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An Increase in Mesenchymal Stem Cells Expressing Nestin in Bone-Marrow-Derived Primary Cells Stimulates Neurogenic Differentiation in Rat 원문보기

Journal of embryo transfer = 한국수정란이식학회지, v.32 no.2, 2017년, pp.39 - 45  

Han, Na Rae (Department of Animal Life Science, Kangwon National University) ,  Lee, Hyun (Department of Animal Life Science, Kangwon National University) ,  Yun, Jung Im (Division of Animal Resource Science, Kangwon National University) ,  Kim, Choonghyo (Department of Neurosurgery, Kangwon National University Hospital, School of Medicine, Kangwon National University) ,  Hwang, Jae Yeon (Department of Cellular and Molecular Physiology, Yale School of Medicine) ,  Park, Kyu Hyun (Department of Animal Life Science, Kangwon National University) ,  Lee, Seung Tae (Department of Animal Life Science, Kangwon National University)

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Mesenchymal stem cells (MSCs) have been considered an alternative source of neuronal lineage cells, which are difficult to isolate from brain and expand in vitro. Previous studies have reported that MSCs expressing Nestin ($Nestin^+$ MSCs), a neuronal stem/progenitor cell marker, exhibit ...

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제안 방법

  • These results emphasize the importance of Nestin+ MSCs in the mass production of neuronal-lineage cells from MSCs. Accordingly, in this study, we aimed to identify the presence of MSCs with NSPC characteristics in uncultured and cultured bone-marrow-derived primary cells (BMPCs) and investigate their effects on BMPC differentiation into neuronal-lineage cells.
  • 5 mM isobutylmethylxanthine (IBMX; Sigma-Aldrich), 1 mM dibutyryl cyclic AMP (dbcAMP; Sigma-Aldrich), 10 μg/L human basic fibroblast growth factor (bFGF; Peprotech, Rocky Hill, NJ), and 10 μg/L human epidermal growth factor (hEGF; Peprotech) was conducted for 7 days. Cells of neural lineage were rinsed with DPBS, retrieved using 0.25% trypsin-EDTA, and adjusted for flow cytometric analysis.
  • Subsequently, to investigate the effects of in vitro culture of BMPCs on the generation of MSCs with NSPC characteristics, combinatorial expression of CD90 and Nestin was measured at each passage during the culture of BMPCs up to the fifth passage. Finally, to identify the effects of different population ratios of MSCs expressing NSPC marker proteins in cultured BMPCs on differentiation into neuronal lineage cells, BMPCs at passages showing the highest and lowest percentages of MSCs with NSPC characteristics were differentiated into three neuronal lineage cells, and the efficiencies of neurogenic differentiation were compared.
  • Subsequently, to guide neurogenic differentiation, incubation of pre-induced cells in neural induction medium consisting of HG-DMEM supplemented with 10% (v/v) heat-inactivated FBS, 0.5 mM isobutylmethylxanthine (IBMX; Sigma-Aldrich), 1 mM dibutyryl cyclic AMP (dbcAMP; Sigma-Aldrich), 10 μg/L human basic fibroblast growth factor (bFGF; Peprotech, Rocky Hill, NJ), and 10 μg/L human epidermal growth factor (hEGF; Peprotech) was conducted for 7 days.
  • Firstly, to determine whether MSCs with NSPC characteristics exist in a heterogeneous cell population derived from bone marrow, combinatorial expression of CD90 (an MSC marker) and Nestin (an NSPC marker) was measured in uncultured BMPCs. Subsequently, to investigate the effects of in vitro culture of BMPCs on the generation of MSCs with NSPC characteristics, combinatorial expression of CD90 and Nestin was measured at each passage during the culture of BMPCs up to the fifth passage. Finally, to identify the effects of different population ratios of MSCs expressing NSPC marker proteins in cultured BMPCs on differentiation into neuronal lineage cells, BMPCs at passages showing the highest and lowest percentages of MSCs with NSPC characteristics were differentiated into three neuronal lineage cells, and the efficiencies of neurogenic differentiation were compared.

대상 데이터

  • Six three-week-old male Sprague-Dawley (SD) rats were purchased from DBL (Eumseong, Korea) and used as bone marrow cell donors. All animal housing, handling and experimental procedures were performed according to the Animal Care and Use Guidelines of Kangwon National University and were approved by the Institutional Animal Care and Use Committee (IACUC) of Kangwon National University (IACUC approval no.

