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首页> 外文期刊>Current Biology: CB >Multiple Metabolic Innovations and Losses Are Associated with Major Transitions in Land Plant Evolution
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Multiple Metabolic Innovations and Losses Are Associated with Major Transitions in Land Plant Evolution

机译:多种代谢创新和损失与土地植物演进中的主要转变有关

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摘要

Investigating the evolution of plant biochemistry is challenging because few metabolites are preserved in fossils and because metabolic networks are difficult to experimentally characterize in diverse extant organisms. We report a comparative computational approach based on whole-genome metabolic pathway databases of eight species representative of major plant lineages, combined with homologous relationships among genes of 72 species from streptophyte algae to angiosperms. We use this genomic approach to identify metabolic gains and losses during land plant evolution. We extended our findings with additional analysis of 305 non-angiosperm plant transcriptomes. Our results revealed that genes encoding the complete biosynthetic pathway for brassinosteroid phytohormones and enzymes for brassinosteroid inactivation are present only in spermatophytes. Genes encoding only part of the biosynthesis pathway are present in ferns and lycophytes, indicating a stepwise evolutionary acquisition of this pathway. Nevertheless, brassinosteroids are ubiquitous in land plants, suggesting that brassinosteroid biosynthetic pathways differ between earlier- and later-diverging lineages. Conversely, genes for g ibberellin biosynthesis and inactivation using methyltransferases are found in all land plant lineages. This suggests that bioactive gibberellins might be present in bryophytes, although they have yet to be detected experimentally. We also found that cytochrome P450 oxidases involved in cutin and suberin production are absent in genomes of non-angiosperm plants that nevertheless do contain these biopolymers. Overall, we identified significant differences in crucial metabolic processes between angiosperms and earlier-diverging land plants and resolve details of the evolutionary history of several phytohormone and structural polymer biosynthetic pathways in land plants.
机译:调查植物生物化学的演变是挑战性的,因为在化石中保存了很少的代谢物,因为代谢网络难以在实验上进行实验表征。我们报告了一种基于主要植物谱系的八种种类的全基因组代谢途径数据库的比较计算方法,与来自链子藻类的72种基因的同源关系联系在嗜毒剂植物中。我们使用这种基因组方法来识别土地植物演进过程中的代谢增益和损失。我们扩展了我们的调查结果,额外分析了305种非贪眼植物转录om。我们的研究结果表明,编码芸苔类化合物植物激素和用于芸芸铜类固醇灭活的酶的完整生物合成途径的基因仅存在于精纺物质中。仅编码一部分生物合成途径的基因存在于蕨类植物和溶血性中,表明该途径的逐步进化孵化。然而,芸苔类化合物在土地植物中普遍存在,这表明芸苔类化合物的生物合成途径在早期和后来发散的谱系之间不同。相反,在所有土地植物谱系中都发现了GβBEBELLIN生物合成和使用甲基转移酶的灭活的基因。这表明生物活性吉布林蛋白可能存在于苔藓植物中,尽管它们尚未通过实验检测。我们还发现参与Cutin和Suberin生产中涉及的细胞色素P450氧化酶在非高血管植物的基因组中缺乏,所以仍然含有这些生物聚合物。总体而言,我们确定了高原植物和较早分歧的关键代谢过程的显着差异,并解决了几种植物植物中的几种植物激素和结构聚合物生物合成途径的进化史的细节。

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  • 来源
    《Current Biology: CB》 |2020年第10期|共29页
  • 作者单位

    Univ Oxford Dept Plant Sci South Parks Rd Oxford OX1 3RB England;

    Univ Oxford Dept Plant Sci South Parks Rd Oxford OX1 3RB England;

    Univ Oxford Dept Plant Sci South Parks Rd Oxford OX1 3RB England;

    Univ Oxford Dept Plant Sci South Parks Rd Oxford OX1 3RB England;

    Univ Oxford Dept Plant Sci South Parks Rd Oxford OX1 3RB England;

    Univ Oxford Dept Plant Sci South Parks Rd Oxford OX1 3RB England;

    Univ Oxford Dept Plant Sci South Parks Rd Oxford OX1 3RB England;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物科学;
  • 关键词

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