PagSAMDC4a‐Mediated Polyamine Synthesis Regulate Vessel Differentiation Under Drought Stress Conditions in Poplar

IF 10.5 1区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Junguang Yao, Miaoxia Li, Zirui Wu, Cheng Jiang, Yi An, Lichao Huang, Ningning Chen, Jin Zhang, Mengzhu Lu
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Abstract

Frequent and prolonged drought stress is a primary factor limiting the growth and development of perennial woody plants. Xylem vessel cells are crucial for water transport in woody plants; however, the molecular mechanisms governing the changes in their morphogenesis in response to water deprivation remain unclear. Here, we report that the alterations in polyamine (PA) levels under drought stress, mediated by the key enzyme PagSAMDC4a in PA synthesis, influence vessel morphogenesis through the modulation of hydrogen peroxide (H2O2) concentration in poplar 84 K (Populus alba × Populus glandulosa). PagSAMDC4a expression was predominantly observed in the phloem and cambium zones of stems and was upregulated under drought conditions. Overexpression of PagSAMDC4a (PagSAMDC4a‐OE) resulted in increased PA content, leading to reduced vessel size and density in stem xylem. Conversely, PagSAMDC4a mutant lines exhibited the opposite phenotype, resembling 84 K plants treated with the PA synthesis inhibitor methylglyoxal‐bis (guanylhydrazone). In addition, PagSAMDC4a‐OE exhibited improved drought tolerance compared to nontransgenic 84 K plants and PagSAMDC4a mutant lines. Interestingly, the H2O2 level was significantly decreased in PagSAMDC4a‐OE plants but markedly increased in PagSAMDC4a mutants relative to 84 K plants, suggesting that changes in vessel size may result from altered H2O2 levels. Supporting this hypothesis, H2O2 application rescued the small vessel phenotype in PagSAMDC4a‐OE, whereas the scavenger potassium iodide reduced the size of xylem vessels in PagSAMDC4a mutants. Collectively, these findings provide evidence for the role of PAs in enhancing drought tolerance through the regulation of vessel differentiation.
干旱胁迫条件下PagSAMDC4a介导的多胺合成调控杨树血管分化
干旱胁迫是制约多年生木本植物生长发育的主要因素。木质部导管细胞是木本植物水分运输的关键细胞;然而,控制其形态发生变化的分子机制对缺水的反应仍不清楚。本文报道了干旱胁迫下多胺(PA)水平的变化,由PA合成关键酶PagSAMDC4a介导,通过过氧化氢(H2O2)浓度的调节影响84 K杨树(Populus alba × Populus glandulosa)血管形态发生。PagSAMDC4a主要在茎的韧皮部和形成层表达,在干旱条件下表达上调。过表达PagSAMDC4a (PagSAMDC4a‐OE)导致PA含量增加,导致茎木质部导管大小和密度降低。相反,PagSAMDC4a突变系表现出相反的表型,类似于用PA合成抑制剂甲基乙二醛-双(鸟酰腙)处理过的84 K植株。此外,与非转基因84 K植株和PagSAMDC4a突变系相比,PagSAMDC4a‐OE表现出更高的抗旱性。有趣的是,与84 K植株相比,PagSAMDC4a‐OE植株的H2O2水平显著降低,但PagSAMDC4a突变体的H2O2水平显著升高,这表明血管大小的变化可能是H2O2水平改变的结果。H2O2修复了PagSAMDC4a‐OE的小血管表型,而清除剂碘化钾则减少了PagSAMDC4a突变体木质部血管的大小,这支持了这一假设。总的来说,这些发现为PAs通过调节血管分化来增强抗旱性的作用提供了证据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Plant Biotechnology Journal
Plant Biotechnology Journal 生物-生物工程与应用微生物
CiteScore
20.50
自引率
2.90%
发文量
201
审稿时长
1 months
期刊介绍: Plant Biotechnology Journal aspires to publish original research and insightful reviews of high impact, authored by prominent researchers in applied plant science. The journal places a special emphasis on molecular plant sciences and their practical applications through plant biotechnology. Our goal is to establish a platform for showcasing significant advances in the field, encompassing curiosity-driven studies with potential applications, strategic research in plant biotechnology, scientific analysis of crucial issues for the beneficial utilization of plant sciences, and assessments of the performance of plant biotechnology products in practical applications.
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