Impact of Combined Administration of Cryopreserved Mesenchimal Stem Cells and Neural Cell Aggregates on Recovery of Motor Activity in Rats with Intracerebral Hemorrhage

Authors

  • Kyrylo M. Zolotko 1 - Institute for Problems of Cryobiology and Cryomedicine of the National Academy of Sciences of Ukraine, Kharkiv, Ukraine; 2 - V.N. Karazin Kharkiv National University, Kharkiv, Ukraine
  • Olexandr M. Sukach 1 - Institute for Problems of Cryobiology and Cryomedicine of the National Academy of Sciences of Ukraine, Kharkiv, Ukraine; 2 - H.S. Skovoroda Kharkiv National Pedagogical University, Kharkiv, Ukraine
  • Antonina M. Kompaniets Institute for Problems of Cryobiology and Cryomedicine of the National Academy of Sciences of Ukraine, Kharkiv, Ukraine
  • Nataliia E. Piriatinska V.N. Karazin Kharkiv National University, Kharkiv, Ukraine

DOI:

https://doi.org/10.15407/cryo30.02.169

Keywords:

intracerebral hemorrhage, rats, cryopreservation, aggregates, neural cells, mesenchymal stem cells, implantation, behavioral tests

Abstract

The effect of implantation of cryopreserved neural cells (NCs) within the neural cells aggregates (NCAs) together with mesenchymal stem cells (MSCs) on the recovery of rat behavioural functions and motor activity after intracerebral hemorrhage (ICH) has been studied. The ICH was simulated by stereotactic injection of collagenase into rat striatum, resulted in loss of sensitivity on the affected side, disorder in motor activity and significant asymmetry of sensory-motor deficits in animals. The cryopreserved NCs (1.5 × 106 cells) within the aggregates and cryopreserved MSCs (1.0 × 106 cells) were implanted into the lateral ventricles of rat brain. A significant recovery of tactile sensitivity, improvement in the skilled tasks performance, as well as a decrease in the asymmetry of sensory-motor deficits in the ICH rats after implantation of cryopreserved NCAs, as well as the combination of the latter with MSCs, have been experimentally established. The implantation of cryopreserved MSCs together with NCAs led to an earlier improvement in behavioural-motor functions in rats with ICH as compared to the animals received the NCAs only.

Probl Cryobiol Cryomed 2020; 30(2): 169–177

Author Biography

Antonina M. Kompaniets , Institute for Problems of Cryobiology and Cryomedicine of the National Academy of Sciences of Ukraine, Kharkiv, Ukraine

Department of Сryoprotectants

References

Chen AZ, Liu N, Huang H, et al. Outgrowth of neuronal axons on adipose-derived stem cell transplanting for treatment of cerebral infarction in rats. Chinese journal of cellular and molecular immunology. 2011; 27(8): 868-71.

Detante O, Jaillard A, Moisan A, et al. Bioterapies in stroke. Rev Neurol. 2014; 170: 779-98. CrossRef

Huang P, Freeman WD, Edenfield BH, et al. Safety and efficacy of intraventricular delivery of bone marrow-derived mesenchymal stem cells in hemorrhagic stroke model. Sci Rep [Internet]. 2019 Apr 5 [cited 2020 Apr 6]; 9(1):5674. Available from: https://www.nature.com/articles/s41598-019-42182-1 CrossRef

Jellema RK, Wolfs TG, Lima PV, et al. Mesenchymal stem cells induce T-cell tolerance and protect the preterm brain after global hypoxia-ischemia. PLoS One [Internet]. 2013 Aug 26 [cited 2020 Apr 3]; 8(8):e73031. Available from: https://journals.plos.org/plosone/article?id=10.1371/journal.pone.0073031 CrossRef

Leker RR. Fate and manipulations of endogenous neural stem cells following brain ischemia. Expert Opin Biol Ther. 2009; 9: 1117-25. CrossRef

Liang CM, Weng SJ, Tsai TH, et al. Neurotrophic and neuroprotective potential of human limbus-derived mesenchymal stromal cells. Cytotherapy. 2014; 16(10): 1371-83. CrossRef

MacLellan CL, Gyawali S, Colbourne F. Skilled reaching impairments follow intrastriatal hemorrhagic stroke in rats. Behav Brain Res. 2006; 175: 82-9. CrossRef

MacLellan CL, Silasi G, Poon CC, et al. Intracerebral hemorrhage models in rat: comparing collagenase to blood infusion. J Cereb Blood Flow Metab. 2008; 28: 516-25. CrossRef

Nonaka M, Yoshikawa M, Nishimura F, et al. Intraventricular transplantation of embryonic stem cell-derived neural stem cells in intracerebral hemorrhage rats. Neurol Res. 2004; 26(3): 265-72. CrossRef

Petrenko AYu, Petrenko YuA, Sukach AN, et al. [Cryopreservation of stem progenitor cells of fetal tissues]. In: Goltsev AN, editor. [Actual problems of cryobiology and cryomedicine]. Kharkiv: IPCC NASU; 2012. p. 295-336. Russian.

Prockop DJ, Oh JY. Mesenchymal stem/stromal cells (MSCs): role as guardians of inflammation. Mol Ther. 2012; 20(1): 14-20. CrossRef

Schaar KL, Brenneman MM, Savitz SI. Functional assessments in the rodent stroke model. Exp & Trans Stroke Med [Internet]. 2010 Jul 19 [Cited 2020 Apr 3]; 2:13. Available from: https://etsmjournal.biomedcentral.com/articles/10.1186/2040-7378-2-13 CrossRef

Song S, Park JT, Na JY, et al. Early expressions of hypoxia-inducible factor 1 alpha and vascular endothelial growth factor increase the neuronal plasticity of activated endogenous neural stem cells after focal cerebral ischemia. Neural Regen Res. 2014; 9: 912-18. CrossRef

Sukach AN, Liashenko TD, Shevchenko MV. [Properties of the isolated cells of newborn rats' nervous tissue in culture]. Biotechnol Acta. 2013; 6(3): 63-8. Russian. CrossRef

Sukach ÐN, Lebedinsky AS, Otchenashko OV, et al. Transplantation of cryopreserved rat fetal neural cells in suspension and in multicellular aggregates into rats with spinal cord injury. Cell and Organ Transplantology. 2016; 4(1): 22-8. CrossRef

Sukach OM, inventor; Institute for problems of cryobiology and cryomedicine National academy of sciences of Ukraine, assignee. [The method of neural precursor cells obtaining]. Patent of Ukraine 119411. 2017 September 25. Ukrainian.

Tang G, Liu Y, Zhang Z, et al. Mesenchymal stem cells maintain blood-brain barrier integrity by inhibiting aquaporin-4 upregulation after cerebral ischemia. Stem Cells. 2014; 32: 3150-62. CrossRef

Zolotko KM, Sukach AN, Kompaniets AM. [The dynamics of behavioral tests in rats with intracerebral hemorrhage after the injection of cryopreserved neural cells]. Visnyk problem biologii i medytsyny. 2019; (3): 108-12. Russian. CrossRef

Downloads

Published

2020-06-26

How to Cite

Zolotko, K., Sukach, O. ., Kompaniets, A., & Piriatinska, N. (2020). Impact of Combined Administration of Cryopreserved Mesenchimal Stem Cells and Neural Cell Aggregates on Recovery of Motor Activity in Rats with Intracerebral Hemorrhage. Problems of Cryobiology and Cryomedicine, 30(2), 169–177. https://doi.org/10.15407/cryo30.02.169

Issue

Section

Cryomedicine, Clinical and Experimental Transplantology