Unravelling the complex mechanisms of transgenerational epigenetic inheritance

被引:70
作者
Blake, Georgina E. T. [1 ]
Watson, Erica D. [1 ,2 ]
机构
[1] Univ Cambridge, Dept Physiol Dev & Neurosci, Cambridge CB2 3EG, England
[2] Univ Cambridge, Ctr Trophoblast Res, Cambridge CB2 3EG, England
基金
英国惠康基金;
关键词
DIET-INDUCED OBESITY; DNA DEMETHYLATION; FOLATE METABOLISM; NONCODING RNAS; SPERM; METHYLATION; GERMLINE; DYNAMICS; MEMORY; GENES;
D O I
10.1016/j.cbpa.2016.06.008
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
There are numerous benefits to elucidating how our environment affects our health: from a greater understanding of adaptation to disease prevention. Evidence shows that stressors we are exposed to during our lifetime might cause disease in our descendants. Transgenerational epigenetic inheritance involves the transmission of 'information' over multiple generations via the gametes independent of the DNA base sequence. Despite extensive research, the epigenetic mechanisms remain unclear. Analysis of model organisms exposed to environmental insults (e.g., diet manipulation, stress, toxin exposure) or carrying mutations in the epigenetic regulatory machinery indicates that inheritance of altered DNA methylation, histone modifications, or non-coding RNAs are key mechanisms. Tracking inherited epigenetic information and its effects for multiple generations is a significant challenge to overcome.
引用
收藏
页码:101 / 107
页数:7
相关论文
共 60 条
[1]   Transgenerational Developmental Programming of Ovarian Reserve [J].
Aiken, C. E. ;
Tarry-Adkins, J. L. ;
Ozanne, S. E. .
SCIENTIFIC REPORTS, 2015, 5
[2]  
[Anonymous], SCIENCE
[3]   Endocrine disruptor vinclozolin induced epigenetic transgenerational adult-onset disease [J].
Anway, Matthew D. ;
Leathers, Charles ;
Skinner, Michael K. .
ENDOCRINOLOGY, 2006, 147 (12) :5515-5523
[4]   piRNAs Can Trigger a Multigenerational Epigenetic Memory in the Germline of C. elegans [J].
Ashe, Alyson ;
Sapetschnig, Alexandra ;
Weick, Eva-Maria ;
Mitchell, Jacinth ;
Bagijn, Marloes P. ;
Cording, Amy C. ;
Doebley, Anna-Lisa ;
Goldstein, Leonard D. ;
Lehrbach, Nicolas J. ;
Le Pen, Jeremie ;
Pintacuda, Greta ;
Sakaguchi, Aisa ;
Sarkies, Peter ;
Ahmed, Shawn ;
Miska, Eric A. .
CELL, 2012, 150 (01) :88-99
[5]   Epigenetic marking of sperm by post-translational modification of histones and protamines [J].
Brunner, Andrea M. ;
Nanni, Paolo ;
Mansuy, Isabelle M. .
EPIGENETICS & CHROMATIN, 2014, 7
[6]   Evidence for transgenerational metabolic programming in Drosophila [J].
Buescher, Jessica L. ;
Musselman, Laura P. ;
Wilson, Christina A. ;
Lang, Tieming ;
Keleher, Madeline ;
Baranski, Thomas J. ;
Duncan, Jennifer G. .
DISEASE MODELS & MECHANISMS, 2013, 6 (05) :1123-1132
[7]   Change in paternal grandmothers' early food supply influenced cardiovascular mortality of the female grandchildren [J].
Bygren, Lars Olov ;
Tinghog, Petter ;
Carstensen, John ;
Edvinsson, Soren ;
Kaati, Gunnar ;
Pembrey, Marcus E. ;
Sjostrom, Michael .
BMC GENETICS, 2014, 15
[8]   Telomere Dynamics in Mice and Humans [J].
Calado, Rodrigo T. ;
Dumitriu, Bogdan .
SEMINARS IN HEMATOLOGY, 2013, 50 (02) :165-174
[9]   Sperm epigenornics: challenges and opportunities [J].
Casas, Eduard ;
Vavouri, Tanya .
FRONTIERS IN GENETICS, 2014, 5
[10]   Modifiers of epigenetic reprogramming show paternal effects in the mouse [J].
Chong, Suyinn ;
Vickaryous, Nicola ;
Ashe, Alyson ;
Zamudio, Natasha ;
Youngson, Neil ;
Hemley, Sarah ;
Stopka, Tomas ;
Skoultchi, Arthur ;
Matthews, Jacqui ;
Scott, Hamish S. ;
de Kretser, David ;
O'Bryan, Moira ;
Blewitt, Marnie ;
Whitelaw, Emma .
NATURE GENETICS, 2007, 39 (05) :614-622