KRAB型锌指蛋白在高等脊椎动物胚胎发育和肿瘤发生、发展中的调控功能
收稿日期: 2009-09-27
修回日期: 2009-12-07
网络出版日期: 2010-05-15
基金资助
国家重点基础研究发展规划(973计划)项目(编号:2006CB910801), 国家高技术研究发展计划项目(863计划)(编号:2006AA02A308)和蛋白质组学国家重点实验室课题(编号:SKLP-Y200801)资助
Review for the regulatory functions of KRAB zinc finger proteins in embryonic development and tumorgenesis of higher vertebrates
Received date: 2009-09-27
Revised date: 2009-12-07
Online published: 2010-05-15
马占福,杨冬,贺福初,姜颖 . KRAB型锌指蛋白在高等脊椎动物胚胎发育和肿瘤发生、发展中的调控功能[J]. 遗传, 2010 , 32(5) : 431 -436 . DOI: 10.3724/SP.J.1005.2010.00431
KRAB-containing zinc-finger proteins (KRAB-ZFPs) first arose in the tetrapod vertebrates, and evolved quickly. Till Homo sapiens, they have become the largest family of transcription factors. Despite the molecular mechanism of transcription regulation by KRAB-ZFPs has been clarified in some degree, the higher-vertebrate-specific biological functions of the KRAB-ZFP family are still largely unknown. This review focused on the important regulatory functions of the KRAB-ZFP in embryonic development and tumorgenesis, which will benefit to the comprehensive understanding of biological roles of KRAB-ZFP in different physiological and pathological states. All of the systematic information will facilitate the further theoretical and applied studies of KRAB-ZFPs.
Key words: KRAB; embryonic development; tumor; transcription regulation
[1] 杨冬, 姜颖, 贺福初. KAP-1, 转录调控中的一个桥梁分子. 遗传, 2007, 29(2): 131–136.
[2] 田春艳, 张令强, 贺福初. KRAB型锌指蛋白(KZNF)的研究进展. 遗传, 2006, 28(11): 1451–1456.
[3] Emerson RO, Thomas JH, Adaptive evolution in zinc fin-ger transcription factors. PLoS Genet, 2009, 5(1): 1-12.
[4] Ferguson-Smith AC, Surani MA. Imprinting and the epi-genetic asymmetry between parental genomes. Science, 2001, 293(5532): 1086–1089.
[5] Reik W, Walter J. Genomic imprinting: parental influence on the genome. Nat Rev Genet, 2001, 2(1): 21–32.
[6] Verona RI, Mann MR, Bartolomei MS. Genomic imprint-ing: intricacies of epigenetic regulation in clusters. Annu Rev Cell Dev Biol, 2003, 19: 237–259.
[7] Hirasawa R, Feil R. A KRAB domain zinc finger protein in imprinting and disease. Dev Cell, 2008, 15(4): 487–488.
[8] Li X, Ito M, Zhou F, Youngson N, Zuo X, Leder P, Fergu-son-Smith AC. A maternal-zygotic effect gene, Zfp57, maintains both maternal and paternal imprints. Dev Cell, 2008, 15(4): 547–557.
[9] Wiznerowicz M, Jakobsson J, Szulc J, Liao S, Quazzola A, Beermann F, Aebischer P, Trono D. The Krup-pel-associated box repressor domain can trigger de novo promoter methylation during mouse early embryogenesis. J Biol Chem, 2007, 282(47): 34535–34541.
[10] Ellis J, Hotta A, Rastegar M. Retrovirus silencing by an epigenetic TRIM. Cell, 2007, 131(1): 13–14.
[11] Teich NM, Weiss RA, Martin GR, Lowy DR. Virus infec-tion of murine teratocarcinoma stem cell lines. Cell, 1977, 12(4): 973–982.
[12] Wolf D, Goff SP. TRIM28 mediates primer binding site-targeted silencing of murine leukemia virus in em-bryonic cells. Cell, 2007, 131(1): 46–57.
[13] Wolf D, Goff SP. Embryonic stem cells use ZFP809 to silence retroviral DNAs. Nature, 2009, 458(7242): 1201–1204.
[14] Ninomiya H, Elinson RP, Winklbauer R. Antero-posterior tissue polarity links mesoderm convergent extension to axial patterning. Nature, 2004, 430(6997): 364–367.
[15] García-García MJ, Shibata M, Anderson KV. Chato, a KRAB zinc-finger protein, regulates convergent extension in the mouse embryo. Development, 2008, 135(18): 3053–3062.
[16] Li Y, Yang D, Bai Y, Mo X, Huang W, Yuan W, Yin Z, Deng Y, Murashko O, Wang Y, Fan X, Zhu C, Ocorr K, Bodmer R, Wu X. ZNF418, a novel human KRAB/C2H2 zinc finger protein, suppresses MAPK signaling pathway. Mol Cell Biochem, 2008, 310(1-2): 141–151.
[17] Xiang Z, Yuan W, Luo N, Wang Y, Tan K, Deng Y, Zhou X, Zhu C, Li Y, Liu M, Wu X, Li Y. A novel human zinc fin-ger protein ZNF540 interacts with MVP and inhibits tran-scriptional activities of the ERK signal pathway. Biochem Biophys Res Commun, 2006, 347(1): 288–296.
[18] Cao L, Wang Z, Zhu C, Zhao Y, Yuan W, Li J, Wang Y, Ying Z, Li Y, Yu W, Wu X, Liu M. ZNF383, a novel KRAB-containing zinc finger protein, suppresses MAPK signaling pathway. Biochem Biophys Res Commun, 2005, 333(4): 1050–1059.
[19] Zaret KS. Regulatory phases of early liver development: Paradigms of organogenesis. Nat Rev Genet, 2002, 3(7): 499–512.
[20] Duncan SA. Mechanisms controlling early development of the liver. Mech Dev, 2003, 120(1): 19–33.
[21] Ying W, Jiang Y, Guo L, Hao Y, Zhang Y, Wu S, Zhong F, Wang J, Shi R, Li D, Wan P, Li X, Wei H, Li J, Wang Z, Xue X, Cai Y, Zhu Y, Qian X, He F. A dataset of human fetal liver proteome identified by subcellular fractionation and multiple protein separation and identification tech-nology. Mol Cell Proteomics, 2006, 5(9): 1703–1707.
[22] Jiang Y, Ying W, Wu S, Chen M, Guan W, Yang D, Song Y, Liu X, Li J, Hao Y, Sun A, Geng C, Li H, Mi W, Zhang Y, Zhang J, Chen X, Li L, Go
/
| 〈 |
|
〉 |