Affiliation:
1. Plant-Insect Interaction Group, International Centre for Genetic Engineering and Biotechnology (ICGEB), Aruna
Asaf Ali Marg, New Delhi, 110067, India
2. Institute of Molecular Plant Sciences, University of Edinburgh,
Edinburgh EH 93BF, UK
Abstract
Background::
The brown planthopper (BPH) is a monophagous sap-sucking insect pest
of rice that is responsible for massive yield loss. BPH populations, even when genetically homogenous,
can display a vast range of phenotypes, and the development of effective pest-management
strategies requires a good understanding of what generates this phenotypic variation. One potential
source could be epigenetic differences.
Methods::
With this premise, we explored epigenetic diversity, structure and differentiation in
field populations of BPH collected across the rice-growing seasons over a period of two consecutive
years. Using a modified methylation-sensitive restriction assay (MSRA) and CpG island amplification-
representational difference analysis, site-specific cytosine methylation of five stress-responsive
genes (CYP6AY1, CYP6ER1, Carboxylesterase, Endoglucanase, Tf2-transposon) was estimated,
for identifying methylation-based epiallelic markers and epigenetic variation across BPH
populations.
Results::
Screening field-collected BPH populations revealed the presence of previously unreported
epigenetic polymorphisms and provided a platform for future studies aimed at investigating
their significance for BPH. Furthermore, these findings can form the basis for understanding the
contribution(s) of DNA methylation in providing phenotypic plasticity to BPH.
Conclusion::
Screening field-collected BPH populations revealed the presence of previously unreported
epigenetic polymorphisms and provided a platform for future studies aimed at investigating
their significance for BPH. Furthermore, these findings can form the basis for understanding the
contribution(s) of DNA methylation in providing phenotypic plasticity to BPH.
Publisher
Bentham Science Publishers Ltd.
Subject
Genetics (clinical),Genetics
Reference52 articles.
1. Liu Y.; Chen L.; Liu Y.; Dai H.; He J.; Kang H.; Pan G.; Huang J.; Qiu Z.; Wang Q.; Hu J.; Liu L.; Chen Y.; Cheng X.; Jiang L.; Wan J.; Marker assisted pyramiding of two brown planthopper resistance genes, Bph3 and Bph27 (t), into elite rice cultivars. Rice 2016,9(1),27
2. Bentur J.S.; Sain M.; Kalode M.B.; Studies on egg and nymphal parasites of rice planthoppers, Nilaparvata lugens (Stål) and Sogatella furcifera (Horvath). Proc. Indian Acad. Sci. Anim Sci 1982,91,165-176
3. Aktar W.; Sengupta D.; Chowdhury A.; Impact of pesticides use in agriculture: their benefits and hazards. Interdiscip Toxicol 2009,2(1),1-12
4. Hawkins N.J.; Bass C.; Dixon A.; Neve P.; The evolutionary origins of pesticide resistance. Biol Rev Camb Philos Soc 2019,94(1),135-155
5. Zhang X.; Liu X.; Zhu F.; Li J.; You H.; Lu P.; Field evolution of insecticide resistance in the brown planthopper (Nilaparvata lugens Stål) in China. Crop Prot 2014,58,61-66
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