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Articles

Characterization of neural crest-derived stem cells isolated from human bone marrow for improvement of transplanted islet function

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Pages 228-237 | Received 01 Jul 2019, Accepted 16 Aug 2019, Published online: 18 Oct 2019

References

  • Ryan EA, Paty BW, Senior PA, Shapiro AM. Risks and side effects of islet transplantation. Curr Diab Rep. 2004;4:304–9.
  • Barton FB, Rickels MR, Alejandro R, Hering BJ, Wease S, Naziruddin B, et al. Improvement in outcomes of clinical islet transplantation: 1999-2010. Diabetes Care. 2012;35:1436–45.
  • Bellin MD, Barton FB, Heitman A, Harmon JV, Kandaswamy R, Balamurugan AN, et al. Potent induction immunotherapy promotes long-term insulin independence after islet transplantation in type 1 diabetes. Am J Transplant. 2012;12:1576–83.
  • The Collaborative Islet Transplant Registry (CITR). Tenth Annual Report. Available at: https://citregistry.org/content/reports-publications-presentations: 2017.
  • NHS Blood and Transplant. Annual Report on Pancreas and Islet Transplantation 2017/18. Available at: https://www.odt.nhs.uk/statistics-and-reports/organ-specific-reports/: 2018.
  • Carlsson PO, Palm F, Mattsson G. Low revascularization of experimentally transplanted human pancreatic islets. J Clin Endocrinol Metab. 2002;87:5418–23.
  • Lau J, Carlsson PO. Low revascularization of human islets when experimentally transplanted into the liver. Transplantation. 2009;87:322–5.
  • Lau J, Kampf C, Mattsson G, Nyqvist D, Kohler M, Berggren PO, et al. Beneficial role of pancreatic microenvironment for angiogenesis in transplanted pancreatic islets. Cell Transplant. 2009;18:23–30.
  • Lau J, Mattsson G, Carlsson C, Nyqvist D, Kohler M, Berggren PO, et al. Implantation site-dependent dysfunction of transplanted pancreatic islets. Diabetes. 2007;56:1544–50.
  • Brissova M, Fowler M, Wiebe P, Shostak A, Shiota M, Radhika A, et al. Intraislet endothelial cells contribute to revascularization of transplanted pancreatic islets. Diabetes. 2004;53:1318–25.
  • Liljeback H, Grapensparr L, Olerud J, Carlsson PO. Extensive loss of islet mass beyond the first day after intraportal human islet transplantation in a mouse model. Cell Transplant. 2016;25:481–9.
  • Olsson R, Olerud J, Pettersson U, Carlsson PO. Increased numbers of low-oxygenated pancreatic islets after intraportal islet transplantation. Diabetes. 2011;60:2350–3.
  • Westermark GT, Westermark P, Nordin A, Tornelius E, Andersson A. Formation of amyloid in human pancreatic islets transplanted to the liver and spleen of nude mice. Ups J Med Sci. 2003;108:193–203.
  • Westermark P, Andersson A, Westermark GT. Islet amyloid polypeptide, islet amyloid, and diabetes mellitus. Physiol Rev. 2011;91:795–826.
  • Espes D, Eriksson O, Lau J, Carlsson PO. Striated muscle as implantation site for transplanted pancreatic islets. J Transplant. 2011;2011:352043.
  • Rackham CL, Dhadda PK, Chagastelles PC, Simpson SJ, Dattani AA, Bowe JE, et al. Pre-culturing islets with mesenchymal stromal cells using a direct contact configuration is beneficial for transplantation outcome in diabetic mice. Cytotherapy. 2013;15:449–59.
  • Sakata N, Chan NK, Chrisler J, Obenaus A, Hathout E. Bone marrow cell cotransplantation with islets improves their vascularization and function. Transplantation. 2010;89:686–93.
  • Grapensparr L, Vasylovska S, Li Z, Olerud J, Jansson L, Kozlova E, et al. Co-transplantation of human pancreatic islets with post-migratory neural crest stem cells increases beta-cell proliferation and vascular and neural regrowth. J Clin Endocrinol Metab. 2015;100:E583–90.
  • Lau J, Vasylovska S, Kozlova EN, Carlsson PO. Surface coating of pancreatic islets with neural crest stem cells improves engraftment and function after intraportal transplantation. Cell Transplant. 2015;24:2263–72.
  • Olerud J, Kanaykina N, Vasylovska S, King D, Sandberg M, Jansson L, et al. Neural crest stem cells increase beta cell proliferation and improve islet function in co-transplanted murine pancreatic islets. Diabetologia. 2009;52:2594–601.
  • Borg DJ, Weigelt M, Wilhelm C, Gerlach M, Bickle M, Speier S, et al. Mesenchymal stromal cells improve transplanted islet survival and islet function in a syngeneic mouse model. Diabetologia. 2014;57:522–31.