이론/모형

  • Significant differences were determined by analysis of variance (ANOVA), and a least-square difference or Duncan’s method was used for comparisons among groups.
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참고문헌 (19)

  1. Armstrong L, Al-Aama J, Stojkovic M, Lako M. 2014. Concise review: the epigenetic contribution to stem cell ageing: can we rejuvenate our older cells? Stem Cells 32:2291-2298. 

  2. Augello A, De Bari C. 2010. The regulation of differentiation in mesenchymal stem cells. Hum. Gene. Ther. 21:1226-1238. 

  3. Bae KS, Park JB, Kim HS, Kim DS, Park DJ, Kang SJ. 2011. Neuron-like differentiation of bone marrow-derived mesenchymal stem cells. Yonsei Med. J. 52:401-412. 

  4. Croft AP, Przyborski SA. 2009. Mesenchymal stem cells expressing neural antigens instruct a neurogenic cell fate on neural stem cells. Exp. Neurol. 216:329-341. 

  5. Eshghi S, Schaffer DV. 2008. Engineering microenvironments to control stem cell fate and function. Stem Book, Harvard Stem Cell Institute, Cambridge, MA. 

  6. Farrell MJ, Shin JI, Smith LJ, Mauck RL. 2015. Functional consequences of glucose and oxygen deprivation on engineered mesenchymal stem cell-based cartilage constructs. Osteoarthritis Cartilage 23:134-142. 

  7. Fu L, Zhu L, Huang Y, Lee TD, Forman SJ, Shih CC. 2008. Derivation of neural stem cells from mesenchymal stem cells: evidence for a bipotential stem cell population. Stem Cells. Dev. 17:1109-1121. 

  8. Huat TJ, Khan AA, Pati S, Mustafa Z, Abdullah JM, Jaafar H. 2014. IGF-1 enhances cell proliferation and survival during early differentiation of mesenchymal stem cells to neural progenitor-like cells. BMC Neurosci. 15:91. 

  9. Jakel RJ, Schneider BL, Svendsen CN. 2004. Using human neural stem cells to model neurological disease. Nat. Rev. Genet. 5:136-144. 

  10. Kim SU, de Vellis J. 2009. Stem cell-based cell therapy in neurological diseases: a review. J. Neurosci. Res. 87:2183-2200. 

  11. Lee IS, Jung K, Kim M, Park KI. 2010. Neural stem cells: properties and therapeutic potentials for hypoxic-ischemic brain injury in new born infants. Pediatr. Int. 52:855-865. 

  12. Lee ST, Gong SP, Yum KE, Lee EJ, Lee CH, Choi JH, Kim DY, Han H, Kim KS, Hysolli E, Ahn JY, Park IH, Han JY, Jeong JW, Lim JM. 2013. Transformation of somatic cells into stem cell-like cells under a stromal niche. FASEB J. 27:2644-2656. 

  13. Mothe AJ, Zahir T, Santaguida C, Cook D, Tator CH. 2011. Neural stem/progenitor cells from the adult human spinal cord are multipotent and self-renewing and differentiate after transplantation. PLoS One 6:e27079. 

  14. Nam H, Lee KH, Nam DH, Joo KM. 2015. Adult human neural stem cell therapeutics: Current developmental status and prospect. World J. Stem Cells 7:126-136. 

  15. Ramos-Zuniga R, Gonzalez-Perez O, Macias-Ornelas A, Capilla-Gonzalez V, Quinones-Hinojosa A. 2012. Ethical implications in the use of embryonic and adult neural stem cells. Stem Cells Int. 2012:470949. 

  16. Smith R, Bagga V, Fricker-Gates RA. 2003. Embryonic neural progenitor cells: the effects of species, region, and culture conditions on long-term proliferation and neuronal differentiation. J. Hematother. Stem Cell Res. 12:713-725. 

  17. Suksuphew S, Noisa P. 2015. Neural stem cells could serve as a therapeutic material for age-related neurodegenerative diseases. World J. Stem Cells 7:502-511. 

  18. Wislet-Gendebien S, Hans G, Leprince P, Rigo JM, Moonen G, Rogister B. 2005. Plasticity of cultured mesenchymal stem cells: switch from nestin-positive to exitable neuron-like phenotype. Stem Cells 23:392-402. 

  19. Wislet-Gendebien S, Leprince P, Moonen G, Rogister B. 2003. Regulation of neural markers nestin and GFAP expression by cultivated bone marrow stromal cells. J. Cell Sci. 116:3295-3302. 

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