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首页> 外文期刊>ACS Chemical Biology >Tryptophan Metabolism in Caenorhabditis elegans Links Aggregation Behavior to Nutritional Status
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Tryptophan Metabolism in Caenorhabditis elegans Links Aggregation Behavior to Nutritional Status

机译:Caenorhabdise elegans的色氨酸代谢将聚集行为与营养状况联系起来

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Caenorhabditis elegans uses aggregation pheromones to communicate its nutritional status and recruit fellow members of its species to food sources. These aggregation pheromones include the IC-ascarosides, ascarosides modified with an indole-3-carbonyl (IC) group on the 4'-position of the ascarylose sugar. Nothing is known about the biosynthesis of the IC modification beyond the fact that it is derived from tryptophan. Here, we show that C. elegans produces endogenously several indole-containing metabolites, including indole-3-pyruvic acid (IPA), indole-3-acetic acid (IAA; auxin), and indole-3-carboxylic acid, and that these metabolites are intermediates in the biosynthetic pathway from tryptophan to the IC group. Stable isotope-labeled IPA and IAA are incorporated into the IC-ascarosides. Importantly, we show that flux through the biosynthetic pathway is affected by the activity of the pyruvate dehydrogenase complex (PDC). Knockdown of the PDC by RNA interference leads to an accumulation of upstream metabolites and a reduction in downstream metabolites in the pathway. Our results show that production of aggregation pheromones is linked to PDC activity and that aggregation behavior may reflect a favorable metabolic state in the worm. Lastly, we show that treatment of C. elegans with indole-containing metabolites in the pathway induces the biosynthesis of the IC-ascarosides. Because the natural environment of C. elegans is rotting plant material, indole-containing metabolites in this environment could potentially stimulate pheromone biosynthesis and aggregation behavior in the worm. Thus, there may be important links between tryptophan metabolism in C. elegans and in plants and bacteria that enable interkingdom signaling.
机译:Caenorhabditiseldiss使用聚合信息素来传达其营养状况并将其物种成员招募到食物来源。这些聚集信息素包括IC-ascarosides,用亚氨基糖糖4'-位置用吲哚-3-羰基(IC)组改性的蛔虫苷。对于IC改性的生物合成而言,没有任何内容,超出了它来自色氨酸的事实。在这里,我们表明C.杆状杆菌的内源性几种含吲哚代谢物,包括吲哚-3-丙酮酸(IPA),吲哚-3-乙酸(IAA;植物素)和吲哚-3-羧酸,以及这些代谢物是从色氨酸到IC组的生物合成途径中间体。稳定的同位素标记的IPA和IAA掺入IC-ascarosides中。重要的是,我们表明,通过生物合成途径的通量受到丙酮酸脱氢酶复合物(PDC)的活性的影响。通过RNA干扰敲低PDC导致上游代谢物的积累和途径中下游代谢物的减少。我们的研究结果表明,聚集信息素的产生与PDC活动相关,并且聚集行为可能反映蠕虫中有利的代谢状态。最后,我们表明,在途径中,含有含吲哚代谢物的胶带杆菌的治疗诱导IC-ascarosides的生物合成。由于C.杆状杆虫的自然环境是腐烂的植物材料,因此在这种环境中含吲哚代谢物可能刺激蠕虫中的信息素生物合成和聚集行为。因此,C.杆状杆菌和植物和细菌中的色氨酸代谢之间可能存在重要的联系,使能互相信令。

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