On the origin of the β cell

被引:284
作者
Oliver-Krasinski, Jennifer M.
Stoffers, Doris A. [1 ]
机构
[1] Univ Penn, Sch Med, Inst Diabet Obes & Metab, Philadelphia, PA 19104 USA
关键词
diabetes; insulin; islet; pancreas;
D O I
10.1101/gad.1670808
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
The major forms of diabetes are characterized by pancreatic islet beta-cell dysfunction and decreased beta-cell numbers, raising hope for cell replacement therapy. Although human islet transplantation is a cell-based therapy under clinical investigation for the treatment of type 1 diabetes, the limited availability of human cadaveric islets for transplantation will preclude its widespread therapeutic application. The result has been an intense focus on the development of alternate sources of beta cells, such as through the guided differentiation of stem or precursor cell populations or the transdifferentiation of more plentiful mature cell populations. Realizing the potential for cell-based therapies, however, requires a thorough understanding of pancreas development and beta-cell formation. Pancreas development is coordinated by a complex interplay of signaling pathways and transcription factors that determine early pancreatic specification as well as the later differentiation of exocrine and endocrine lineages. This review describes the current knowledge of these factors as they relate specifically to the emergence of endocrine beta cells from pancreatic endoderm. Current therapeutic efforts to generate insulin-producing beta-like cells from embryonic stem cells have already capitalized on recent advances in our understanding of the embryonic signals and transcription factors that dictate lineage specification and will most certainly be further enhanced by a continuing emphasis on the identification of novel factors and regulatory relationships.
引用
收藏
页码:1998 / 2021
页数:24
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共 275 条
[1]  
Ahlgren U, 1996, DEVELOPMENT, V122, P1409
[2]   β-cell-specific inactivation of the mouse Ipf1/Pdx1 gene results in loss of the β-cell phenotype and maturity onset diabetes [J].
Ahlgren, U ;
Jonsson, J ;
Jonsson, L ;
Simu, K ;
Edlund, H .
GENES & DEVELOPMENT, 1998, 12 (12) :1763-1768
[3]   Cloning and analysis of Nkx6.3 during CNS and gastrointestinal development [J].
Alanentalo, T ;
Chatonnet, F ;
Karlen, M ;
Sulniute, R ;
Ericson, J ;
Andersson, E ;
Ahlgren, U .
GENE EXPRESSION PATTERNS, 2006, 6 (02) :162-170
[4]  
ANG SL, 1993, DEVELOPMENT, V119, P1301
[5]   HNF-3-BETA IS ESSENTIAL FOR NODE AND NOTOCHORD FORMATION IN MOUSE DEVELOPMENT [J].
ANG, SL ;
ROSSANT, J .
CELL, 1994, 78 (04) :561-574
[6]   Notch signalling controls pancreatic cell differentiation [J].
Apelqvist, Å ;
Li, H ;
Sommer, L ;
Beatus, P ;
Anderson, DJ ;
Honjo, T ;
de Angelis, MH ;
Lendahl, U ;
Edlund, H .
NATURE, 1999, 400 (6747) :877-881
[7]   Sonic hedgehog directs specialised mesoderm differentiation in the intestine and pancreas [J].
Apelqvist, A ;
Ahlgren, U ;
Edlund, H .
CURRENT BIOLOGY, 1997, 7 (10) :801-804
[8]   Synergistic activation of the insulin gene promoter by the β-cell enriched transcription factors MafA, Beta2, and Pdx1 [J].
Aramata, S ;
Han, S ;
Yasuda, K ;
Kataoka, K .
BIOCHIMICA ET BIOPHYSICA ACTA-GENE STRUCTURE AND EXPRESSION, 2005, 1730 (01) :41-46
[9]   FGFR3 is a negative regulator of the expansion of pancreatic epithelial cells [J].
Arnaud-Dabernat, Sandrine ;
Kritzik, Marcie ;
Kayali, Ayse G. ;
Zhang, You-Qing ;
Liu, Guoxun ;
Ungles, Cory ;
Sarvetnick, Nora .
DIABETES, 2007, 56 (01) :96-106
[10]   MafB -: An activator of the glucagon gene expressed in developing islet α- and β-cells [J].
Artner, I ;
Le Lay, J ;
Hang, Y ;
Elghazi, L ;
Schisler, JC ;
Henderson, E ;
Sosa-Pineda, B ;
Stein, R .
DIABETES, 2006, 55 (02) :297-304