Bulletin of Experimental Biology and Medicine

, Volume 164, Issue 1, pp 75–79 | Cite as

Effects of Bone Marrow Multipotent Mesenchymal Stromal Cells and Their Secretion Products on the Cellular Composition of the Thymus and Spleen of Female Wistar Rats with Experimental Chronic Inflammation of the Internal Genitals

  • T. I. Dergacheva
  • A. V. Shurlygina
  • E. V. Mel’nikova
  • O. B. Gritsyk
  • M. V. Tenditnik
  • O. V. Poveshchenko
  • V. I. Konenkov
Article
  • 27 Downloads

The effects of bone marrow multipotent mesenchymal stromal cells and their secretion products on the subpopulation composition of thymic and splenic lymphocytes were studied in female Wistar rats with experimental chronic inflammatory process in the internal genitals. Stromal cells and medium conditioned by these cells in different administration routes (intravenous or lymphotropic injection) produces different modulating effect on blood leukocyte count and on subpopulation composition of the splenic and thymic lymphocytes. The most manifest anti-inflammatory effect was observed after lymphotropic injection of multipotent mesenchymal stromal cells creating a high concentration and long persistence of the factors produced by these cells in the focus of inflammation.

Key Words

multipotent mesenchymal stromal cells lymphocytes inflammation thymus spleen 

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References

  1. 1.
    Ankirskaya AS. Bacterial vaginosis: clinical lecture. Akush. Gin. 2008;(Suppl.):13-16. Russian.Google Scholar
  2. 2.
    Biology of Stem Cells and Cell Technologies. Vol. 1. Pal’tsev MA, ed. Moscow, 2009. Russian.Google Scholar
  3. 3.
    Dergacheva TI, Shurlygina AV, Konenkov VI. Impact of different routes of administration of antibiotics on the genital mucosal lymphoid cells in the treatment of acute salpingitis and oophoritis in reproductive-aged women. Ross. Vestn. Akushera-Ginekologa. 2013;13(1):7-11. Russian.Google Scholar
  4. 4.
    Lykov AP, Bondarenko NA, Surovtseva MA, Kim II, Poveshchenko OV, Ishchenko IY, Kabakov AV, Kazakov OV, Poveshchenko AF, Zav’yalov EL, Michurina SV, Konenkov VI. Effect of Natural and 24-h Illumination on Mesenchymal Stem Cells. Bull. Exp. Biol. Med. 2016;162(1):134-137.CrossRefPubMedGoogle Scholar
  5. 5.
    Krasnopol’skii VI, Buyanova SN, Shchukona NA. Purulent Gynecology. Moscow, 2001. Russian.Google Scholar
  6. 6.
    Kuakov VI. Modern principles of antibacterial therapy in obstetrics, gynecology, and neonatology. Akush. Gin. 2002;(4):3-6. Russian.Google Scholar
  7. 7.
    Lykov AP, Kabakov AV, Poveshchenko OV, Bondarenko NA, Poveshchenko AF, Kazakov OV, Nikonoriva YV, Konenkov VI. Efficiency of therapy by the cellular product of the sharp myocardial infarction at rats of the wistar line according to bioelectric activity of the myocardium. Mezhd. Zh. Prikladn. Fundamental. Issled. 2014;(8-4):78-84. Russian.Google Scholar
  8. 8.
    Starkova EV, Dergacheva TI, Astashov VV. Patent RU No. 2142163. Method for modelling inflammatory diseases in female genital organs. Bull. No. 33. Published November 27, 1999.Google Scholar
  9. 9.
    Poveschenko AF, Shundrin LA, Avrorov PA, Solovieva AO, Miller TV, Zubareva KE, Voloshina TV, Poveschenko OV, Konenkov VI. Molecular technology research of bone marrow cells migration. Sovremen. Naukoemk. Tekhnol. 2015;(11):22-30. Russian.Google Scholar
  10. 10.
    Serov VN, Tsaregrordtseva MV, Kozhin AA. Clinical and immunological factors in the formation of autoimmune inflammatory ovarian insufficiency. Akush. Gin. 2007;(6):28-33. Russian.Google Scholar
  11. 11.
    Freidlin IS. Regulatory t-cells: origin and function. Med. Immunol. 2005;7(4):347-354. Russian.CrossRefGoogle Scholar
  12. 12.
    Gardó S. Inflammation of the pelvis minor. Orv. Hetil. 1998;139(36):2115-2120.PubMedGoogle Scholar
  13. 13.
    Wang M, Yang Y, Yang D, Luo F, Liang W, Guo S, Xu J. The immunomodulatory activity of human umbilical cord blood-derived mesenchymal stem cells in vitro. Immunology. 2009;126(2):220-232.CrossRefPubMedPubMedCentralGoogle Scholar
  14. 14.
    Yang WY, Shao Y, Lopez-Pastrana J, Mai J, Wang H, Yang XF. Pathological conditions re-shape physiological Tregs into pathological Tregs. Burns Trauma. 2015;3(1):pii: 1.Google Scholar

Copyright information

© Springer Science+Business Media, LLC, part of Springer Nature 2017

Authors and Affiliations

  • T. I. Dergacheva
    • 1
  • A. V. Shurlygina
    • 1
    • 2
  • E. V. Mel’nikova
    • 2
  • O. B. Gritsyk
    • 2
  • M. V. Tenditnik
    • 2
  • O. V. Poveshchenko
    • 1
  • V. I. Konenkov
    • 1
  1. 1.Research Institute of Clinical and Experimental LymphologyNovosibirskRussia
  2. 2.Research Institute of Physiology and Basic MedicineNovosibirskRussia

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