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PMID: 26594221 Published · epublish English Journal Article Review

Crop epigenetics and the molecular hardware of genotype × environment interactions.

Frontiers in plant science ·Vol. 6 ·2015-00-00 ·Pages 968

King GJ

Abstract

Crop plants encounter thermal environments which fluctuate on a diurnal and seasonal basis. Future climate resilient cultivars will need to respond to thermal profiles reflecting more variable conditions, and harness plasticity that involves regulation of epigenetic processes and complex genomic regulatory networks. Compartmentalization within plant cells insulates the genomic central processing unit within the interphase nucleus. This review addresses the properties of the chromatin hardware in which the genome is embedded, focusing on the biophysical and thermodynamic properties of DNA, histones and nucleosomes. It explores the consequences of thermal and ionic variation on the biophysical behavior of epigenetic marks such as DNA cytosine methylation (5mC), and histone variants such as H2A.Z, and how these contribute to maintenance of chromatin integrity in the nucleus, while enabling specific subsets of genes to be regulated. Information is drawn from theoretical molecular in vitro studies as well as model and crop plants and incorporates recent insights into the role epigenetic processes play in mediating between environmental signals and genomic regulation. A preliminary speculative framework is outlined, based on the evidence of what appears to be a cohesive set of interactions at molecular, biophysical and electrostatic level between the various components contributing to chromatin conformation and dynamics. It proposes that within plant nuclei, general and localized ionic homeostasis plays an important role in maintaining chromatin conformation, whilst maintaining complex genomic regulation that involves specific patterns of epigenetic marks. More generally, reversible changes in DNA methylation appear to be consistent with the ability of nuclear chromatin to manage variation in external ionic and temperature environment. Whilst tentative, this framework provides scope to develop experimental approaches to understand in greater detail the internal environment of plant nuclei. It is hoped that this will generate a deeper understanding of the molecular mechanisms underlying genotype × environment interactions that may be beneficial for long-term improvement of crop performance in less predictable climates.

Keywords
DNA methylation G × E interactions chromatin dynamics crop epigenetics ionic homeostasis phenotypic plasticity thermal homeostasis
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
King Graham J
Southern Cross Plant Science, Southern Cross University , Lismore, NSW, Australia ; National Key Laboratory for Crop Genetic Improvement, Huazhong Agricultural University , Wuhan, China ; Crops for the Future, Biotechnology and Breeding Systems , Semenyih, Malaysia.
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Article Info
Journal
Frontiers in plant science
Abbr.
Front Plant Sci
ISSN
1664-462X
Published
2015-00-00
Epub
2015-00-06
Pages
968
Language
English
Region
Switzerland
NLM ID
101568200
PMCID
PMC4635209
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