Maturation and function of human embryonic stem cell-derived pancreatic progenitors in macroencapsulation devices following transplant into mice

被引:172
作者
Bruin, Jennifer E. [1 ]
Rezania, Alireza [2 ]
Xu, Jean [2 ]
Narayan, Kavitha [2 ]
Fox, Jessica K. [1 ]
O'Neil, John J. [2 ]
Kieffer, Timothy J. [1 ,3 ]
机构
[1] Univ British Columbia, Inst Life Sci, Dept Cellular & Physiol Sci, Lab Mol & Cellular Med, Vancouver, BC V6T 1Z3, Canada
[2] Janssen R&D LLC, BetaLog Venture, Raritan, NJ USA
[3] Univ British Columbia, Dept Surg, Vancouver, BC V6T 1Z3, Canada
关键词
Cell therapy; Diabetes; Encapsulation; Human embryonic stem cells; Insulin; Islets; INSULIN-PRODUCING CELLS; ISLET TRANSPLANTATION; BETA-CELLS; DIABETIC-RATS; REAL-TIME; DIFFERENTIATION; GLUCOSE; ENDODERM; MOUSE; PORCINE;
D O I
10.1007/s00125-013-2955-4
中图分类号
R5 [内科学];
学科分类号
100201 [内科学];
摘要
Islet transplantation is a promising cell therapy for patients with diabetes, but it is currently limited by the reliance upon cadaveric donor tissue. We previously demonstrated that human embryonic stem cell (hESC)-derived pancreatic progenitor cells matured under the kidney capsule in a mouse model of diabetes into glucose-responsive insulin-secreting cells capable of reversing diabetes. However, the formation of cells resembling bone and cartilage was a major limitation of that study. Therefore, we developed an improved differentiation protocol that aimed to prevent the formation of off-target mesoderm tissue following transplantation. We also examined how variation within the complex host environment influenced the development of pancreatic progenitors in vivo. The hESCs were differentiated for 14 days into pancreatic progenitor cells and transplanted either under the kidney capsule or within Theracyte (TheraCyte, Laguna Hills, CA, USA) devices into diabetic mice. Our revised differentiation protocol successfully eliminated the formation of non-endodermal cell populations in 99% of transplanted mice and generated grafts containing > 80% endocrine cells. Progenitor cells developed efficiently into pancreatic endocrine tissue within macroencapsulation devices, despite lacking direct contact with the host environment, and reversed diabetes within 3 months. The preparation of cell aggregates pre-transplant was critical for the formation of insulin-producing cells in vivo and endocrine cell development was accelerated within a diabetic host environment compared with healthy mice. Neither insulin nor exendin-4 therapy post-transplant affected the maturation of macroencapsulated cells. Efficient differentiation of hESC-derived pancreatic endocrine cells can occur in a macroencapsulation device, yielding glucose-responsive insulin-producing cells capable of reversing diabetes.
引用
收藏
页码:1987 / 1998
页数:12
相关论文
共 54 条
[1]
Insulinotropic hormone glucagon-like peptide-1 differentiation of human pancreatic islet-derived progenitor cells into insulin-producing cells [J].
Abraham, EJ ;
Leech, CA ;
Lin, JC ;
Zulewski, H ;
Habener, JF .
ENDOCRINOLOGY, 2002, 143 (08) :3152-3161
[2]
Mafa expression enhances glucose-responsive insulin secretion in neonatal rat beta cells [J].
Aguayo-Mazzucato, C. ;
Koh, A. ;
El Khattabi, I. ;
Li, W. -C. ;
Toschi, E. ;
Jermendy, A. ;
Juhl, K. ;
Mao, K. ;
Weir, G. C. ;
Sharma, A. ;
Bonner-Weir, S. .
DIABETOLOGIA, 2011, 54 (03) :583-593
[3]
Effect of exenatide on β cell function after islet transplantation in type 1 diabetes [J].
Al Ghofaili, Khalid ;
Fung, Michelle ;
Ao, Ziliang ;
Meloche, Mark ;
Shapiro, R. Jean ;
Warnock, Garth L. ;
Elahi, Darlush ;
Meneilly, Graydon S. ;
Thompson, David M. .
TRANSPLANTATION, 2007, 83 (01) :24-28
[4]
Therapeutic approaches to preserve islet mass in type 2 diabetes [J].
Baggio, LL ;
Drucker, DJ .
ANNUAL REVIEW OF MEDICINE, 2006, 57 :265-281
[5]
Glucagon-like peptide-1 enhances production of insulin in insulin-producing cells derived from mouse embryonic stem cells [J].
Bai, L ;
Meredith, G ;
Tuch, BE .
JOURNAL OF ENDOCRINOLOGY, 2005, 186 (02) :343-352
[6]
Islet-cell-to-cell communication as basis for normal insulin secretion [J].
Bavamian, S. ;
Klee, P. ;
Britan, A. ;
Populaire, C. ;
Caille, D. ;
Cancela, J. ;
Charollais, A. ;
Meda, P. .
DIABETES OBESITY & METABOLISM, 2007, 9 :118-132
[7]
Regulation of proliferation and differentiation of human fetal pancreatic islet cells by extracellular matrix, hepatocyte growth factor, and cell-cell contact [J].
Beattie, GM ;
Rubin, JS ;
Mally, MI ;
Otonkoski, T ;
Hayek, A .
DIABETES, 1996, 45 (09) :1223-1228
[8]
β-cell death and mass in syngeneically transplanted islets exposed to short- and long-term hyperglycemia [J].
Biarnés, M ;
Montolio, M ;
Nacher, V ;
Raurell, M ;
Soler, J ;
Montanya, E .
DIABETES, 2002, 51 (01) :66-72
[9]
NEOVASCULARIZATION OF SYNTHETIC MEMBRANES DIRECTED BY MEMBRANE MICROARCHITECTURE [J].
BRAUKER, JH ;
CARRBRENDEL, VE ;
MARTINSON, LA ;
CRUDELE, J ;
JOHNSTON, WD ;
JOHNSON, RC .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH, 1995, 29 (12) :1517-1524
[10]
Beta cell nuclear musculoaponeurotic fibrosarcoma oncogene family A (MafA) is deficient in type 2 diabetes [J].
Butler, A. E. ;
Robertson, R. P. ;
Hernandez, R. ;
Matveyenko, A. V. ;
Gurlo, T. ;
Butler, P. C. .
DIABETOLOGIA, 2012, 55 (11) :2985-2988