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Свидетельство о регистрации ПИ №ФС77-235В7
от 8 марта 2008 г. ISSN: 1815-445X
III Международный симпозиум "Актуальные вопросы клеточных технологий"







5-й Международный Конгресс Всемирной Ассоциации Репродуктивной Медицины ─ WARM-2010



The effects of multipotent mesenchymal stem cells transplantation on post traumatic processes after the experimental traumatic brain injury
Grigorian A.S1, Gilerovich E.G2, Pavlichenko N.N1, Kruglyakov P.V1, Sokolova I.B1, Polyntsev D.G1
1. Trans-Technologies Ltd., Saint-Petersburg, Russia
2. Intitute for Experimental Medicine, RAMS, Saint-Petersburg, Russia
Keywords:
multipotent mesenchyaml stem cells, craniocerebral trauma, traumatic brain injury, basal ganglia, neurons
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The influence of different transplantation methods of multipotent mesenchymal stromal cells (MMSC) on post-traumatic processes after the experimental brain injury in rats was studied. It was shown, that inspite of the transplantation method the MMSC hasten inflammation and glial scar formation in the injury boudary zone, and also preserve the normal morphology of the brain basal ganglia. The intravenous MMSC transplantation decreases the extent of brain tissue damage in neocortex and subcortical structures. It was shown by the first time that the injection of MMSC suspension into the injury boudary zone leads to the formation of neoplasms consisting of collagen-secreting MMSC, and also to the development of abnormal sinusoid cappilaries in the brain tissue in long-term post-traumatic period.

