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Metagenomic and Metatranscriptomic Analyses of Diverse Watermelon Cultivars Reveal the Role of Fruit Associated Microbiome in Carbohydrate Metabolism and Ripening of Mature Fruits

机译:西瓜品种的基因组学和转录组学分析揭示了水果相关微生物组在碳水化合物代谢和成熟果实成熟中的作用

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摘要

The plant microbiome is a key determinant of plant health and productivity, and changes in the plant microbiome can alter the tolerance to biotic and abiotic stresses and the quality of end produce. Little is known about the microbial diversity and its effect on carbohydrate metabolism in ripe fruits. In this study, we aimed to understand the diversity and function of microorganisms in relation to carbohydrate metabolism of ripe watermelon fruits. We used 16S metagenomics and RNAseq metatranscriptomics for analysis of red (PI459074, Congo, and SDRose) and yellow fruit-flesh cultivars (PI227202, PI435990, and JBush) of geographically and metabolically diverse watermelon cultivars. Metagenomics data showed that Proteobacteria were abundant in SDRose and PI227202, whereas Cyanobacteria were most abundant in Congo and PI4559074. In the case of metatranscriptome data, Proteobacteria was the most abundant in all cultivars. High expression of genes linked to infectious diseases and the expression of peptidoglycan hydrolases associated to pathogenicity of eukaryotic hosts was observed in SDRose, which could have resulted in low microbial diversity in this cultivar. The presence of GH28, associated with polygalacturonase activity in JBush and SDRose could be related to cell wall modifications including de-esterification and depolymerization, and consequent loss of galacturonic acid and neutral sugars. Moreover, based on the KEGG annotation of the expressed genes, nine α-galactosidase genes involved in key processes of galactosyl oligosaccharide metabolism, such as raffinose family were identified and galactose metabolism pathway was reconstructed. Results of this study underline the links between the host and fruit-associated microbiome in carbohydrate metabolism of the ripe fruits. The cultivar difference in watermelon reflects the quantum and diversity of the microbiome, which would benefit watermelon and other plant breeders aiming at the holobiont concept to incorporate associated microbiomes in breeding programs.
机译:植物微生物组是决定植物健康和生产力的关键因素,植物微生物组的变化会改变对生物和非生物胁迫的耐受性以及最终产品的质量。关于微生物多样性及其对成熟果实中碳水化合物代谢的影响知之甚少。在这项研究中,我们旨在了解与成熟西瓜果实碳水化合物代谢有关的微生物的多样性和功能。我们使用16S宏基因组学和RNAseq元转录组学来分析地理上和代谢上不同的西瓜品种的红色(PI459074,刚果和SDRose)和黄色果肉品种(PI227202,PI435990和JBush)。元基因组学数据显示,SDRose和PI227202中的细菌含量很高,而刚果和PI4559074中的蓝细菌含量最高。就元转录组数据而言,变形杆菌是所有品种中含量最高的。在SDRose中观察到了与传染病相关的基因的高表达以及与真核宿主致病性相关的肽聚糖水解酶的表达,这可能导致该品种的微生物多样性低。 GH28的存在与JBush和SDRose中的聚半乳糖醛酸酶活性有关,可能与细胞壁修饰有关,包括脱酯化和解聚反应,以及半乳糖醛酸和中性糖的损失。此外,基于表达基因的KEGG注释,鉴定了涉及半乳糖基寡糖代谢关键过程的9个α-半乳糖苷酶基因,如棉子糖家族,并重建了半乳糖代谢途径。这项研究的结果强调了宿主与成熟微生物的糖代谢中与水果相关的微生物组之间的联系。西瓜的栽培品种差异反映了微生物组的数量和多样性,这将使西瓜和其他针对全生命周期概念的植物育种者受益,将相关的微生物群纳入育种程序。

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