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PMID: 20876719 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Differential adaptation of human gut microbiota to bariatric surgery-induced weight loss: links with metabolic and low-grade inflammation markers.

Diabetes ·Vol. 59 ·No. 12 ·2010-12-00 ·Pages 3049-57

Furet JP, Kong LC, Tap J, Poitou C, Basdevant A, Bouillot JL, Mariat D, Corthier G, Doré J, Henegar C, Rizkalla S, Clément K

Abstract

Obesity alters gut microbiota ecology and associates with low-grade inflammation in humans. Roux-en-Y gastric bypass (RYGB) surgery is one of the most efficient procedures for the treatment of morbid obesity resulting in drastic weight loss and improvement of metabolic and inflammatory status. We analyzed the impact of RYGB on the modifications of gut microbiota and examined links with adaptations associated with this procedure. Gut microbiota was profiled from fecal samples by real-time quantitative PCR in 13 lean control subjects and in 30 obese individuals (with seven type 2 diabetics) explored before (M0), 3 months (M3), and 6 months (M6) after RYGB. Four major findings are highlighted: 1) Bacteroides/Prevotella group was lower in obese subjects than in control subjects at M0 and increased at M3. It was negatively correlated with corpulence, but the correlation depended highly on caloric intake; 2) Escherichia coli species increased at M3 and inversely correlated with fat mass and leptin levels independently of changes in food intake; 3) lactic acid bacteria including Lactobacillus/Leuconostoc/Pediococcus group and Bifidobacterium genus decreased at M3; and 4) Faecalibacterium prausnitzii species was lower in subjects with diabetes and associated negatively with inflammatory markers at M0 and throughout the follow-up after surgery independently of changes in food intake. These results suggest that components of the dominant gut microbiota rapidly adapt in a starvation-like situation induced by RYGB while the F. prausnitzii species is directly linked to the reduction in low-grade inflammation state in obesity and diabetes independently of calorie intake.

MeSH Terms
Adaptation, Physiological Bacteroides/genetics,isolation & purification Bariatric Surgery Bifidobacterium/genetics,isolation & purification Blood Glucose/metabolism Clostridium/genetics,isolation & purification DNA Primers Escherichia coli/isolation & purification Feces/microbiology Female Humans Inflammation/etiology,microbiology,physiopathology Lactobacillus/isolation & purification Leuconostoc/isolation & purification Male Obesity/microbiology Pediococcus/isolation & purification Polymerase Chain Reaction Starvation/microbiology Thinness/microbiology Weight Loss/physiology
Chemicals
Blood Glucose DNA Primers
Authors & Affiliations
12 authors, click to expand affiliations / ORCID
Furet Jean-Pierre
French National Institute for Agricultural Research, U910, Unité d’Ecologie et de Physiologie du Système Digestif, Jouy-en-Josas, France.
Kong Ling-Chun
Tap Julien
Poitou Christine
Basdevant Arnaud
Bouillot Jean-Luc
Mariat Denis
Corthier Gérard
Doré Joël
Henegar Corneliu
Rizkalla Salwa
Clément Karine
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Article Info
Journal
Diabetes
Abbr.
Diabetes
ISSN
1939-327X
Published
2010-12-00
Epub
2010-00-28
Pages
3049-57
Language
English
Region
United States
NLM ID
0372763
PMCID
PMC2992765
Subset
IM
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