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Survey of Genes Involved in Biosynthesis, Transport, and Signaling of Phytohormones with Focus on<i>Solanum lycopersicum</i>

茉莉酸 生物 龙葵 基因 植物 计算生物学 植物激素 转录组 生长素 细胞生物学 非生物胁迫 串扰 拟南芥 脱落酸 生物合成 次生代谢 拟南芥 代谢途径 基因表达 转录因子 植物对草食的防御 遗传学 突变体
作者
Stefan Simm,Klaus-Dieter Scharf,Sridharan Jegadeesan,Maria Luisa Chiusano,Nurit Firon,Enrico Schleiff
出处
期刊:Bioinformatics and Biology Insights [SAGE Publishing]
卷期号:10: BBI.S38425-BBI.S38425 被引量:18
标识
DOI:10.4137/bbi.s38425
摘要

Phytohormones control the development and growth of plants, as well as their response to biotic and abiotic stress. The seven most well-studied phytohormone classes defined today are as follows: auxins, ethylene, cytokinin, abscisic acid, jasmonic acid, gibberellins, and brassinosteroids. The basic principle of hormone regulation is conserved in all plants, but recent results suggest adaptations of synthesis, transport, or signaling pathways to the architecture and growth environment of different plant species. Thus, we aimed to define the extent to which information from the model plant Arabidopsis thaliana is transferable to other plants such as Solanum lycopersicum. We extracted the co-orthologues of genes coding for major pathway enzymes in A. thaliana from the translated genomes of 12 species from the clade Viridiplantae. Based on predicted domain architecture and localization of the identified proteins from all 13 species, we inspected the conservation of phytohormone pathways. The comparison was complemented by expression analysis of (co-) orthologous genes in S. lycopersicum. Altogether, this information allowed the assignment of putative functional equivalents between A. thaliana and S. lycopersicum but also pointed to some variations between the pathways in eudicots, monocots, mosses, and green algae. These results provide first insights into the conservation of the various phytohormone pathways between the model system A. thaliana and crop plants such as tomato. We conclude that orthologue prediction in combination with analysis of functional domain architecture and intracellular localization and expression studies are sufficient tools to transfer information from model plants to other plant species. Our results support the notion that hormone synthesis, transport, and response for most part of the pathways are conserved, and species-specific variations can be found.

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