生物
微生物生态学
医学微生物学
过境时间
能量密度
食品科学
微生物学
生态学
细菌
遗传学
运输工程
理论物理学
物理
工程类
作者
Jos Boekhorst,Naomi Venlet,Nicola Procházková,Mathias Lühr Hansen,Christian B. Lieberoth,Martin Iain Bahl,Lotte Lauritzen,Oluf Pedersen,Tine Rask Licht,Michiel Kleerebezem,Henrik M. Roager
出处
期刊:Microbiome
[BioMed Central]
日期:2022-12-12
卷期号:10 (1)
被引量:35
标识
DOI:10.1186/s40168-022-01418-5
摘要
It has been hypothesised that the gut microbiota causally affects obesity via its capacity to extract energy from the diet. Yet, evidence elucidating the role of particular human microbial community structures and determinants of microbiota-dependent energy harvest is lacking.Here, we investigated whether energy extraction from the diet in 85 overweight adults, estimated by dry stool energy density, was associated with intestinal transit time and variations in microbial community diversity and overall structure stratified as enterotypes. We hypothesised that a slower intestinal transit would allow for more energy extraction. However, opposite of what we expected, the stool energy density was positively associated with intestinal transit time. Stratifications into enterotypes showed that individuals with a Bacteroides enterotype (B-type) had significantly lower stool energy density, shorter intestinal transit times, and lower alpha-diversity compared to individuals with a Ruminococcaceae enterotype (R-type). The Prevotella (P-type) individuals appeared in between the B- and R-type. The differences in stool energy density between enterotypes were not explained by differences in habitual diet, intake of dietary fibre or faecal bacterial cell counts. However, the R-type individuals showed higher urinary and faecal levels of microbial-derived proteolytic metabolites compared to the B-type, suggesting increased colonic proteolysis in the R-type individuals. This could imply a less effective colonic energy extraction in the R-type individuals compared to the B-type individuals. Notably, the R-type had significantly lower body weight compared to the B-type.Our findings suggest that gut microbial energy harvest is diversified among individuals by intestinal transit time and associated gut microbiome ecosystem variations. A better understanding of these associations could support the development of personalised nutrition and improved weight-loss strategies. Video Abstract.
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