Department of Systems Biology, University of Massachusetts Chan Medical School, Worcester, MA, USA.
Boyce Thompson Institute, Department of Chemistry and Chemical Biology, Cornell University, Ithaca, NY, USA.
Nat Metab. 2024 Aug;6(8):1584-1600. doi: 10.1038/s42255-024-01098-5. Epub 2024 Aug 8.
In humans, defects in leucine catabolism cause a variety of inborn errors in metabolism. Here, we use Caenorhabditis elegans to investigate the impact of mutations in mccc-1, an enzyme that functions in leucine breakdown. Through untargeted metabolomic and transcriptomic analyses we find extensive metabolic rewiring that helps to detoxify leucine breakdown intermediates via conversion into previously undescribed metabolites and to synthesize mevalonate, an essential metabolite. We also find that the leucine breakdown product 3,3-hydroxymethylbutyrate (HMB), commonly used as a human muscle-building supplement, is toxic to C. elegans and that bacteria modulate this toxicity. Unbiased genetic screens revealed interactions between the host and microbe, where components of bacterial pyrimidine biosynthesis mitigate HMB toxicity. Finally, upregulated ketone body metabolism genes in mccc-1 mutants provide an alternative route for biosynthesis of the mevalonate precursor 3-hydroxy-3-methylglutaryl-CoA. Our work demonstrates that a complex host-bacteria interplay rewires metabolism to allow host survival when leucine catabolism is perturbed.
在人类中,亮氨酸代谢缺陷会导致多种先天性代谢错误。在这里,我们使用秀丽隐杆线虫来研究在亮氨酸分解中起作用的 mccc-1 酶的突变的影响。通过非靶向代谢组学和转录组学分析,我们发现了广泛的代谢重排,有助于通过转化为以前未描述的代谢物来解毒亮氨酸分解中间体,并合成甲羟戊酸,这是一种必需代谢物。我们还发现亮氨酸分解产物 3,3-羟甲基丁酸盐(HMB),通常用作人类肌肉增强补充剂,对秀丽隐杆线虫有毒,并且细菌可以调节这种毒性。无偏遗传筛选揭示了宿主和微生物之间的相互作用,其中细菌嘧啶生物合成的成分减轻了 HMB 的毒性。最后,mccc-1 突变体中上调的酮体代谢基因为甲羟戊酸前体 3-羟基-3-甲基戊二酰辅酶 A 的生物合成提供了替代途径。我们的工作表明,当亮氨酸代谢受到干扰时,复杂的宿主-细菌相互作用会重新布线代谢,以允许宿主存活。