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1. Dezawa М., Hoshino М., Nabeshima Y. Marrow stromal cells: implications in health and disease in the nervous system. Curr. Opin. Mol. Med. 2005; 5: 723-32.
2. Haas S., Weidner N., Winker J. Adult stem cell therapy in stroke. Curr. Opin. Neurol. 2005; 18: 59-64.
3. Levy Y.S., Stroomza M., Melamed E., Offen D. Embryonic and adult stem cells as a source for cell therapy in Parkinson's disease. J. Mol. Meurosci. 2004; 361: 353-86.
4. Lu D., Mahmood A., Wang L. et al. Adult bone marrow stromal cells administered intravenously to rats after traumatic brain injury migrate into brain and improve neurological outcome. Reg. Transplant. 2001; 12: 559-63.
5. Lu D., Li Y., Wang L. et al. Intraarterial administration of marrow stromal cells in a rat model of traumatic brain injury. J. Neurotrauma. 2001; 8: 813-21.
6. Lu D., Li Y., Mahmood A. et al. Neural and marrow-derived stromal cell sphere transplantation in a rat model of traumatic brain injury. J. Neurosurg. 2002; 97: 935-40.
7. Mahmood A., Lu D., Qu C. et al. Human marrow stromal cell treatment provides long-lasting benefit after traumatic brain injury in rats.Neurosurgery. 2005; 57: 1026-31.
8. B. Mahmood A., Lu D., Wang L, Chopp M. Intracerebra transplantation of marrow stromal cells cultured with neurotrophic factors promotes functional recovery in adult rats subjected to traumatic brain injury. J. Neurotrauma 2002; 19: 1609-18.
9. Jaiswal R.K., Jaiswal N., Bruder S.P. et al. Adult human mesenchymal stem cell differentiation to the osteogenic or adipogenic lineage is regulated by mitogen-activated protein kinase. J. Biol. Chem. 2000; 13: 9645-52.
10. PittengerM.F., Mackay A.M., Beck S.С et al. Multilineage potential of adult human mesenchymal stem cells. Science 2004; 5411: 143-7.
11. Khoo M.L., Shen В., Tao H., Ma D.D. Long-term serial passage and neuronal differentiation capability of human bone marrow mesenchymal stem cells. Stem Cells Dev. 2008; 17: 883-96.
12. Korochkin L.I., Reviwin A.V., Ohotin V.E. Nejral'nye stvolovye kletki, ih znachenie v vosstanovitel'nyh processah v nervnoj sisteme. Morfologiya 2005; 127: 7-16.
13. Li Y., Chen J., Wang L. et al. Treatment of stroke in rat with intracarotid administration of marrow stromal cells. Neurology 2001; 12: 1666-72.
14. Zin'kova H.H., Gilerovich E.G., Sokolova I.B. i dr. Terapiya ishemicheskogo insul'ta golovnogo mozga u krys s pomow'ju mezenhimnyh stvolovyh kletok. Citologiya 2007; 7: 566-75.
15. Yarullin H.H. Klinicheskaya reojencefalografiya. M.: Medicina 1983; 270 s.
16. Karpov S.M., Gerasimova M.M., Reshetnik M.A., Mal'chenko N.I. Sostoyanie cerebral'noj gemodinamiki v ostrom i otdalennom periodah cherepno-mozgovoj travmy. Nevrologicheskij Vestnik 2004; t. XXXVI: 1-2: 8-11.
17. Shapira Y., Lam A.M., Paez A. et al. The influence of acute and chronic alcohol treatment on brain edema, cerebral infarct volume ans neurological outcome following experimental head trauma in rats. J. Neurosurg. Anesthesiol. 1997; 9: 118-27.
18. Paxinos G., Watson Ch. The rat brain in stereotaxic coordinates. New York: Academic Press 1998; 474 p.
19. Carvalho А.В., Quintanilha L.F., Dias J.V. et al. Bone marrow multipotent mesenchymal stromal cells do not reduce fibrosis of improve function in a rat model of severe chronic liver injury. Stem Cells 2008; 26: 1307-14.
20. Zhabotinskij Ju.M. Normal'naya i patologicheskaya morfologiya nejrona. P.: Medicina 1965; 323 s.
21. Lu D., Mahmood A., Wang L. et al. Adult bone marrow stromal cells administered intravenously to rats after traumatic brain injury migrate into brain and improve neurological outcome. Regeneration and Transplantation 2001; 35: 559-63.
22. Sykova E., Jendelova P. Migration, fate and in vivo imaging of adult stem cells in the CNS. Cell Death and Differentiation 2007; 14: 1336-42.
23. Harting M.T., Jimenez F., Xue X. et al. Intravenous mesenchymal stem cell therapy for traumatic brain injury. J. Neurosurg. 2009; 110: 1189-97.
24. Bhakta S., Hong P., Кос 0. The surface adhesion molecule CXCR4 stimulates mesenchymal stem cell migration to stromal cell-derived factor-1 in vitro but does not decrease apoptosis under serum deprivation. Cardiovasc. Revasc. Med. 2006; 7: 19-24.
25. Capone C, Frigerio S., Fumagalli S. et al. Neurosphere-derived cells exert a neuroprotective action by changing the ischemic microenvironment. PLoS ONE 2007; 2: 373.
26. Kitaori Т., Ito H., Schwarz E.M et al. Stromal cell-derived factor 1/CXCR4 signaling is critical for the recruitment of mesenchymal stem cells to the fracture site during skeletal repair in a mouse model. Arthritis Rheum. 2009; 60: 813-23.
27. Eglund U., Bjorklund A., Wictorin K. et al. Grafted neural stem cells develop into functional pyramidal neurons and integrate into host cortical circuity. PNAS USA 2002; 6: 17089-94.
28. Zhang R., Oorschot D.E. Total number of neurons in the habenular nuclei of the rat epithalamus: a stereological study. J. Anat. 2006; 208: 577-85.
29. Gallagher M., Holland P.С The amygdala complex: multiple roles in associative learning and attention. PNAS USA 1994; 91: 11771-6.
30. Hewson K.A., Tung L.Y.C., Connell D.W. et al. The rat arcuate nucleus integrates peripheral signals provided by leptin, insulin, and a ghrelin mimetic. Diabetes 2002; 51: 3412-9.
31. Zhang C, Saatman K.E., Royo N.C. et al. Delayed transplantation of human neurons following brain injury in rats: a long-term graft survival and behavior study. J. Neurotrauma 2005; 22: 1456-74.
32. Tondreau Т., Lagneaux L., Dejeneffe M. et al. Bone marrow-derived mesenchymal stem cells already express specific neural proteins before any differentiation. Differentiation 2004; 7: 319-26.
33. Croll S.D., Goodman J.H., Scharfman H.E. Vascular endothelia growth factor [VEGF] in seizures: a double-edged sword. Adv. Exp. Med. Biol. 2004; 548: 57-68.
34. Croll S.D., Wiegand S.J. Vascular growth factors in cerebra ischemia. Mol. Neurobiol. 2001; 2-3: 121-35.
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