Epigenetic control, development and natural genetic variatian in plants

被引:1
|
作者
Prouteau, M [1 ]
Colot, V [1 ]
机构
[1] UEVE, CNRS, INRA, Unite Rech & Genom Vegetale, F-91057 Evry, France
来源
M S-MEDECINE SCIENCES | 2005年 / 21卷 / 04期
关键词
D O I
10.1051/medsci/2005214422
中图分类号
R-3 [医学研究方法]; R3 [基础医学];
学科分类号
1001 ;
摘要
Plant life strategies differ radically from those of most animals. Plants are not motile, and can only face stress by developing appropriate physiological responses. In addition, many developmental decisions take place during post-embryonic life in plants, whereas vertebrate and invertebrate development is nearly complete by the time of birth. For instance, while the germ line is typically set aside early during embryogenesis in animals, plants produce gametes from stem cell populations that were previously used for the vegetative growth of shoots. Nevertheless, plants and animals have similar nuclear organization, chromatin constitution and gene content, which raises the question as to whether or not fundamental differences in the use of genetic information underlie their distinct life strategies. More specifically, we would like to know if chromatin and the epigenetically defined, heritable cell fates that it can confer play comparable roles in plants and animals. Here we review our current knowledge on chromatin-mediated epigenetic processes in plants. Based on available evidence, we argue that epigenetic regulation of gene expression plays a relatively minor role in plants compared to mammals. Conversely, plants appear to be more prone than other multicellular organisms to the induction of chromatin-based, epigenetically modified gene activity states that can be transmitted over many generations. These so-called "epimutations" may therefore represent a significant proportion of the natural genetic variation seen in plants. In humans, epimutations are frequently observed in cancers, and given their metastable nature, they could also play an important role in familial disorders that do not demonstrate clear Mendelian inheritance.
引用
收藏
页码:422 / 427
页数:6
相关论文
共 50 条
  • [21] Epigenetic-based control of flowering and seed development in plants: A review
    Ibrar, Danish
    Ahmad, Rafiq
    Hasnain, Zuhair
    Gul, Safia
    Rais, Afroz
    Khan, Shahbaz
    PLANT BREEDING, 2023, 142 (06) : 732 - 744
  • [22] Organogenesis in plants: the molecular and genetic control of ovule development
    Schneitz, K
    Balasubramanian, S
    Schiefthaler, U
    TRENDS IN PLANT SCIENCE, 1998, 3 (12) : 468 - 472
  • [23] Genetic and Epigenetic Control of Puberty
    Manotas, Maria Carolina
    Gonzalez, Daniel Mauricio
    Cespedes, Camila
    Forero, Catalina
    Rojas Moreno, Adriana Patricia
    SEXUAL DEVELOPMENT, 2021, : 1 - 10
  • [24] Epigenetic control of meiotic recombination in plants
    Yelina, Natasha
    Diaz, Patrick
    Lambing, Christophe
    Henderson, Ian R.
    SCIENCE CHINA-LIFE SCIENCES, 2015, 58 (03) : 223 - 231
  • [25] Epigenetic control of meiotic recombination in plants
    YELINA Natasha
    DIAZ Patrick
    LAMBING Christophe
    HENDERSON Ian R.
    Science China Life Sciences, 2015, 58 (03) : 223 - 231
  • [26] Epigenetic control of meiotic recombination in plants
    YELINA Natasha
    DIAZ Patrick
    LAMBING Christophe
    HENDERSON Ian R.
    Science China Life Sciences , 2015, (03) : 223 - 231
  • [27] Epigenetic control of gene regulation in plants
    Lauria, Massimiliano
    Rossi, Vincenzo
    BIOCHIMICA ET BIOPHYSICA ACTA-GENE REGULATORY MECHANISMS, 2011, 1809 (08): : 369 - 378
  • [28] Epigenetic control of meiotic recombination in plants
    Natasha Yelina
    Patrick Diaz
    Christophe Lambing
    Ian R. Henderson
    Science China Life Sciences, 2015, 58 : 223 - 231
  • [29] Epigenetic control of development
    Fauvarque, MO
    Rossignol, JL
    M S-MEDECINE SCIENCES, 1996, 12 (6-7): : R1 - R7
  • [30] Genetic and Epigenetic Changes in Plants in Response to Abiotic Stress
    Cheong, Jong-Joo
    GENES, 2021, 12 (10)