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表观遗传修饰调控小麦品种特异性根发育和对氮可用性的代谢适应。

Epigenetic modifications regulate cultivar-specific root development and metabolic adaptation to nitrogen availability in wheat.

机构信息

State Key Laboratory of Plant Cell and Chromosome Engineering, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing, 100101, China.

University of Chinese Academy of Sciences, Beijing, 100049, China.

出版信息

Nat Commun. 2023 Dec 12;14(1):8238. doi: 10.1038/s41467-023-44003-6.

Abstract

The breeding of crops with improved nitrogen use efficiency (NUE) is crucial for sustainable agriculture, but the involvement of epigenetic modifications remains unexplored. Here, we analyze the chromatin landscapes of two wheat cultivars (KN9204 and J411) that differ in NUE under varied nitrogen conditions. The expression of nitrogen metabolism genes is closely linked to variation in histone modification instead of differences in DNA sequence. Epigenetic modifications exhibit clear cultivar-specificity, which likely contributes to distinct agronomic traits. Additionally, low nitrogen (LN) induces H3K27ac and H3K27me3 to significantly enhance root growth in KN9204, while remarkably inducing NRT2 in J411. Evidence from histone deacetylase inhibitor treatment and transgenic plants with loss function of H3K27me3 methyltransferase shows that changes in epigenetic modifications could alter the strategy preference for root development or nitrogen uptake in response to LN. Here, we show the importance of epigenetic regulation in mediating cultivar-specific adaptation to LN in wheat.

摘要

提高氮利用效率(NUE)的作物培育对可持续农业至关重要,但表观遗传修饰的参与仍有待探索。在这里,我们分析了在不同氮条件下 NUE 不同的两个小麦品种(KN9204 和 J411)的染色质景观。氮代谢基因的表达与组蛋白修饰的变化密切相关,而不是与 DNA 序列的差异有关。表观遗传修饰表现出明显的品种特异性,这可能有助于形成不同的农艺性状。此外,低氮(LN)诱导 H3K27ac 和 H3K27me3 显著增强 KN9204 的根生长,而在 J411 中则显著诱导 NRT2。组蛋白去乙酰化酶抑制剂处理和 H3K27me3 甲基转移酶功能丧失的转基因植物的证据表明,表观遗传修饰的变化可能改变根发育或氮吸收对 LN 的策略偏好。在这里,我们展示了表观遗传调控在介导小麦对 LN 的品种特异性适应中的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7e42/10716289/03ce1cb3b5b4/41467_2023_44003_Fig1_HTML.jpg

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