Epigenetics mechanisms in renal development

被引:0
作者
Sylvia A. Hilliard
Samir S. El-Dahr
机构
[1] Tulane University School of Medicine,Department of Pediatrics
来源
Pediatric Nephrology | 2016年 / 31卷
关键词
Kidney development; Histone code; Epigenetics; Nephrogenesis; Nephron progenitors;
D O I
暂无
中图分类号
学科分类号
摘要
Appreciation for the role of epigenetic modifications in the diagnosis and treatment of diseases is fast gaining attention. Treatment of chronic kidney disease stemming from diabetes or hypertension as well as Wilms tumor will all profit from knowledge of the changes in the epigenomic landscapes. To do so, it is essential to characterize the epigenomic modifiers and their modifications under normal physiological conditions. The transcription factor Pax2 was identified as a major epigenetic player in the early specification of the kidney. Notably, the progenitors of all nephrons that reside in the cap mesenchyme display a unique bivalent histone signature (expressing repressive epigenetic marks alongside activation marks) on lineage-specific genes. These cells are deemed poised for differentiation and commitment to the nephrogenic lineage. In response to the appropriate inducing signal, these genes lose their repressive histone marks, which allow for their expression in nascent nephron precursors. Such knowledge of the epigenetic landscape and the resultant cell fate or behavior in the developing kidney will greatly improve the overall success in designing regenerative strategies and tissue reprogramming methodologies from pluripotent cells.
引用
收藏
页码:1055 / 1060
页数:5
相关论文
共 50 条
[31]   Implication of epigenetics in pancreas development and disease [J].
Quilichini, Evans ;
Haumaitre, Cecile .
BEST PRACTICE & RESEARCH CLINICAL ENDOCRINOLOGY & METABOLISM, 2015, 29 (06) :883-898
[32]   Epigenetics in cardiac development, function, and disease [J].
Thomas Nührenberg ;
Ralf Gilsbach ;
Sebastian Preissl ;
Tilman Schnick ;
Lutz Hein .
Cell and Tissue Research, 2014, 356 :585-600
[33]   The role of epigenetics in the development of childhood asthma [J].
Qi, Cancan ;
Xu, Cheng-Jian ;
Koppelman, Gerard H. .
EXPERT REVIEW OF CLINICAL IMMUNOLOGY, 2019, 15 (12) :1287-1302
[34]   Epigenetics in cardiac development, function, and disease [J].
Nuehrenberg, Thomas ;
Gilsbach, Ralf ;
Preissl, Sebastian ;
Schnick, Tilman ;
Hein, Lutz .
CELL AND TISSUE RESEARCH, 2014, 356 (03) :585-600
[35]   Carcinogenic mechanisms of endometrial cancer: Involvement of genetics and epigenetics [J].
Banno, Kouji ;
Yanokura, Megumi ;
Iida, Miho ;
Masuda, Kenta ;
Aoki, Daisuke .
JOURNAL OF OBSTETRICS AND GYNAECOLOGY RESEARCH, 2014, 40 (08) :1957-1967
[36]   Editorial: Cancer genetics and epigenetics: theranostic targets and mechanisms [J].
Farhana, Aisha ;
Yusuf, Nabiha ;
Rasheed, Zafar .
FRONTIERS IN GENETICS, 2024, 15
[37]   Epigenetics Research in Evolutionary Biology: Perspectives on Timescales and Mechanisms [J].
Yi, Soojin, V .
MOLECULAR BIOLOGY AND EVOLUTION, 2024, 41 (09)
[38]   Epigenetics in ENS development and Hirschsprung disease [J].
Torroglosa, A. ;
Alves, M. M. ;
Fernandez, R. M. ;
Antinolo, G. ;
Hofstra, R. M. ;
Borrego, S. .
DEVELOPMENTAL BIOLOGY, 2016, 417 (02) :209-216
[39]   Genetics and Epigenetics in the Genesis and Development of Microtia [J].
Chen, Xin ;
Ma, Jing ;
Zhang, Tianyu .
JOURNAL OF CRANIOFACIAL SURGERY, 2024, 35 (03) :e261-e266
[40]   The Development of Epigenetics in the Study of Disease Pathogenesis [J].
Jeffries, Matlock A. .
EPIGENETICS IN ALLERGY AND AUTOIMMUNITY, 2020, 1253 :57-94