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Unique features of the m<sup>6</sup>A methylome and its response to drought stress in sea buckthorn (<i>Hippophae rhamnoides</i>Linn.)

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44

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2021

Year

Abstract

In plants, recent studies have revealed that N6-methyladenosine (m<sup>6</sup>A) methylation of mRNA has potential regulatory functions of this mRNA modification in many biological processes. m<sup>6</sup>A methyltransferase, m<sup>6</sup>A demethylase and m<sup>6</sup>A-binding proteins can cause differential phenotypes, indicating that m<sup>6</sup>A may have critical roles in the plant. In this study, we depicted the m<sup>6</sup>A map of sea buckthorn (<i>Hippophae rhamnoides</i> Linn.) transcriptome. Similar to <i>A. thaliana</i>, m<sup>6</sup>A sites of sea buckthorn transcriptome is significantly enriched around the stop codon and within 3'-untranslated regions (3'UTR). Gene ontology analysis shows that the m<sup>6</sup>A modification genes are associated with metabolic biosynthesis. In addition, we identified 13,287 different m<sup>6</sup>A peaks (DMPs) between leaf under drought (TR) and control (CK) treatment. It reveals that m<sup>6</sup>A has a high level of conservation and has a positive correlation with mRNA abundance in plants. GO and KEGG enrichment results showed that DMP modification DEGs in TR were particularly associated with ABA biosynthesis. Interestingly, our results showed three m<sup>6</sup>A demethylase (<i>HrALKBH10B, HrALKBH10C</i> and <i>HrALKBH10D</i>) genes were significantly increased following drought stress, which indicated that it may contributed the decreased m<sup>6</sup>A levels. This exhaustive m<sup>6</sup>A map provides a basis and resource for the further functional study of mRNA m<sup>6</sup>A modification in abiotic stress.

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