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PuC3H35 通过增强杨树根系中的木质素和原花青素生物合成赋予其耐旱性。

PuC3H35 confers drought tolerance by enhancing lignin and proanthocyanidin biosynthesis in the roots of Populus ussuriensis.

机构信息

State Key Laboratory of Tree Genetics and Breeding, Northeast Forestry University, Harbin, 150040, China.

Key Lab Forest Tree Genetics and Breeding of Liaoning Province, College of Forestry, Shenyang Agricultural University, Shenyang, 110866, China.

出版信息

New Phytol. 2022 Jan;233(1):390-408. doi: 10.1111/nph.17799. Epub 2021 Oct 29.

Abstract

Since the roots are the very organ where plants first sense and respond drought stress, it is of great importance to better understand root responses to drought. Yet the underlying molecular mechanisms governing root responses to drought stress have been poorly understood. Here, we identified and functionally characterized a CCCH type transcription factor, PuC3H35, and its targets, anthocyanin reductase (PuANR) and early Arabidopsis aluminum induced1 (PuEARLI1), which are involved in mediating proanthocyanidin (PA) and lignin biosynthesis in response to drought stress in Populus ussuriensis root. PuC3H35 was root-specifically induced upon drought stress. Overexpressing PuC3H35 promoted PA and lignin biosynthesis and vascular tissue development, resulting in enhanced tolerance to drought stress by the means of anti-oxidation and mechanical supporting. We further demonstrated that PuC3H35 directly bound to the promoters of PuANR and PuEARLI1 and overexpressing PuANR or PuEARLI1 increased root PA or lignin levels, respectively, under drought stress. Taken together, these results revealed a novel regulatory pathway for drought tolerance, in which PuC3H35 mediated PA and lignin biosynthesis by collaboratively regulating 'PuC3H35-PuANR-PA' and 'PuC3H35-PuEARLI1-PuCCRs-lignin' modules in poplar roots.

摘要

由于根是植物最先感知和响应干旱胁迫的器官,因此更好地了解根对干旱的反应非常重要。然而,调控根对干旱胁迫响应的潜在分子机制还知之甚少。在这里,我们鉴定并功能表征了一个 CCCH 型转录因子 PuC3H35,及其靶基因花色素还原酶(PuANR)和拟南芥早期铝诱导 1(PuEARLI1),它们参与介导杨树根中应对干旱胁迫的原花色素(PA)和木质素生物合成。PuC3H35 在受到干旱胁迫时在根中特异性地上调。过表达 PuC3H35 促进了 PA 和木质素的生物合成和维管束组织的发育,通过抗氧化和机械支撑增强了对干旱胁迫的耐受性。我们进一步证明,PuC3H35 直接与 PuANR 和 PuEARLI1 的启动子结合,过表达 PuANR 或 PuEARLI1 分别增加了干旱胁迫下根中的 PA 或木质素水平。总之,这些结果揭示了一个新的耐旱调控途径,其中 PuC3H35 通过协同调控杨树根中的 'PuC3H35-PuANR-PA' 和 'PuC3H35-PuEARLI1-PuCCRs-lignin' 模块来介导 PA 和木质素的生物合成。

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