biomedicine and Biotechnology, 2011, 497841.
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