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进化相关的宿主和微生物途径调节秀丽隐杆线虫的脂肪去饱和作用。

Evolutionarily related host and microbial pathways regulate fat desaturation in C. elegans.

作者信息

Fox Bennett W, Helf Maximilian J, Burkhardt Russell N, Artyukhin Alexander B, Curtis Brian J, Palomino Diana Fajardo, Schroeder Allen F, Chaturbedi Amaresh, Tauffenberger Arnaud, Wrobel Chester J J, Zhang Ying K, Lee Siu Sylvia, Schroeder Frank C

机构信息

Boyce Thompson Institute and Department of Chemistry and Chemical Biology, Cornell University, Ithaca, NY, 14853, USA.

Chemistry Department, College of Environmental Science and Forestry, State University of New York, Syracuse, NY, 13210, USA.

出版信息

Nat Commun. 2024 Feb 19;15(1):1520. doi: 10.1038/s41467-024-45782-2.

Abstract

Fatty acid desaturation is central to metazoan lipid metabolism and provides building blocks of membrane lipids and precursors of diverse signaling molecules. Nutritional conditions and associated microbiota regulate desaturase expression, but the underlying mechanisms have remained unclear. Here, we show that endogenous and microbiota-dependent small molecule signals promote lipid desaturation via the nuclear receptor NHR-49/PPARα in C. elegans. Untargeted metabolomics of a β-oxidation mutant, acdh-11, in which expression of the stearoyl-CoA desaturase FAT-7/SCD1 is constitutively increased, revealed accumulation of a β-cyclopropyl fatty acid, becyp#1, that potently activates fat-7 expression via NHR-49. Biosynthesis of becyp#1 is strictly dependent on expression of cyclopropane synthase by associated bacteria, e.g., E. coli. Screening for structurally related endogenous metabolites revealed a β-methyl fatty acid, bemeth#1, which mimics the activity of microbiota-dependent becyp#1 but is derived from a methyltransferase, fcmt-1, that is conserved across Nematoda and likely originates from bacterial cyclopropane synthase via ancient horizontal gene transfer. Activation of fat-7 expression by these structurally similar metabolites is controlled by distinct mechanisms, as microbiota-dependent becyp#1 is metabolized by a dedicated β-oxidation pathway, while the endogenous bemeth#1 is metabolized via α-oxidation. Collectively, we demonstrate that evolutionarily related biosynthetic pathways in metazoan host and associated microbiota converge on NHR-49/PPARα to regulate fat desaturation.

摘要

脂肪酸去饱和作用是后生动物脂质代谢的核心,它为膜脂提供结构单元以及多种信号分子的前体。营养状况和相关微生物群调节去饱和酶的表达,但其潜在机制仍不清楚。在这里,我们表明内源性和微生物群依赖性小分子信号通过秀丽隐杆线虫中的核受体NHR-49/PPARα促进脂质去饱和。在β-氧化突变体acdh-11中进行的非靶向代谢组学研究发现,硬脂酰辅酶A去饱和酶FAT-7/SCD1的表达持续增加,其中积累了一种β-环丙基脂肪酸becyp#1,它通过NHR-49有效激活fat-7的表达。becyp#1的生物合成严格依赖于相关细菌(如大肠杆菌)中环丙烷合酶的表达。对结构相关的内源性代谢物进行筛选,发现了一种β-甲基脂肪酸bemeth#1,它模拟了微生物群依赖性becyp#1的活性,但源自一种甲基转移酶fcmt-1,这种酶在整个线虫纲中保守,可能通过古老的水平基因转移起源于细菌环丙烷合酶。这些结构相似的代谢物对fat-7表达的激活由不同机制控制,因为微生物群依赖性becyp#1通过专门的β-氧化途径代谢,而内源性bemeth#1通过α-氧化代谢。我们共同证明,后生动物宿主和相关微生物群中进化相关的生物合成途径汇聚在NHR-49/PPARα上,以调节脂肪去饱和作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/755d/10876521/f8154cd890a2/41467_2024_45782_Fig1_HTML.jpg

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