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首页> 外文期刊>Frontiers in Plant Science >Tissue-Specific Floral Transcriptome Analysis of the Sexually Deceptive Orchid Chiloglottis trapeziformis Provides Insights into the Biosynthesis and Regulation of Its Unique UV-B Dependent Floral Volatile, Chiloglottone 1
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Tissue-Specific Floral Transcriptome Analysis of the Sexually Deceptive Orchid Chiloglottis trapeziformis Provides Insights into the Biosynthesis and Regulation of Its Unique UV-B Dependent Floral Volatile, Chiloglottone 1

机译:具性欺骗性兰花 traplogitrapeziformis 的组织特异性花转录组分析提供了对其独特的依赖UV-B的花卉挥发物Chiloglottone 1的生物合成和调控的见解。

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The Australian sexually deceptive orchid, Chiloglottis trapeziformis , employs a unique UV-B-dependent floral volatile, chiloglottone 1, for specific male wasp pollinator attraction. Chiloglottone 1 and related variants (2,5-dialkylcyclohexane-1,3-diones), represent a unique class of specialized metabolites presumed to be the product of cyclization between two fatty acid (FA) precursors. However, the genes involved in the biosynthesis of precursors, intermediates, and transcriptional regulation remains to be discovered. Chiloglottone 1 production occurs in the aggregation of calli (callus) on the labellum under continuous UV-B light. Therefore, deep sequencing, transcriptome assembly, and differential expression (DE) analysis were performed across different tissue types and UV-B treatments. Transcripts expressed in the callus and labellum (~23,000 transcripts) were highly specialized and enriched for a diversity of known and novel metabolic pathways. DE analysis between chiloglottone-emitting callus versus the remainder of the labellum showed strong coordinated induction of entire FA biosynthesis and β-oxidation pathways including genes encoding Ketoacyl-ACP Synthase, Acyl-CoA Oxidase, and Multifunctional Protein. Phylogenetic analysis revealed potential gene duplicates with tissue-specific differential regulation including two Acyl-ACP Thioesterase B and a Ketoacyl-ACP Synthase genes. UV-B treatment induced the activation of UVR8-mediated signaling and large-scale transcriptome changes in both tissues, however, neither FA biosynthesis/β-oxidation nor other lipid metabolic pathways showed clear indications of concerted DE. Gene co-expression network analysis identified three callus-specific modules enriched with various lipid metabolism categories. These networks also highlight promising candidates involved in the cyclization of chiloglottone 1 intermediates (e.g., Bet v I and dimeric α,β barrel proteins) and orchestrating regulation of precursor pathways (e.g., AP2/ERF) given a strong co-regulation with FA biosynthesis/β-oxidation genes. Possible alternative biosynthetic routes for precursors (e.g., aldehyde dehydrogenases) were also indicated. Our comprehensive study constitutes the first step toward understanding the biosynthetic pathways involved in chiloglottone 1 production in Chiloglottis trapeziformis – supporting the roles of FA metabolism in planta , gene duplication as a potential source of new genes, and co-regulation of novel pathway genes in a tissue-specific manner. This study also provides a new and valuable resource for future discovery and comparative studies in plant specialized metabolism of other orchids and non-model plants.
机译:澳大利亚的性欺骗兰花Chiloglottis trapeziformis使用独特的UV-B依赖性花卉挥发物chiloglottone 1,以吸引特定的雄性黄蜂授粉媒介。 Chiloglottone 1及其相关变体(2,5-二烷基环己烷-1,3-二酮)代表一类特殊的专门代谢产物,推测是两种脂肪酸(FA)前体之间环化的产物。然而,涉及前体,中间体和转录调控的生物合成的基因仍有待发现。 Chiloglottone 1的产生发生在连续UV-B光线下的lum上愈伤组织(愈伤组织)的聚集中。因此,在不同的组织类型和UV-B治疗中进行了深度测序,转录组组装和差异表达(DE)分析。愈伤组织和label中表达的转录本(约23,000个转录本)高度专业化,并丰富了多种已知和新颖的代谢途径。发出壳聚糖的愈伤组织与其余部分之间的DE分析表明,整个FA生物合成和β-氧化途径(包括编码酮酰基-ACP合酶,酰基-CoA氧化酶和多功能蛋白的基因)强烈协同诱导。系统发育分析揭示了潜在的基因重复组织特异性差异调节,包括两个酰基-ACP硫酯酶B和一个酮基-ACP合酶基因。 UV-B处理诱导了两个组织中UVR8介导的信号传导和大规模转录组变化的激活,但是,FA生物合成/β-氧化作用和其他脂质代谢途径均未显示出协同的DE的明确迹象。基因共表达网络分析鉴定了三个富含各种脂质代谢类别的愈伤组织特异性模块。这些网络也突出显示了有前途的候选物,它们参与了chilotlottone 1中间体(例如Bet v I和二聚α,β桶蛋白)的环化以及协调与FA生物合成的强调控的前体途径的调控(例如AP2 / ERF)。 /β-氧化基因。还指出了前体(例如醛脱氢酶)的可能的替代生物合成途径。我们全面的研究构成了迈向了解梯形奇异球菌Chiloglottone 1生产所涉及的生物合成途径的第一步–支持FA代谢在植物中的作用,基因复制作为新基因的潜在来源以及共同调控烟草中新途径基因的作用。组织特定的方式。该研究还为其他兰花和非典范植物的植物专门代谢中的未来发现和比较研究提供了新的宝贵资源。

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