Evolutionary analysis of anthocyanin biosynthetic genes: insights into abiotic stress adaptation.

IF 3.8 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Plant Molecular Biology Pub Date : 2024-12-16 DOI:10.1007/s11103-024-01540-y
Sebastian Buitrago, Xinsun Yang, Lianjun Wang, Rui Pan, Wenying Zhang
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Abstract

Anthocyanin regulation can be fruitfully explored from a diverse perspective by studying distantly related model organisms. Land plants pioneers faced a huge evolutionary leap, involving substantial physiological and genetic changes. Anthocyanins have evolved alongside these changes, becoming versatile compounds capable of mitigating terrestrial challenges such as drought, salinity, extreme temperatures and high radiation. With the accessibility of whole-genome sequences from ancient plant lineages, deeper insights into the evolution of key metabolic pathways like phenylpropanoids have emerged. Despite understanding the function of anthocyanins under stress, gaps remain in uncovering the precise metabolic and regulatory mechanisms driving their overproduction under stressful conditions. For example, the regulatory effect of reactive oxygen species (ROS) on well-known transcription factors like MYBs is not fully elucidated. This manuscript presents an evolutionary analysis of the anthocyanin biosynthetic pathway to elucidate key genes. CINNAMATE 4-HYDROXYLASE (C4H) and CHALCONE ISOMERASE (CHI2) received particular attention. C4H exposes remarkable differences between aquatic and land plants, while CHI2 demonstrates substantial variation in gene copy number and sequence similarity across species. The role of transcription factors, such as MYB, and the involvement of ROS in the regulation of anthocyanin biosynthesis are discussed. Complementary gene expression analyses under abiotic stress in Arabidopsis thaliana, Selaginella moellendorffii, and Marchantia polymorpha reveal intriguing gene-stress relationships. This study highlights evolutionary trends and the regulatory complexity of anthocyanin production under abiotic stress, providing insights and opening avenues for future research.

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花青素生物合成基因的进化分析:对非生物胁迫适应的启示。
通过研究远亲模式生物,花青素调控可以从不同的角度进行有益的探索。陆地植物的先驱者面临着巨大的进化飞跃,涉及大量的生理和基因变化。花青素随着这些变化而进化,成为能够缓解干旱、盐度、极端温度和高辐射等陆地挑战的多功能化合物。随着古代植物谱系全基因组序列的可及性,对苯丙素等关键代谢途径的进化有了更深入的了解。尽管了解花青素在应激条件下的功能,但在揭示其在应激条件下过度生产的精确代谢和调节机制方面仍然存在空白。例如,活性氧(ROS)对MYBs等众所周知的转录因子的调控作用尚未完全阐明。本文介绍了花青素生物合成途径的进化分析,以阐明关键基因。肉桂酸4-羟化酶(C4H)和查尔酮异构酶(ch2)得到了特别的关注。C4H揭示了水生植物和陆生植物之间的显著差异,而CHI2则显示了物种间基因拷贝数和序列相似性的显著差异。本文讨论了转录因子(如MYB)和ROS在花青素生物合成调控中的作用。在非生物胁迫下,拟南芥、卷柏和多形地豆的互补基因表达分析揭示了有趣的基因-胁迫关系。该研究突出了非生物胁迫下花青素产生的进化趋势和调控复杂性,为未来的研究提供了新的见解和途径。
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来源期刊
Plant Molecular Biology
Plant Molecular Biology 生物-生化与分子生物学
自引率
2.00%
发文量
95
审稿时长
1.4 months
期刊介绍: Plant Molecular Biology is an international journal dedicated to rapid publication of original research articles in all areas of plant biology.The Editorial Board welcomes full-length manuscripts that address important biological problems of broad interest, including research in comparative genomics, functional genomics, proteomics, bioinformatics, computational biology, biochemical and regulatory networks, and biotechnology. Because space in the journal is limited, however, preference is given to publication of results that provide significant new insights into biological problems and that advance the understanding of structure, function, mechanisms, or regulation. Authors must ensure that results are of high quality and that manuscripts are written for a broad plant science audience.
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