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Graph-Based Analysis of the Metabolic Exchanges between Two Co-Resident Intracellular Symbionts Baumannia cicadellinicola and Sulcia muelleri with Their Insect Host Homalodisca coagulata

机译:基于图的分析的两个共同居住的胞内共生体鲍曼曼加斯卡迪利尼科拉和Sulcia muelleri与它们的昆虫寄主Homalodisca凝结菌之间的代谢交换

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摘要

Endosymbiotic bacteria from different species can live inside cells of the same eukaryotic organism. Metabolic exchanges occur between host and bacteria but also between different endocytobionts. Since a complete genome annotation is available for both, we built the metabolic network of two endosymbiotic bacteria, Sulcia muelleri and Baumannia cicadellinicola, that live inside specific cells of the sharpshooter Homalodisca coagulata and studied the metabolic exchanges involving transfers of carbon atoms between the three. We automatically determined the set of metabolites potentially exogenously acquired (seeds) for both metabolic networks. We show that the number of seeds needed by both bacteria in the carbon metabolism is extremely reduced. Moreover, only three seeds are common to both metabolic networks, indicating that the complementarity of the two metabolisms is not only manifested in the metabolic capabilities of each bacterium, but also by their different use of the same environment. Furthermore, our results show that the carbon metabolism of S. muelleri may be completely independent of the metabolic network of B. cicadellinicola. On the contrary, the carbon metabolism of the latter appears dependent on the metabolism of S. muelleri, at least for two essential amino acids, threonine and lysine. Next, in order to define which subsets of seeds (precursor sets) are sufficient to produce the metabolites involved in a symbiotic function, we used a graph-based method, PITUFO, that we recently developed. Our results highly refine our knowledge about the complementarity between the metabolisms of the two bacteria and their host. We thus indicate seeds that appear obligatory in the synthesis of metabolites are involved in the symbiotic function. Our results suggest both B. cicadellinicola and S. muelleri may be completely independent of the metabolites provided by the co-resident endocytobiont to produce the carbon backbone of the metabolites provided to the symbiotic system (., thr and lys are only exploited by B. cicadellinicola to produce its proteins).
机译:来自不同物种的内共生细菌可以生活在同一真核生物的细胞内。代谢交换发生在宿主和细菌之间,也发生在不同的胞吞生物体内。由于两种基因都有完整的基因组注释,因此我们建立了两种内共生细菌Sulcia muelleri和Baumannia cicadellinicola的代谢网络,它们生活在神枪手Homalodisca凝结菌的特定细胞内,并研究了涉及三者之间碳原子转移的代谢交换。我们自动确定了两个代谢网络可能从外部获取的(种子)代谢物的集合。我们表明,两种细菌在碳代谢中所需的种子数量大大减少。此外,两个代谢网络只有三个种子是共同的,这表明两个代谢的互补性不仅表现在每种细菌的代谢能力上,而且还表现在对同一环境的不同使用上。此外,我们的结果表明,穆勒氏链球菌的碳代谢可能完全独立于cicadellinicola的代谢网络。相反,后者的碳代谢似乎依赖于穆勒链球菌的代谢,至少对于两个必需氨基酸苏氨酸和赖氨酸而言。接下来,为了定义哪些种子子集(前体集合)足以产生参与共生功能的代谢物,我们使用了最近开发的基于图的方法PITUFO。我们的结果极大地完善了我们对两种细菌及其宿主代谢之间互补性的认识。因此,我们表明在代谢产物合成中必须出现的种子参与了共生功能。我们的结果表明cicadellinicola和S. muelleri可能完全独立于共生内生菌素提供的代谢产物,以产生提供给共生系统的代谢产物的碳骨架(。thr和lys仅被B利用。 cicadellinicola生产其蛋白质)。

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