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Structural characterization of acyl-CoA oxidases reveals a direct link between pheromone biosynthesis and metabolic state in Caenorhabditis elegans

机译:酰基辅酶A氧化酶的结构表征揭示信息素生物合成与秀丽隐杆线虫的代谢状态之间存在直接联系

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摘要

Caenorhabditis elegans secretes ascarosides as pheromones to communicate with other worms and to coordinate the development and behavior of the population. Peroxisomal β-oxidation cycles shorten the side chains of ascaroside precursors to produce the short-chain ascaroside pheromones. Acyl-CoA oxidases, which catalyze the first step in these β-oxidation cycles, have different side chain-length specificities and enable C. elegans to regulate the production of specific ascaroside pheromones. Here, we determine the crystal structure of the acyl-CoA oxidase 1 (ACOX-1) homodimer and the ACOX-2 homodimer bound to its substrate. Our results provide a molecular basis for the substrate specificities of the acyl-CoA oxidases and reveal why some of these enzymes have a very broad substrate range, whereas others are quite specific. Our results also enable predictions to be made for the roles of uncharacterized acyl-CoA oxidases in C. elegans and in other nematode species. Remarkably, we show that most of the C. elegans acyl-CoA oxidases that participate in ascaroside biosynthesis contain a conserved ATP-binding pocket that lies at the dimer interface, and we identify key residues in this binding pocket. ATP binding induces a structural change that is associated with tighter binding of the FAD cofactor. Mutations that disrupt ATP binding reduce FAD binding and reduce enzyme activity. Thus, ATP may serve as a regulator of acyl-CoA oxidase activity, thereby directly linking ascaroside biosynthesis to ATP concentration and metabolic state.
机译:秀丽隐杆线虫分泌a虫苷作为信息素与其他蠕虫进行通讯并协调种群的发育和行为。过氧化物酶体的β-氧化循环缩短了scar虫苷前体的侧链,从而产生了短链a虫苷信息素。催化这些β氧化循环第一步的酰基辅酶A氧化酶具有不同的侧链长度特异性,并使秀丽隐杆线虫能够调节特定的a甙信息素的产生。在这里,我们确定酰基辅酶A氧化酶1(ACOX-1)同二聚体和与它的底物结合的ACOX-2同二聚体的晶体结构。我们的结果为酰基辅酶A氧化酶的底物特异性提供了分子基础,并揭示了为什么其中一些酶具有非常宽的底物范围,而另一些却具有很高的特异性。我们的结果还使人们能够对秀丽隐杆线虫和其他线虫物种中未表征的酰基辅酶A氧化酶的作用做出预测。引人注目的是,我们表明大多数参与线虫糖苷生物合成的秀丽隐杆线虫酰基辅酶A氧化酶都包含一个保守的ATP结合袋,位于二聚体界面,并且我们在该结合袋中鉴定出关键残基。 ATP结合诱导结构变化,该变化与FAD辅因子的更紧密结合有关。破坏ATP结合的突变会降低FAD结合并降低酶活性。因此,ATP可以充当酰基辅酶A氧化酶活性的调节剂,从而将a糖苷的生物合成与ATP浓度和代谢状态直接联系起来。

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