苯丙氨酸解氨酶2调控柱花草次生代谢和锰耐受性

IF 6.5 1区 生物学 Q1 PLANT SCIENCES Plant Physiology Pub Date : 2025-01-06 DOI:10.1093/plphys/kiaf005
Linjie Wang, Jifu Li, Liting Liu, Rongshu Dong, Guodao Liu, Idupulapati M Rao, Zhijian Chen
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引用次数: 0

摘要

柱花草(Stylosanthes guianensis)是一种热带豆科植物,对锰(Mn)毒性具有相当的耐受性,这严重限制了植物在酸性土壤中的生长。为了阐明柱头锰解毒机制,本研究研究了过量锰对柱头根代谢的影响,并探讨了代谢酶在锰耐受中的作用。过量的锰在两种柱头基因型中触发氧化应激。然而,在耐锰基因型RY5中观察到mn刺激的抗氧化防御系统激活,而在mn敏感基因型TF0317中没有观察到。对耐锰的RY5根系进行代谢组学分析,发现有大量过量的mn响应代谢物,主要与类黄酮和酚酸有关。此外,茎柱根中过量的Mn会导致苯丙素/类黄酮通路相关的一系列基因上调,尤其是在RY5中。我们鉴定了过量mn诱导基因SgPAL2,编码苯丙氨酸解氨酶。SgPAL2定位于内质网。与对照植株相比,过量mn条件下SgPAL2过表达导致茎和根干重增加,而抑制SgPAL2则相反。此外,SgPAL2过表达显著改变了次生代谢,特别是类黄酮代谢。在一项生物测定中,外源毛蕊异黄酮(一种sgpal2调节的异黄酮)可以减轻过量Mn对根伸长的抑制,表明毛蕊异黄酮可以解毒Mn。综上所述,这些发现表明SgPAL2通过代谢调节在柱头增强Mn耐受性中起关键作用。
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PHENYLALANINE AMMONIA-LYASE 2 regulates secondary metabolism and confers manganese tolerance in Stylosanthes guianensis
Stylo (Stylosanthes guianensis) is a tropical legume that exhibits considerable tolerance to manganese (Mn) toxicity, which severely constrains plant growth in acidic soils. To elucidate the Mn detoxification mechanisms in stylo, this study investigated the excess Mn-regulated metabolic profile of stylo roots and examined the role of metabolic enzymes in Mn tolerance. Excess Mn triggered oxidative stress in the two stylo genotypes tested. However, Mn-stimulated activation of antioxidant defense systems was observed in the Mn-tolerant genotype RY5 but not in the Mn-sensitive genotype TF0317. Metabolomic analysis of the Mn-tolerant RY5 roots revealed numerous excess Mn-responsive metabolites, mainly related to flavonoids and phenolic acids. Furthermore, a set of genes involved in the phenylpropanoid/flavonoid pathway were upregulated by excess Mn in stylo roots, especially in RY5. We characterized the excess Mn-inducible gene SgPAL2, encoding phenylalanine ammonia-lyase. SgPAL2 localized to the endoplasmic reticulum. Compared to control plants, SgPAL2 overexpression led to increases in shoot and root dry weights under Mn-excess conditions, whereas SgPAL2 suppression had the opposite effect. Moreover, SgPAL2 overexpression dramatically altered secondary metabolism, particularly flavonoid metabolism. In a bioassay, the inhibition of root elongation caused by excess Mn was alleviated by treatment with exogenous calycosin, an SgPAL2-regulated isoflavonoid, suggesting calycosin can detoxify Mn. Taken together, these findings indicate that SgPAL2 plays a critical role in enhancing Mn tolerance in stylo through metabolic regulation.
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来源期刊
Plant Physiology
Plant Physiology 生物-植物科学
CiteScore
12.20
自引率
5.40%
发文量
535
审稿时长
2.3 months
期刊介绍: Plant Physiology® is a distinguished and highly respected journal with a rich history dating back to its establishment in 1926. It stands as a leading international publication in the field of plant biology, covering a comprehensive range of topics from the molecular and structural aspects of plant life to systems biology and ecophysiology. Recognized as the most highly cited journal in plant sciences, Plant Physiology® is a testament to its commitment to excellence and the dissemination of groundbreaking research. As the official publication of the American Society of Plant Biologists, Plant Physiology® upholds rigorous peer-review standards, ensuring that the scientific community receives the highest quality research. The journal releases 12 issues annually, providing a steady stream of new findings and insights to its readership.
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