INDUCED PLURIPOTENT STEM CELLS AND THEIR USE IN HUMAN MODELS OF DISEASE AND DEVELOPMENT

被引:261
作者
Karagiannis, Peter [1 ]
Takahashi, Kazutoshi [1 ]
Saito, Megumu [1 ]
Yoshida, Yoshinori [1 ]
Okita, Keisuke [1 ]
Watanabe, Akira [1 ]
Inoue, Haruhisa [1 ]
Yamashita, Jun K. [1 ]
Todani, Masaya [1 ]
Nakagawa, Masato [1 ]
Osawa, Mitsujiro [1 ]
Yashiro, Yoshimi [1 ]
Yamanaka, Shinya [1 ]
Osafune, Kenji [1 ]
机构
[1] Kyoto Univ, Ctr iPS Cell Res & Applicat, Kyoto, Japan
基金
日本学术振兴会;
关键词
LONG-QT SYNDROME; HUMAN IPS CELLS; FAMILIAL ALZHEIMERS-DISEASE; SHWACHMAN-DIAMOND SYNDROME; ARRAY SYSTEMS MEA60/2100; BLOOD MONONUCLEAR-CELLS; MOUSE SOMATIC-CELLS; DIRECTED DIFFERENTIATION; GENETIC CORRECTION; HUMAN FIBROBLASTS;
D O I
10.1152/physrev.00039.2017
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
The discovery of somatic cell nuclear transfer proved that somatic cells can carry the same genetic code as the zygote, and that activating parts of this code are sufficient to reprogram the cell to an early developmental state. The discovery of induced pluripotent stem cells (iPSCs) nearly half a century later provided a molecular mechanism for the reprogramming. The initial creation of iPSCs was accomplished by the ectopic expression of four specific genes (OCT4, KLF4, SOX2, and c-Myc; OSKM). iPSCs have since been acquired from a wide range of cell types and a wide range of species, suggesting a universal molecular mechanism. Furthermore, cells have been reprogrammed to iPSCs using a myriad of methods, although OSKM remains the gold standard. The sources for iPSCs are abundant compared with those for other pluripotent stem cells; thus the use of iPSCs to model the development of tissues, organs, and other systems of the body is increasing. iPSCs also, through the reprogramming of patient samples, are being used to model diseases. Moreover, in the 10 years since the first report, human iPSCs are already the basis for new cell therapies and drug discovery that have reached clinical application. In this review, we examine the generation of iPSCs and their application to disease and development.
引用
收藏
页码:79 / 114
页数:36
相关论文
共 402 条
[1]   Foxp1-mediated programming of limb-innervating motor neurons from mouse and human embryonic stem cells [J].
Adams, Katrina L. ;
Rousso, David L. ;
Umbach, Joy A. ;
Novitch, Bennett G. .
NATURE COMMUNICATIONS, 2015, 6
[2]   Programming human pluripotent stem cells into white and brown adipocytes [J].
Ahfeldt, Tim ;
Schinzel, Robert T. ;
Lee, Youn-Kyoung ;
Hendrickson, David ;
Kaplan, Adam ;
Lum, David H. ;
Camahort, Raymond ;
Xia, Fang ;
Shay, Jennifer ;
Rhee, Eugene P. ;
Clish, Clary B. ;
Deo, Rahul C. ;
Shen, Tony ;
Lau, Frank H. ;
Cowley, Alicia ;
Mowrer, Greg ;
Al-Siddiqi, Heba ;
Nahrendorf, Matthias ;
Musunuru, Kiran ;
Gerszten, Robert E. ;
Rinn, John L. ;
Cowan, Chad A. .
NATURE CELL BIOLOGY, 2012, 14 (02) :209-219
[3]   Accelerated High-Yield Generation of Limb-Innervating Motor Neurons from Human Stem Cells [J].
Amoroso, Mackenzie W. ;
Croft, Gist F. ;
Williams, Damian J. ;
O'Keeffe, Sean ;
Carrasco, Monica A. ;
Davis, Anne R. ;
Roybon, Laurent ;
Oakley, Derek H. ;
Maniatis, Tom ;
Henderson, Christopher E. ;
Wichterle, Hynek .
JOURNAL OF NEUROSCIENCE, 2013, 33 (02) :574-586
[4]   A new paradigm for drug-induced torsadogenic risk assessment using human iPS cell-derived cardiomyocytes [J].
Ando, Hiroyuki ;
Yoshinaga, Takashi ;
Yamamotoa, Wataru ;
Asakura, Keiichi ;
Uda, Takaaki ;
Taniguchi, Tomohiko ;
Ojima, Atsuko ;
Shinkyo, Raku ;
Kikuchi, Kiyomi ;
Osada, Tomoharu ;
Hayashi, Seiji ;
Kasai, Chieko ;
Miyamotoa, Norimasa ;
Tashibu, Hiroyuki ;
Yamazaki, Daiju ;
Sugiyama, Atsushi ;
Kanda, Yasunari ;
Sawada, Kohei ;
Sekino, Yuko .
JOURNAL OF PHARMACOLOGICAL AND TOXICOLOGICAL METHODS, 2017, 84 :111-127
[5]   Transthyretin-related familial amyloidotic polyneuropathy [J].
Ando, Y ;
Nakamura, M ;
Araki, S .
ARCHIVES OF NEUROLOGY, 2005, 62 (07) :1057-1062
[6]   Wdr5 Mediates Self-Renewal and Reprogramming via the Embryonic Stem Cell Core Transcriptional Network [J].
Ang, Yen-Sin ;
Tsai, Su-Yi ;
Lee, Dung-Fang ;
Monk, Jonathan ;
Su, Jie ;
Ratnakumar, Kajan ;
Ding, Junjun ;
Ge, Yongchao ;
Darr, Henia ;
Chang, Betty ;
Wang, Jianlong ;
Rendl, Michael ;
Bernstein, Emily ;
Schaniel, Christoph ;
Lemischka, Ihor R. .
CELL, 2011, 145 (02) :183-197
[7]   Highly Efficient miRNA-Mediated Reprogramming of Mouse and Human Somatic Cells to Pluripotency [J].
Anokye-Danso, Frederick ;
Trivedi, Chinmay M. ;
Juhr, Denise ;
Gupta, Mudit ;
Cui, Zheng ;
Tian, Ying ;
Zhang, Yuzhen ;
Yang, Wenli ;
Gruber, Peter J. ;
Epstein, Jonathan A. ;
Morrisey, Edward E. .
CELL STEM CELL, 2011, 8 (04) :376-388
[8]   Generation of pluripotent stem cells from adult mouse liver and stomach cells [J].
Aoi, Takashi ;
Yae, Kojiro ;
Nakagawa, Masato ;
Ichisaka, Tomoko ;
Okita, Keisuke ;
Takahashi, Kazutoshi ;
Chiba, Tsutomu ;
Yamanaka, Shinya .
SCIENCE, 2008, 321 (5889) :699-702
[9]   Pluripotent stem cells in disease modelling and drug discovery [J].
Avior, Yishai ;
Sagi, Ido ;
Benvenisty, Nissim .
NATURE REVIEWS MOLECULAR CELL BIOLOGY, 2016, 17 (03) :170-182
[10]   Recent policies that support clinical application of induced pluripotent stem cell-based regenerative therapies [J].
Azuma, Kentaro ;
Yamanaka, Shinya .
REGENERATIVE THERAPY, 2016, 4 :36-47