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Linear dimensions of granulation tissue components in purulent wounds in horses
Accidental purulent wounds in horses are a fairly common pathology associated with the regimes of keeping and operating animals. More often they are localized in the area of the hind limbs (41.7%). The problem of treating wounded animals is quite often associated with the insufficient effectiveness of existing schemes. Due to this the purpose of our research was to test the effectiveness of the developed complex agent of antimicrobial and sorption-detoxification action (consisting of 2% ofloxacin and 98% methyl silicic acid hydrogel) Xeroflox in purulent skin-muscular wounds in horses and to study dynamic changes in the structure of granulation tissue (diameter of endothelial cell nuclei, thickness of the vessel wall, thickness of fibrils, parameters of the vascular bed and the number of cells of granulation tissue). It was established that in the process of healing purulent skin-muscular wounds in horses, the formation of granulation tissue occurs with pronounced stage changes. The formation of the first components of granulation tissue is observed already on the second day after the injury in the direction from the peripheral areas to the center. The end of the formation of connective tissue is observed at different times depending on the selected agent in the first phase of the wound process. The results of clinical testing of the developed complex drug with antimicrobial and sorption-detoxification action Xeroflox (the composition includes 2% ofloxacin and 98% methylsilicic acid hydrogel) for purulent skin-muscular wounds in horses were obtained. The choice of Ofloxacin as an antibacterial component is due to the high sensitivity of the isolated microflora to it. When using Xeroflox in the first phase of the wound process, starting from the second day, the formation of granulation tissue was recorded. The use of Xeroflox, compared with Levomekol, provided a reduction in the healing time of accidental skin-muscular wounds from 24-26 to 20 days (p˂0.001), which is associated with an earlier formation of the arteriovenous bridge in the granulation tissue, which was accompanied by a dynamic increase in the diameter of the nuclei of endothelial cells and the thickness of the vessel walls, as well as the organization of connective tissue fibers.
Key words: horses, wound, wound infection, linear dimensions, endothelial cells, vessel wall, fibrils, treatment.
- Olofsson, T.C., Butler, E., Lindholm, C., Nilson, B., Michanek, P., Vásquez, A. (2016). Fighting off wound pathogens in horses with honeybee lactic acid bacteria. Current Microbiology, Vol. 73, рр. 463–473. Available at:https://link.springer.com/ article/10.1007/s00284-016-1080-2
- Ludwig, E.K., van Harreveld, P.D. (2018). Equine wounds over synovial structures. Veterinary Clinics: Equine Practice, Vol. 34, no. 3, рр. 575–590. Available at: https://www.sciencedirect.com/science/article/abs/pii/S0749073918300439 ?via%3Dihub
- McIver, V.C. (2020). Studies on the effect of various topical agents on second intention wound healing of the equine distal limb (Doctoral dissertation). Available at: https://core.ac.uk/download/pdf/404687842.pdf
- Harman, R.M., Theoret, C.L., Van de Walle, G.R. (2021). The horse as a model for the study of cutaneous wound healing. Advances in Wound Care, Vol. 10, no. 7, рр. 381–399. DOI:10.1089/wound.2018.0883
- Wilmink, J.M. (2016). Differences in wound healing between horses and ponies. Equine wound management, рр. 14–29. DOI:10.1002/9781118999219.ch2
- Alhajj, M., Goyal, A. (2021). Physiology, granulation tissue. In Stat Pearls. Stat Pearls Publishing. Available at:https://europepmc.org/article/nbk/nbk 554402#free-full-text
- Altoé, L.S., Alves, R.S., Sarandy, M.M., Morais-Santos, M., Novaes, R.D., Gonçalves, R.V. (2019). Does antibiotic use accelerate or retard cutaneous repair? A systematic review in animal models. PloS one, Vol. 14, no. 10. DOI:10.1371/journal.pone.0223511
- Orsini, J.A. (2017). Update on Managing Serious Wound Infections in Horses: Wounds Involving Soft Tissues. Journal of Equine Veterinary Science, Vol. 55, рр. 18–26. DOI:10.1016/j.jevs.2017.01.012
- Wilmink, J.M., van Herten, J., van Weeren, P.R., Barneveld, A. (2002). Retrospective study of primary intention healing and sequestrum formation in horses compared to ponies under clinical circumstances. Equine veterinary journal, Vol. 34, no. 3, рр. 270–273. DOI:10.2746/042516402776186047
- Kamoun, E.A., Kenawy, E.R.S., Chen, X. (2017). A review on polymeric hydrogel membranes for wound dressing applications: PVA-based hydrogel dressings. Journal of advanced research, Vol. 8, no. 3, рр. 217–233. DOI:10.1016/j.jare.2017.01.005
- Batool, M., Khurshid, S., Qureshi, Z., Daoush, W.M. (2021). Adsorption, antimicrobial and wound healing activities of biosynthesised zinc oxide nanoparticles. Chemical Papers, Vol. 75, no. 3, рр. 893–907. DOI:10.1007/s11696-020-01343-7
- Stotskyi, O.H. (2017). Zminy temperatury poverkhni ranovoho lozha v protsesi zahoiennia hniinykh shkirno-miazovykh ran u konei [Changes in wound bed surface temperature during the healing process of purulent cutaneous-muscular wounds in horses]. Naukovyi visnyk veterynarnoi medytsyny [Scientific Bulletin of Veterinary Medicine]. Vol. 1, pp. 31–35. (In Ukrainian).
