Fine mapping-based multi-omics analysis interprets the gut-lung axis function of SGLT2 inhibitors

IF 4.6 2区 医学 Q2 IMMUNOLOGY
Fengqin Yuan, Tianlong Zhang, Sixiang Jia, Jianqiang Zhao, Binbin Wan, Gang Liu
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引用次数: 0

Abstract

BackgroundCurrently, Sodium-glucose cotransporter 2 (SGLT2) inhibitors demonstrate additional effects beyond glucose control on the gut microbiota and circulating metabolites. The gut microbiota and metabolites have been found to be useful in elucidating potential biological mechanisms of pulmonary diseases. Therefore, our study aims to investigate the effects of gut microbiota and metabolites mediating SGLT2 inhibition in 10 pulmonary diseases through Mendelian randomization (MR) research.MethodsWe conducted a two-sample, two-step MR study to assess the association between SGLT2 inhibition and 10 pulmonary diseases and to investigate the mediating effects of gut microbiota and metabolite. Gene-fine mapping and annotation of mediators by FUMA and Magma analyses were performed, and causal associations of mapped genes with diseases were assessed by muti-omics MR analyses. Possible side effects of SGLT2 inhibition were assessed by PheWAS analysis.ResultsSGLT2 inhibition was linked to a reduced risk of T2DM, Interstitial lung disease (ILD), Pneumoconiosis, Pulmonary tuberculosis, and Asthma(OR=0.457, 0.054, 0.002, 0.280, 0.706). The family Enterobacteriaceae and order Enterobacteriales were associated with SGLT2 inhibition and ILD(95% CI:0.079–0.138). The family Alcaligenaceae and X-12719 were linked to pneumoconiosis (95% CI: 0.042–0.120, 0.050–0.099). The genus Phascolarctobacterium was connected to pulmonary tuberculosis (95% CI: 0.236–0.703).The degree of unsaturation (Fatty Acids), ratio of docosahexaenoic acid to total fatty acids, and 4-androsten-3beta,17beta-diol disulfate 2, were associated with asthma(95% CI: 0.042–0.119, 0.039–0.101, 0.181–0.473). Furthermore, Fuma and Magma analyses identified target genes for the four diseases, and proteomic MR analysis revealed six overlapping target genes in asthma. PheWAS analysis also highlighted potential side effects of SGLT2 inhibition.ConclusionsThis comprehensive study strongly supports a multi-omics association between SGLT2 inhibition and reduced risk of interstitial lung disease, tuberculosis, pneumoconiosis, and asthma. Four identified gut microbiota, four metabolites, sixteen metabolic pathways, and six target genes appear to play a potential role in this association. The results of the comprehensive phenome-wide association analysis also identified the full effect of SGLT2 inhibitors.
基于精细图谱的多组学分析解读 SGLT2 抑制剂的肠肺轴功能
背景目前,钠-葡萄糖共转运体 2(SGLT2)抑制剂除了控制血糖外,还对肠道微生物群和循环代谢物产生额外影响。研究发现,肠道微生物群和代谢物有助于阐明肺部疾病的潜在生物学机制。因此,我们的研究旨在通过孟德尔随机化(MR)研究调查肠道微生物群和代谢物介导 SGLT2 抑制对 10 种肺部疾病的影响。方法我们进行了一项双样本、两步式 MR 研究,评估 SGLT2 抑制与 10 种肺部疾病之间的关联,并调查肠道微生物群和代谢物的介导效应。通过FUMA和Magma分析对介导因子进行了基因精细映射和注释,并通过突变组学磁共振分析评估了映射基因与疾病的因果关系。结果SGLT2抑制与T2DM、间质性肺病(ILD)、尘肺、肺结核和哮喘风险的降低有关(OR=0.457, 0.054, 0.002, 0.280, 0.706)。肠杆菌科和肠杆菌目细菌与 SGLT2 抑制和 ILD 相关(95% CI:0.079-0.138)。阿尔卡利菌科和 X-12719 与尘肺有关(95% CI:0.042-0.120,0.050-0.099)。不饱和程度(脂肪酸)、二十二碳六烯酸与总脂肪酸的比率以及 4-雄烯-3beta,17beta-二醇二硫酸盐 2 与哮喘有关(95% CI:0.042-0.119, 0.039-0.101, 0.181-0.473)。此外,Fuma 和 Magma 分析确定了四种疾病的靶基因,蛋白质组 MR 分析发现了哮喘的六个重叠靶基因。结论这项综合研究有力地支持了 SGLT2 抑制与间质性肺病、肺结核、尘肺和哮喘风险降低之间的多组学关联。已确定的四个肠道微生物群、四个代谢物、十六个代谢途径和六个靶基因似乎在这种关联中发挥了潜在作用。全面的全表型关联分析结果还确定了 SGLT2 抑制剂的全部作用。
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来源期刊
CiteScore
7.90
自引率
7.00%
发文量
1817
审稿时长
14 weeks
期刊介绍: Frontiers in Cellular and Infection Microbiology is a leading specialty journal, publishing rigorously peer-reviewed research across all pathogenic microorganisms and their interaction with their hosts. Chief Editor Yousef Abu Kwaik, University of Louisville is supported by an outstanding Editorial Board of international experts. This multidisciplinary open-access journal is at the forefront of disseminating and communicating scientific knowledge and impactful discoveries to researchers, academics, clinicians and the public worldwide. Frontiers in Cellular and Infection Microbiology includes research on bacteria, fungi, parasites, viruses, endosymbionts, prions and all microbial pathogens as well as the microbiota and its effect on health and disease in various hosts. The research approaches include molecular microbiology, cellular microbiology, gene regulation, proteomics, signal transduction, pathogenic evolution, genomics, structural biology, and virulence factors as well as model hosts. Areas of research to counteract infectious agents by the host include the host innate and adaptive immune responses as well as metabolic restrictions to various pathogenic microorganisms, vaccine design and development against various pathogenic microorganisms, and the mechanisms of antibiotic resistance and its countermeasures.
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