TY - JOUR
T1 - Adult muscle-derived stem cells engraft and differentiate into insulin-expressing cells in pancreatic islets of diabetic mice
AU - Mitutsova, Violeta
AU - Yeo, Wendy Wai Yeng
AU - Davaze, Romain
AU - Franckhauser, Celine
AU - Hani, El-Habib
AU - Abdullah, Syahril
AU - Mollard, Patrice
AU - Schaeffer, Marie
AU - Fernandez, Anne
AU - Lamb, Ned J.C.
N1 - Funding Information:
Funding for this project was provided by the Association pour la Recherche sur le Diabète (ARD, France; http://www.a-rd.fr) and the Fondation pour la Recherche Medicale (FRM; ref: DPC20111122986, https://www.frm.org) to AF; Fundamental Research Grant Scheme (FRGS) (Ref: FRGS/1/2014/SKK01/UPM/02/1) to SA; VM was supported by the l'Association Française contre les Myopathies (AFM; http:// www.afm-telethon.com) and WWYY was supported by an Erasmus Mundus (MAHEVA program; http://www.maheva.eu) scholarship.
Publisher Copyright:
© 2017 The Author(s).
PY - 2017/4/18
Y1 - 2017/4/18
N2 - Background: Pancreatic beta cells are unique effectors in the control of glucose homeostasis and their deficiency results in impaired insulin production leading to severe diabetic diseases. Here, we investigated the potential of a population of nonadherent muscle-derived stem cells (MDSC) from adult mouse muscle to differentiate in vitro into beta cells when transplanted as undifferentiated stem cells in vivo to compensate for beta-cell deficiency. Results: In vitro, cultured MDSC spontaneously differentiated into insulin-expressing islet-like cell clusters as revealed using MDSC from transgenic mice expressing GFP or mCherry under the control of an insulin promoter. Differentiated clusters of beta-like cells co-expressed insulin with the transcription factors Pdx1, Nkx2.2, Nkx6.1, and MafA, and secreted significant levels of insulin in response to glucose challenges. In vivo, undifferentiated MDSC injected into streptozotocin (STZ)-treated mice engrafted within 48 h specifically to damaged pancreatic islets and were shown to differentiate and express insulin 10-12 days after injection. In addition, injection of MDSC into hyperglycemic diabetic mice reduced their blood glucose levels for 2-4 weeks. Conclusion: These data show that MDSC are capable of differentiating into mature pancreatic beta islet-like cells, not only upon culture in vitro, but also in vivo after systemic injection in STZ-induced diabetic mouse models. Being nonteratogenic, MDSC can be used directly by systemic injection, and this potential reveals a promising alternative avenue in stem cell-based treatment of beta-cell deficiencies.
AB - Background: Pancreatic beta cells are unique effectors in the control of glucose homeostasis and their deficiency results in impaired insulin production leading to severe diabetic diseases. Here, we investigated the potential of a population of nonadherent muscle-derived stem cells (MDSC) from adult mouse muscle to differentiate in vitro into beta cells when transplanted as undifferentiated stem cells in vivo to compensate for beta-cell deficiency. Results: In vitro, cultured MDSC spontaneously differentiated into insulin-expressing islet-like cell clusters as revealed using MDSC from transgenic mice expressing GFP or mCherry under the control of an insulin promoter. Differentiated clusters of beta-like cells co-expressed insulin with the transcription factors Pdx1, Nkx2.2, Nkx6.1, and MafA, and secreted significant levels of insulin in response to glucose challenges. In vivo, undifferentiated MDSC injected into streptozotocin (STZ)-treated mice engrafted within 48 h specifically to damaged pancreatic islets and were shown to differentiate and express insulin 10-12 days after injection. In addition, injection of MDSC into hyperglycemic diabetic mice reduced their blood glucose levels for 2-4 weeks. Conclusion: These data show that MDSC are capable of differentiating into mature pancreatic beta islet-like cells, not only upon culture in vitro, but also in vivo after systemic injection in STZ-induced diabetic mouse models. Being nonteratogenic, MDSC can be used directly by systemic injection, and this potential reveals a promising alternative avenue in stem cell-based treatment of beta-cell deficiencies.
KW - Beta-cell differentiation
KW - Insulin secretion
KW - Muscle stem cells
KW - Pancreatic islets
UR - https://www.scopus.com/pages/publications/85018516143
U2 - 10.1186/s13287-017-0539-9
DO - 10.1186/s13287-017-0539-9
M3 - Article
C2 - 28420418
AN - SCOPUS:85018516143
SN - 1757-6512
VL - 8
JO - Stem Cell Research & Therapy
JF - Stem Cell Research & Therapy
M1 - 86
ER -