- Ruzickova, P., Trencart, P., Laverty, S. (2017). Spontaneous hoof capsule loss following lacerations of the equine distal limb. Equine Veterinary Education, Vol. 29, no. 9, рр. 472–477. DOI:10.1111/eve.12597
- Karagianni, A.E., Lisowski, Z.M., Hume, D.A., Scott Pirie, R. (2021). The equine mononuclear phagocyte system: The relevance of the horse as a model for understanding human innate immunity. Equine veterinary journal, Vol. 53, no. 2, рр. 231– 249. DOI:10.1111/evj.13341
- Lux, C.N. (2022). Wound healing in animals: a review of physiology and clinical evaluation. Veterinary dermatology, Vol. 33, no. 1, рр. 91–127. DOI:10.1111/vde.13032
- Fingerhut, L., Dolz, G., de Buhr, N. (2020). What is the evolutionary fingerprint in neutrophil granulocytes?. International journal of molecular sciences, Vol. 21, no. 12, 4523 p. DOI:10.3390/ijms21124523
- Jørgensen, E., Bay, L., Skovgaard, L.T., Bjarnsholt, T., Jacobsen, S. (2019). An equine wound model to study effects of bacterial aggregates on wound healing. Advances in wound care, Vol. 8, no. 10, рр. 487–498. DOI:10.1089/wound.2018.0901
- Ribeiro, G., Carvalho, L., Borges, J., Prazeres, J. (2024). The Best Protocol to Treat Equine Skin Wounds by Second Intention Healing: A Scoping Review of the Literature. Animals: an open access journal from MDPI, Vol. 14, no. 10, 1500 p. DOI:10.3390/ani14101500
- Du Cheyne, C., Martens, A., De Spiegelaere, W. (2021). High numbers of cd163-positive macrophages in the fibrotic region of exuberant granulation tissue in horses. Animals, Vol. 11, no. 9, 2728 p. DOI:10.3390/ani11092728
- Freeman, S.L., Ashton, N.M., Elce, Y.A., Hammond, A., Hollis, A.R., Quinn, G. (2021). BEVA primary care clinical guidelines: Wound management in the horse. Equine veterinary journal, Vol. 53, no. 1, рр. 18–29. DOI:10.1111/evj.13289.
- Theoret, C.L., Barber, S.M., Moyana, T.N., Gordon, J.R. (2001). Expression of transforming growth factor β1, β3, and basic fibroblast growth factor in full‐thickness skin wounds of equine limbs and thorax. Veterinary Surgery, Vol. 30, no. 3, рр. 269–277. DOI:10.1053/jvet.2001.23341.
- Miller, C.B., Wilson, D.A., Keegan, K.G., Kreeger, J.M., Adelstein, E.H., Ganjam, V.K. (2000). Growth characteristics of fibroblasts isolated from the trunk and distal aspect of the limb of horses and ponies. Veterinary Surgery, Vol. 29, no. 1, рр.1–7. DOI:10.1111/j.1532-950x.2000.00001.x.
- Wilmink, J.M., Nederbragt, H., Van Weeren, P.R., Stolk, P.W.T., Barneveld, A. (2001). Differences in wound contraction between horses and ponies: the in vitro contraction capacity of fibroblasts. Equine veterinary journal, Vol. 33, no. 5, рр. 499– 505. DOI:10.2746/042516401776254817
- Lepault, É., Céleste, C., Doré, M., Martineau, D., Theoret, C. L. (2005). Comparative study on microvascular occlusion and apoptosis in body and limb wounds in the horse. Wound repair and regeneration, Vol. 13, no. 5, рр. 520–529. DOI:10.1111/j.1067-1927.2005.00073.x.
