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首页> 外文期刊>Plant physiology >Combinatorial Evolution of a Terpene Synthase Gene Cluster Explains Terpene Variations in Oryza
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Combinatorial Evolution of a Terpene Synthase Gene Cluster Explains Terpene Variations in Oryza

机译:萜烯合酶基因簇的组合演化解释了羚羊的萜烯变化

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摘要

Terpenes are specialized metabolites ubiquitously produced by plants via the action of terpene synthases (TPSs). There are enormous variations in the types and amounts of terpenes produced by individual species. To understand the mechanisms responsible for such vast diversity, here we investigated the origin and evolution of a cluster of tandemly arrayed TPS genes in Oryza. In the Oryza species analyzed, TPS genes occur as a three-TPS cluster, a two-TPS cluster, and a single TPS gene in five, one, and one species, respectively. Phylogenetic analysis revealed the origins of the two-TPS and three-TPS clusters and the role of species-specific losses of TPS genes. Within the three-TPS clusters, one orthologous group exhibited conserved catalytic activities. The other two groups, both of which contained pseudogenes and/or nonfunctional genes, exhibited distinct profiles of terpene products. Sequence and structural analyses combined with functional validation identified several amino acids in the active site that are critical for catalytic activity divergence of the three orthologous groups. In the five Oryza species containing the three-TPS cluster, their functional TPS genes showed both conserved and species-specific expression patterns in insect-damaged and untreated plants. Emission patterns of volatile terpenes from each species were largely consistent with the expression of their respective TPS genes and the catalytic activities of the encoded enzymes. This study indicates the importance of combinatorial evolution of TPS genes in determining terpene variations among individual species, which includes gene duplication, retention/loss/degradation of duplicated genes, varying selection pressure, retention/divergence in catalytic activities, and divergence in expression regulation.
机译:Terpenes是通过萜烯合成酶(TPS)的作用植物普遍存在的专业代谢物。各种物种产生的Terpenes类型和数量存在巨大变化。为了了解对如此巨大的多样性负责的机制,在这里我们调查了羚羊中串联阵列的TPS基因集群的起源和演变。在分析的Oryza物种中,分别为三次TPS基因,分别发生在三次TPS簇,双TPS簇和一个物种中的单个TPS基因。系统发育分析揭示了TPS基因特异性损失的两TP和三TPS簇的起源。在三次TPS簇中,一个彻底组合的群体表现出保守的催化活性。另外两组,其中含有肽和/或非官能基因的两组,表现出萜烯产品的明显曲线。结合功能验证的序列和结构分析鉴定了活性位点中的几个氨基酸,对于三种外贸组织的催化活性分歧至关重要。在含有三次TPS簇的五种种类中,其功能性TPS基因在昆虫损坏和未经处理的植物中显示出保守和物种特异性表达模式。来自每个物种的挥发性萜烯的排放模式与它们各自的TPS基因的表达和编码酶的催化活性一致。该研究表明,TPS基因组合演化在单个物种中确定萜烯变化的重要性,包括基因重复,重复的基因的保留/损失/降解,不同选择压力,催化活性的保留/分歧,表达调控中的分歧。

著录项

  • 来源
    《Plant physiology》 |2020年第1期|共13页
  • 作者单位

    Univ Tennessee Dept Plant Sci Knoxville TN 37996 USA;

    Max Planck Inst Chem Ecol Dept Biochem D-07745 Jena Germany;

    Univ Tennessee Dept Plant Sci Knoxville TN 37996 USA;

    Univ Tennessee Dept Plant Sci Knoxville TN 37996 USA;

    Univ Tennessee Dept Plant Sci Knoxville TN 37996 USA;

    China Natl Rice Res Inst State Key Lab Rice Biol Hangzhou 310006 Peoples R China;

    China Natl Rice Res Inst State Key Lab Rice Biol Hangzhou 310006 Peoples R China;

    Univ Tennessee Dept Plant Sci Knoxville TN 37996 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 植物生理学;
  • 关键词

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