How lignin biosynthesis responds to nitrogen in plants: a scoping review

IF 3.6 3区 生物学 Q1 PLANT SCIENCES Plant Biology Pub Date : 2024-07-19 DOI:10.1111/plb.13627
Q. Peng, A. Shrestha, Y. Zhang, J. Fan, F. Yu, G. Wang
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Abstract

Nitrogen (N) plays a critical role in the functioning of key amino acids and synthetic enzymes responsible for the various stages of lignin biosynthesis. However, the precise mechanisms through which N influences lignin biosynthesis have not been fully elucidated. This scoping review explores how lignin biosynthesis responds to N in plants. A systematic search of the literature in several databases was conducted using relevant keywords. Only 44 of the 1842 selected studies contained a range of plant species, experimental conditions, and research approaches. Lignin content, structure, and biosynthetic pathways in response to N are discussed, and possible response mechanisms of lignin under low N are proposed. Among the selected studies, 64.52% of the studies reter to lignin content found a negative correlation between N availability and lignin content. Usually, high N decreases the lignin content, delays cell lignification, increases p-hydroxyphenyl propane (H) monomer content, and regulates lignin synthesis through the expression of key genes (PAL, 4CL, CCR, CAD, COMT, LAC, and POD) encoding miRNAs and transcription factors (e.g., MYB, bHLH). N deficiency enhances lignin synthesis through the accumulation of phenylpropanoids, phenolics, and soluble carbohydrates, and indirect changes in phytohormones, secondary metabolites, etc. This review provides new insights and important references for future studies on the regulation of lignin biosynthesis.

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植物的木质素生物合成如何对氮做出反应:范围综述。
氮(N)对负责木质素生物合成各个阶段的关键氨基酸和合成酶的功能起着至关重要的作用。然而,氮影响木质素生物合成的确切机制尚未完全阐明。这篇范围综述探讨了植物木质素生物合成如何对氮做出反应。我们使用相关关键词对多个数据库中的文献进行了系统检索。在所选的 1842 项研究中,只有 44 项研究包含一系列植物物种、实验条件和研究方法。讨论了木质素的含量、结构和生物合成途径对氮的响应,并提出了木质素在低氮条件下的可能响应机制。在所选研究中,64.52%的木质素含量相关研究发现氮供应量与木质素含量呈负相关。通常,高氮会降低木质素含量,延迟细胞木质化,增加对羟基苯丙烷(H)单体含量,并通过编码 miRNA 和转录因子(如 MYB、bHLH)的关键基因(PAL、4CL、CCR、CAD、COMT、LAC 和 POD)的表达来调节木质素合成。缺氮会通过苯丙酮类、酚类和可溶性碳水化合物的积累,以及植物激素、次生代谢产物等的间接变化,促进木质素的合成。本综述为今后木质素生物合成调控的研究提供了新的见解和重要参考。
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来源期刊
Plant Biology
Plant Biology 生物-植物科学
CiteScore
8.20
自引率
2.60%
发文量
109
审稿时长
3 months
期刊介绍: Plant Biology is an international journal of broad scope bringing together the different subdisciplines, such as physiology, molecular biology, cell biology, development, genetics, systematics, ecology, evolution, ecophysiology, plant-microbe interactions, and mycology. Plant Biology publishes original problem-oriented full-length research papers, short research papers, and review articles. Discussion of hot topics and provocative opinion articles are published under the heading Acute Views. From a multidisciplinary perspective, Plant Biology will provide a platform for publication, information and debate, encompassing all areas which fall within the scope of plant science.
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