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细胞代谢限制了人类早期个体发生中的先天免疫反应。

Cellular metabolism constrains innate immune responses in early human ontogeny.

机构信息

BC Children's Hospital Research Institute, 950 West 28th Avenue, Vancouver, BC, V5Z 4H4, Canada.

Department of Pediatrics, University of British Columbia, Vancouver, BC, V6H 3V4, Canada.

出版信息

Nat Commun. 2018 Nov 16;9(1):4822. doi: 10.1038/s41467-018-07215-9.

Abstract

Pathogen immune responses are profoundly attenuated in fetuses and premature infants, yet the mechanisms underlying this developmental immaturity remain unclear. Here we show transcriptomic, metabolic and polysome profiling and find that monocytes isolated from infants born early in gestation display perturbations in PPAR-γ-regulated metabolic pathways, limited glycolytic capacity and reduced ribosomal activity. These metabolic changes are linked to a lack of translation of most cytokines and of MALT1 signalosome genes essential to respond to the neonatal pathogen Candida. In contrast, they have little impact on house-keeping phagocytosis functions. Transcriptome analyses further indicate a role for mTOR and its putative negative regulator DNA Damage Inducible Transcript 4-Like in regulating these metabolic constraints. Our results provide a molecular basis for the broad susceptibility to multiple pathogens in these infants, and suggest that the fetal immune system is metabolically programmed to avoid energetically costly, dispensable and potentially harmful immune responses during ontogeny.

摘要

病原体免疫反应在胎儿和早产儿中受到严重抑制,但导致这种发育不成熟的机制尚不清楚。在这里,我们进行了转录组、代谢和多核糖体谱分析,发现从妊娠早期出生的婴儿中分离出的单核细胞显示出 PPAR-γ 调节的代谢途径紊乱、有限的糖酵解能力和核糖体活性降低。这些代谢变化与大多数细胞因子以及对新生儿病原体念珠菌反应所必需的 MALT1 信号osome 基因的翻译缺失有关。相比之下,它们对维持吞噬作用功能的影响很小。转录组分析进一步表明,mTOR 及其潜在的负调节剂 DNA 损伤诱导转录 4 样物在调节这些代谢限制中起作用。我们的研究结果为这些婴儿对多种病原体广泛易感性提供了分子基础,并表明胎儿免疫系统在代谢上被编程为避免在个体发生过程中进行能量消耗大、可有可无和潜在有害的免疫反应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5cad/6240060/da9f014cf282/41467_2018_7215_Fig1_HTML.jpg

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