  • Nagoshi N, Shibata S, Kubota Y, Nakamura M, Nagai Y, Satoh E, et al. Ontogeny and multipotency of neural crest-derived stem cells in mouse bone marrow, dorsal root ganglia, and whisker pad. Cell Stem Cell. 2008;2:392–403.
  • Coste C, Neirinckx V, Sharma A, Agirman G, Rogister B, Foguenne J, et al. Human bone marrow harbors cells with neural crest-associated characteristics like human adipose and dermis tissues. PLoS One. 2017;12:e0177962.
  • Brunt KR, Hall SR, Ward CA, Melo LG. Endothelial progenitor cell and mesenchymal stem cell isolation, characterization, viral transduction. Methods Mol Med. 2007;139:197–210.
  • Cragnolini AB, Friedman WJ. The function of p75NTR in glia. Trends Neurosci. 2008;31:99–104.
  • Ernfors P, Lee KF, Kucera J, Jaenisch R. Lack of neurotrophin-3 leads to deficiencies in the peripheral nervous system and loss of limb proprioceptive afferents. Cell. 1994;77:503–12.
  • Lee G, Kim H, Elkabetz Y, Al Shamy G, Panagiotakos G, Barberi T, et al. Isolation and directed differentiation of neural crest stem cells derived from human embryonic stem cells. Nat Biotechnol. 2007;25:1468–75.
  • Quirici N, Soligo D, Bossolasco P, Servida F, Lumini C, Deliliers GL. Isolation of bone marrow mesenchymal stem cells by anti-nerve growth factor receptor antibodies. Exp Hematol. 2002;30:783–91.
  • Fournier BP, Loison-Robert LS, Ferre FC, Owen GR, Larjava H, Hakkinen L. Characterisation of human gingival neural crest-derived stem cells in monolayer and neurosphere cultures. Eur Cell Mater. 2016;31:40–58.
  • Kosykh A, Ngamjariyawat A, Vasylovska S, Konig N, Trolle C, Lau J, et al. Neural crest stem cells from hair follicles and boundary cap have different effects on pancreatic islets in vitro. Int J Neurosci. 2015;125:547–54.
  • Kozlova EN, Jansson L. Differentiation and migration of neural crest stem cells are stimulated by pancreatic islets. Neuroreport. 2009;20:833–8.
  • Sandler S, Andersson A, Schnell A, Mellgren A, Tollemar J, Borg H, et al. Tissue culture of human fetal pancreas. Development and function of B-cells in vitro and transplantation of explants to nude mice. Diabetes. 1985;34:1113–19.
  • Otonkoski T. New tools for experimental diabetes research: cellular reprogramming and genome editing. Ups J Med Sci. 2016;121:146–50.
  • Saarimaki-Vire J, Balboa D, Russell MA, Saarikettu J, Kinnunen M, Keskitalo S, et al. An activating STAT3 mutation causes neonatal diabetes through premature induction of pancreatic differentiation. Cell Rep. 2017;19:281–94.
  • Grouwels G, Vasylovska S, Olerud J, Leuckx G, Ngamjariyawat A, Yuchi Y, et al. Differentiating neural crest stem cells induce proliferation of cultured rodent islet beta cells. Diabetologia. 2012;55:2016–25.
  • Nekrep N, Wang J, Miyatsuka T, German MS. Signals from the neural crest regulate beta-cell mass in the pancreas. Development. 2008;135:2151–60.
  • De Leu N, Heremans Y, Coppens V, Van Gassen N, Cai Y, D'Hoker J, et al. Short-term overexpression of VEGF-A in mouse beta cells indirectly stimulates their proliferation and protects against diabetes. Diabetologia. 2014;57:140–7.
  • Mwangi SM, Usta Y, Shahnavaz N, Joseph I, Avila J, Cano J, et al. Glial cell line-derived neurotrophic factor enhances human islet posttransplantation survival. Transplantation. 2011;92:745–51.
  • Montzka K, Lassonczyk N, Tschoke B, Neuss S, Fuhrmann T, Franzen R, et al. Neural differentiation potential of human bone marrow-derived mesenchymal stromal cells: misleading marker gene expression. BMC Neurosci. 2009;10:16.
  • Wislet-Gendebien S, Leprince P, Moonen G, Rogister B. Regulation of neural markers nestin and GFAP expression by cultivated bone marrow stromal cells. J Cell Sci. 2003;116:3295–302.
  • Sergent-Tanguy S, Michel DC, Neveu I, Naveilhan P. Long-lasting coexpression of nestin and glial fibrillary acidic protein in primary cultures of astroglial cells with a major participation of nestin(+)/GFAP(-) cells in cell proliferation. J Neurosci Res. 2006;83:1515–24.
  • Abe S, Yamaguchi S, Sato Y, Harada K. Sphere-derived multipotent progenitor cells obtained from human oral mucosa are enriched in neural crest cells. Stem Cells Transl Med. 2016;5:117–28.
  • Krejci E, Grim M. Isolation and characterization of neural crest stem cells from adult human hair follicles. Folia Biol (Praha). 2010;56:149–57.
  • Ngamjariyawat A, Turpaev K, Vasylovska S, Kozlova EN, Welsh N. Co-culture of neural crest stem cells (NCSC) and insulin producing beta-TC6 cells results in cadherin junctions and protection against cytokine-induced beta-cell death. PLoS One. 2013;8:e61828.