Serum creatine phosphokinase activity in rabbit during regeneration of experimentally damaged muscle tissue and after its stimulation by transplanted msc

Authors

  • N. V. Stadnyk National University of Life and Environmental Sciences of Ukraine, 15 Heroiv Oborony st., Kyiv 03041, Ukraine , National University of Life and Environmental Sciences of Ukraine, 15 Heroiv Oborony st., Kyiv 03041, Ukraine
  • R. R. Bokotko National University of Life and Environmental Sciences of Ukraine, 15 Heroiv Oborony st., Kyiv 03041, Ukraine , National University of Life and Environmental Sciences of Ukraine, 15 Heroiv Oborony st., Kyiv 03041, Ukraine
  • T. L. Savchuk National University of Life and Environmental Sciences of Ukraine, 15 Heroiv Oborony st., Kyiv 03041, Ukraine , National University of Life and Environmental Sciences of Ukraine, 15 Heroiv Oborony st., Kyiv 03041, Ukraine
  • M. A. Kulida National University of Life and Environmental Sciences of Ukraine, 15 Heroiv Oborony st., Kyiv 03041, Ukraine , National University of Life and Environmental Sciences of Ukraine, 15 Heroiv Oborony st., Kyiv 03041, Ukraine
  • A. Y. Mazurkevych National University of Life and Environmental Sciences of Ukraine, 15 Heroiv Oborony st., Kyiv 03041, Ukraine , National University of Life and Environmental Sciences of Ukraine, 15 Heroiv Oborony st., Kyiv 03041, Ukraine

Keywords:

allogenic mesenchymal stem cells, muscle tissue regeneration, laboratory animals, activity, isoform.

Abstract

According to statistics, in modern veterinary practice, the percentage of muscle injuries among sports and working animals ranges from 40-70% of sports injuries. Quite often there are cases with muscle injuries of skeletal muscles, namely extremities. This scientific work describes the research methodology, stages of research step-by-step, and studies the relationship of dynamics of the activity of a single biochemical blood indicator. The essence of the method was to model the injury of muscle tissue performed by the skin and fascia dissection and cutting off in the area of midplane of the pelvic head of the biceps femoris muscle, measuring 1.5 x 1.5 cm to a depth of 1.5 cm of muscle tissue on 105 laboratory animals, divided into 4 groups with the use of various treatment methods. We analyze the results of one of the most effective biochemical methods for diagnosing muscle fiber of skeletal system damage and compare the activity of the enzyme creatine phosphokinase iso-enzyme (MM) depending on the stage of the study. Other research methods such as clinical, biochemical, ultrasonographic, histological research methods were recorded on 4,7,10,14,21,28 days. We analyzed the latest literature sources and concluded that on the 4th and 7th days, the level of creatine phosphokinase in the groups with intravenous administration, intramuscular administration of allogeneic mesenchymal stem cells is higher than the reference values, but significantly lower compared to the control groups and the traditional method of treatment. But we observe a significant decrease in serum creatine phosphokinase levels in crawls on 10th day in the intravenous administration group compared to the control group of animals in 2 times, compared to traditional treatment in 1.6 times. The group of animals with intramuscular administration has reference values on the 14th day, compared with the control in 1.3 times lower, traditional treatment in 1.2 times. And on 21th day, we get reference values for a group of animals with traditional treatment. The level of creatine phosphokinase activity decreases in the control group of animals on 28th day of the research, which indicates a complete muscle rupture. The results of studies showed that the highest activity of the creatine phosphokinase enzyme during the study was shown by groups of animals with control and traditional treatment, which indicated significant structural, functional and destructive disorders of the muscle fibers of skeletal tissues with severe trauma. Thus, it is noted that the activity of the enzyme in conditions of damage of skeletal muscle tends to increase in accordance with the severity of the injury.

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2021-12-04

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