一项全面的试点研究,旨在阐明心血管代谢疾病中独特的肠道微生物组成及其功能意义。

IF 2.1 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY Biochemical Genetics Pub Date : 2024-06-05 DOI:10.1007/s10528-024-10847-w
Ashwini Kumar Ray, Avaneesh Shukla, Alka Yadav, Urvinder Kaur, Alok Kumar Singh, Payal Mago, Neel Sarovar Bhavesh, Rupesh Chaturvedi, Ravi Tandon, Shalimar, Abhishek Kumar, Md Zubbair Malik
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引用次数: 0

摘要

心血管代谢疾病是全球健康面临的重大挑战,发病率不断上升。最近的研究强调,肠道微生物平衡的破坏是导致疾病易感性的一个关键因素。我们的目的是描述心血管代谢性疾病和健康对照组的肠道微生物群组成和功能。为此,我们收集了 18 名受试者(12 名患病者,6 名健康者)的粪便样本,并使用 QIIME2 和 PICRUSt 进行了元基因组学分析和功能预测。 此外,我们还对微生物与基因的相互作用、基因本体论以及微生物与疾病的关联进行了评估。我们的研究结果表明,患病群体的微生物模式与众不同,在较低的分类水平上尤为明显,有 14 种微生物特征存在显著差异。患病人群中的拉赫诺斯皮拉科(Lachnospiraceae)微生物含量丰富,与肥胖、胰岛素抵抗和代谢紊乱有关。相反,梭状芽孢杆菌属、Gemmiger 菌属和反刍球菌属的数量减少,表明可能存在炎症状态,这与丁酸盐生产受损和肠道渗透性有关。功能分析强调了氨基酸代谢和能量平衡的失调途径,其扰动与支链氨基酸水平的升高相关--支链氨基酸是导致胰岛素抵抗和2型糖尿病的已知因素。这些发现在生物标志物评估、微生物-基因关联和基因本体分析中都是一致的,强调了肠道微生物菌群失调与心血管代谢疾病进展之间错综复杂的相互作用。总之,我们的研究揭示了心血管代谢性疾病中肠道微生物组成和功能的重大变化,强调了微生物失调的广泛影响。解决肠道微生物平衡问题已成为控制心血管代谢性疾病负担的一个重要治疗目标。
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A Comprehensive Pilot Study to Elucidate the Distinct Gut Microbial Composition and Its Functional Significance in Cardio-Metabolic Disease.

Cardio-metabolic disease is a significant global health challenge with increasing prevalence. Recent research underscores the disruption of gut microbial balance as a key factor in disease susceptibility. We aimed to characterize the gut microbiota composition and function in cardio-metabolic disease and healthy controls. For this purpose, we collected stool samples of 18 subjects (12 diseased, 6 healthy) and we performed metagenomics analysis and functional prediction using QIIME2 and PICRUSt. Furthermore, we carried out assessments of microbe-gene interactions, gene ontology, and microbe-disease associations. Our findings revealed distinct microbial patterns in the diseased group, particularly evident in lower taxonomic levels with significant variations in 14 microbial features. The diseased cohort exhibited an enrichment of Lachnospiraceae family, correlating with obesity, insulin resistance, and metabolic disturbances. Conversely, reduced levels of Clostridium, Gemmiger, and Ruminococcus genera indicated a potential inflammatory state, linked to compromised butyrate production and gut permeability. Functional analyses highlighted dysregulated pathways in amino acid metabolism and energy equilibrium, with perturbations correlating with elevated branch-chain amino acid levels-a known contributor to insulin resistance and type 2 diabetes. These findings were consistent across biomarker assessments, microbe-gene associations, and gene ontology analyses, emphasizing the intricate interplay between gut microbial dysbiosis and cardio-metabolic disease progression. In conclusion, our study unveils significant shifts in gut microbial composition and function in cardio-metabolic disease, emphasizing the broader implications of microbial dysregulation. Addressing gut microbial balance emerges as a crucial therapeutic target in managing cardio-metabolic disease burden.

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来源期刊
Biochemical Genetics
Biochemical Genetics 生物-生化与分子生物学
CiteScore
3.90
自引率
0.00%
发文量
133
审稿时长
4.8 months
期刊介绍: Biochemical Genetics welcomes original manuscripts that address and test clear scientific hypotheses, are directed to a broad scientific audience, and clearly contribute to the advancement of the field through the use of sound sampling or experimental design, reliable analytical methodologies and robust statistical analyses. Although studies focusing on particular regions and target organisms are welcome, it is not the journal’s goal to publish essentially descriptive studies that provide results with narrow applicability, or are based on very small samples or pseudoreplication. Rather, Biochemical Genetics welcomes review articles that go beyond summarizing previous publications and create added value through the systematic analysis and critique of the current state of knowledge or by conducting meta-analyses. Methodological articles are also within the scope of Biological Genetics, particularly when new laboratory techniques or computational approaches are fully described and thoroughly compared with the existing benchmark methods. Biochemical Genetics welcomes articles on the following topics: Genomics; Proteomics; Population genetics; Phylogenetics; Metagenomics; Microbial genetics; Genetics and evolution of wild and cultivated plants; Animal genetics and evolution; Human genetics and evolution; Genetic disorders; Genetic markers of diseases; Gene technology and therapy; Experimental and analytical methods; Statistical and computational methods.
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