- Wise, L.M., Bodaan, C.J., Stuart, G.S., Real, N.C., Lateef, Z., Mercer, A.A., Riley, C.B., Theoret, C.L. (2018). Treatment of limb wounds of horses with orf virus IL-10 and VEGF-E accelerates resolution of exuberant granulation tissue, but does not prevent its development. PloS one, Vol. 13, no. 5. DOI:10.1371/journal.pone.0197223
- Stotskyi, O.H. (2012). Mikrobnyi peizazh hniinykh ran u konei zalezhno vid yikh anatomo-topohrafichnoi lokalizatsii [Microbial landscape of purulent wounds in horses depending on their anatomical and topographic localization]. Visnyk Sumskoho natsionalnoho ahrarnoho universytetu. Seriia: Veterynarna medytsyna [Bulletin of Sumy National Agrarian University. Series: Veterinary Medicine], Vol. 1, pp. 137–140. Available at: http://visnyk.snau.edu.ua/ sample/files/snau_2012_1_vet_30/JRN/40.pdf
- Stotskyi, O.H., Pohorielov, M.V. (2010). Strukturna ta morfolohichna orhanizatsiia hranuliatsiinoi tkanyny u konei za vypadkovykh ran [Structural and morphological organization of granulation tissue in horses with accidental wounds]. Naukovyi visnyk Bilotserkivskoho NAU [Scientific Bulletin of the Bila Tserkva National Academy of Sciences], Vol. 4, no. 76, pp. 146–151.
- Kayode, O.A. (2017). Epidemiological study on wound distribution pattern in horses presented at two veterinary clinics in south west, Nigeria between 2007–2010. Journal of Dairy, Veterinary & Animal Research, Vol. 5, no. 4. DOI:10.15406/jdvar.2017.05.00148
- Theoret, C., Wilmink, J.M. (2016). Exuberant granulation tissue. Equine wound management. рр. 369–384. DOI:10.1002/9781118999219.ch15
- Faccin, M., Wiener, D.J., Rech, R.R., Santoro, D., Rodrigues Hoffmann, A. (2023). Common superficial and deep cutaneous bacterial infections in domestic animals: A review. Veterinary pathology. Vol. 60, no. 6, рр. 796–811. DOI:10.1177/03009858231176558
- Wilmink, J.M., Archer, D.C. (2021). Complications of excessive granulation tissue. Complications in Equine Surgery. рр. 204–211. DOI:10.1002/9781119190 332.ch19
- Dahlgren, L.A. (2018). Regenerative medicine therapies for equine wound management. Veterinary Clinics: Equine Practice, Vol. 34, no. 3, pp. 605–620. DOI:10. 1016/j.cveq.2018.07.009
- Cardona-Álvarez, J., Vargas-Vilória, M., Patarroyo-Salcedo, J. (2017). Pythiosis cutaneous in horses treated with triamcinolone acetonide. Part 2. Histological and histochemical description. Revista MVZ Córdoba, Vol. 22, no. 1, рр. 5638–5652. DOI:10.21897/rmvz.924
- Berry, D.B., Sullins, K.E. (2004). Effects of topical application of antimicrobials and bandaging on healing and granulation tissue formation in wounds of the distal aspect of the limbs in horses. American Journal of Veterinary Research, Vol. 64, no. 1, pp. 88–92. DOI:10.2460/ajvr.2003.64.88
- Sørensen, M.A., Petersen, L.J., Bundgaard, L., Toft, N., Jacobsen, S. (2014). Regional disturbances in blood flow and metabolism in equine limb wound healing with formation of exuberant granulation tissue. Wound Repair and Regeneration, Vol. 22, no. 5, pp. 647–653. DOI:10.1111/wrr.12207
- Lepault, É., Céleste, C., Doré, M., Martineau, D., Theoret, C.L. (2005). Comparative study on microvascular occlusion and apoptosis in body and limb wounds in the horse. Wound repair and regeneration, Vol. 13, no. 5, pp. 520–529. DOI:10.1111/j.1067-1927.2005.00073.x
- Dubuc, V., Lepault, É., Theoret, C.L. (2006). Endothelial cell hypertrophy is associated with microvascular occlusion in horse wounds. Canadian journal of veterinary research, Vol. 70, no. 3, 206 p. Available at:https://pmc.ncbi.nlm.nih.gov/articles/PMC1477938/
- Lawless, S.P., Cohen, N.D., Lawhon, S.D., Chamoun-Emanuelli, A.M., Wu, J., Rivera-Vélez, A., Whitfield-Cargile, C.M. (2020). Effect of gallium maltolate on a model of chronic, infected equine distal limb wounds. PloS one, Vol. 15, no. 6. DOI:10.1371/journal.pone.0235006
- Dart, A.J., Sole‐Guitart, A., Stashak, T.S., Theoret, C. (2016). Management practices that influence wound infection and healing. Equine wound management, pp. 47–74. DOI:10.1002/9781118999219.ch4
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