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一个协调生长与环境适应的非特异性植物激素调控网络。

A Non-Specific Phytohormone Regulatory Network in Coordinates Growth and Environmental Adaptation.

作者信息

Cui Jiexin, Zhu Jinli, Dai Yinru, Yuan Jincheng, Lin Wen, Liu Tao

机构信息

State Key Laboratory of Marine Environmental Science, Xiamen University, Xiamen 361102, China.

College of Ocean and Earth Sciences, Xiamen University, Xiamen 361102, China.

出版信息

Plants (Basel). 2025 Jun 13;14(12):1821. doi: 10.3390/plants14121821.

Abstract

() is a large-scale intertidal aquatic plant that exhibits characteristics such as rhizoid, holdfast, and blade differentiation. It demonstrates remarkable environmental adaptability. However, compared with higher plants, details about its phytohormone content, distribution, synthesis, and accumulation remain poorly understood. In this study, the phytohormone contents distribution and expression patterns of synthetic genes in different parts of , including the rhizoid, petiole, basis, middle, and tip, were analyzed in detail by combining targeted metabolomics and transcriptomics analyses. A total of 20 phytohormones were detected in , including auxin, abscisic acid (ABA), cytokinin (CTK), ethylene (ETH), gibberellin (GA), jasmonate acid (JA), and salicylic acid (SA), with significant site-differentiated accumulation. ABA and JA were significantly enriched in the tips (28.01 ng·g FW and 170.67 ng·g FW, respectively), whereas SA accumulated specifically only in the rhizoid. We also identified 12 phytohormones, such as gibberellin A1, methyl jasmonate, and trans-zeatin for the first time in . Transcriptomic profiling revealed the tissue-specific expression of phytohormone biosynthesis genes, such as (CTK synthesis), in the rhizoids and (JA/ABA synthesis) in the tips. Key pathways, such as carotenoid biosynthesis and cysteine methionine metabolism, were found to be differentially enriched across tissues, aligning with hormone accumulation patterns. Additionally, an enrichment analysis of differentially expressed genes between various parts indicated that different parts of performed distinct functions even though it does not have organ differentiation. This study is the first to uncover the distribution characteristics of phytohormones and their synthetic differences in different parts of and elucidates how achieves functional specialization through non-specific phytohormone regulation despite lacking organ differentiation, which provides an important theoretical basis for research on the developmental biology of macroalgae and their mechanisms of response to adversity.

摘要

()是一种大型潮间带水生植物,具有假根、固着器和叶片分化等特征。它表现出显著的环境适应性。然而,与高等植物相比,其植物激素含量、分布、合成和积累的细节仍知之甚少。在本研究中,通过结合靶向代谢组学和转录组学分析,详细分析了()不同部位(包括假根、叶柄、基部、中部和尖端)的植物激素含量分布和合成基因的表达模式。在()中共检测到20种植物激素,包括生长素、脱落酸(ABA)、细胞分裂素(CTK)、乙烯(ETH)、赤霉素(GA)、茉莉酸(JA)和水杨酸(SA),具有显著的位点差异积累。ABA和JA在尖端显著富集(分别为28.01 ng·g FW和170.67 ng·g FW),而SA仅在假根中特异性积累。我们还首次在()中鉴定出12种植物激素,如赤霉素A1、茉莉酸甲酯和反式玉米素。转录组分析揭示了植物激素生物合成基因的组织特异性表达,如假根中的(CTK合成)和尖端中的(JA/ABA合成)。发现关键途径,如类胡萝卜素生物合成和半胱氨酸甲硫氨酸代谢,在不同组织中差异富集,与激素积累模式一致。此外,对不同部位之间差异表达基因的富集分析表明,尽管()没有器官分化,但其不同部位执行着不同的功能。本研究首次揭示了()不同部位植物激素的分布特征及其合成差异,并阐明了()如何通过非特异性植物激素调节实现功能特化,尽管缺乏器官分化,这为大型海藻发育生物学及其逆境响应机制的研究提供了重要的理论基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f2c7/12196923/3f352fb8bdf1/plants-14-01821-g001.jpg

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