Literature DB >> 22895080

Consumption of different soymilk formulations differentially affects the gut microbiomes of overweight and obese men.

Dina Fernandez-Raudales1, Jennifer L Hoeflinger, Neal A Bringe, Stephen B Cox, Scot E Dowd, Michael J Miller, Elvira Gonzalez de Mejia.   

Abstract

The effects of consuming foods on the intestinal microbiome of obese individuals remain unclear. The objective of this study was to compare the effects of consuming low glycinin soymilk (LGS, 49.5% β-conglycinin/6% glycinin), conventional soymilk (S, 26.5% β-conglycinin/38.7% glycinin) or bovine milk (M, 0% β-conglycinin/0% glycinin) on the intestinal microbiome in overweight and obese men. In a randomized double-blind study, participants (64 men, BMI > 25, 20-45 y old), organized in three groups, consumed 500 mL of LGS, S or M daily for 3 mo. Three fecal samples were collected before (baseline) and after 3 mo of consumption. Dietary energy and macronutrient intake were monitored monthly and remained constant throughout the study (p > 0.05). Microbial composition was analyzed with qPCR and bTEFAP. Within groups, qPCR analysis showed that the total bacteria increased in all treatments over time (p < 0.001). Bacteroides-Prevotella (p = 0.001) and Lactobacillus (p < 0.001) increased in LGS and M, respectively. Bifidobacterium was significantly reduced in LGS (p = 0.003) and S (p < 0.001). Bacterial diversity decreased for LGS, S and M (p = 0.004, 0.005, 0.001; respectively). Unweighted UniFrac analysis revealed that the microbial communities were more similar within than between individuals. The Firmicutes to Bacteroidetes ratio decreased in both LGS and S groups and remained relatively unchanged in the M group (Time p = 0.012; Interaction p = 0.059). Indicator analysis revealed several genera that were indicative of each treatment including Lactobacillus and Prevotella. Consumption of the three beverages differentially altered the microbiota in overweight and obese men including a potentially beneficial alteration of the Firmicutes to Bacteroidetes ratio in both soymilk groups.

Entities:  

Mesh:

Year:  2012        PMID: 22895080      PMCID: PMC3495786          DOI: 10.4161/gmic.21578

Source DB:  PubMed          Journal:  Gut Microbes        ISSN: 1949-0976


  45 in total

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3.  Massive parallel 16S rRNA gene pyrosequencing reveals highly diverse fecal bacterial and fungal communities in healthy dogs and cats.

Authors:  Stefanie Handl; Scot E Dowd; Jose F Garcia-Mazcorro; Jörg M Steiner; Jan S Suchodolski
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4.  Low-level fructan supplementation of dogs enhances nutrient digestion and modifies stool metabolite concentrations, but does not alter fecal microbiota populations.

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5.  Effects of soybean beta-conglycinin on body fat ratio and serum lipid levels in healthy volunteers of female university students.

Authors:  Toshimitsu Baba; Aiko Ueda; Mitsutaka Kohno; Kensuke Fukui; Chiaki Miyazaki; Motohiko Hirotsuka; Masataka Ishinaga
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6.  Bacterial community variation in human body habitats across space and time.

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7.  Energy intake is associated with endotoxemia in apparently healthy men.

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Journal:  Am J Clin Nutr       Date:  2008-05       Impact factor: 7.045

8.  Preliminary study: soy milk as effective as skim milk in promoting weight loss.

Authors:  Judith M Lukaszuk; Paul Luebbers; Beth A Gordon
Journal:  J Am Diet Assoc       Date:  2007-10

9.  Windows .NET Network Distributed Basic Local Alignment Search Toolkit (W.ND-BLAST).

Authors:  Scot E Dowd; Joaquin Zaragoza; Javier R Rodriguez; Melvin J Oliver; Paxton R Payton
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10.  Evaluation of the bacterial diversity in the feces of cattle using 16S rDNA bacterial tag-encoded FLX amplicon pyrosequencing (bTEFAP).

Authors:  Scot E Dowd; Todd R Callaway; Randall D Wolcott; Yan Sun; Trevor McKeehan; Robert G Hagevoort; Thomas S Edrington
Journal:  BMC Microbiol       Date:  2008-07-24       Impact factor: 3.605

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  24 in total

1.  Early genistein exposure of California mice and effects on the gut microbiota-brain axis.

Authors:  Brittney L Marshall; Yang Liu; Michelle J Farrington; Jiude Mao; William G Helferich; A Katrin Schenk; Nathan J Bivens; Saurav J Sarma; Zhentian Lei; Lloyd W Sumner; Trupti Joshi; Cheryl S Rosenfeld
Journal:  J Endocrinol       Date:  2019-08       Impact factor: 4.286

Review 2.  Gut microbiome in neuroendocrine and neuroimmune interactions: The case of genistein.

Authors:  Tai L Guo; Yingjia Chen; Hannah Shibo Xu; Callie M McDonough; Guannan Huang
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3.  Contribution of diet to the composition of the human gut microbiota.

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Journal:  Microb Ecol Health Dis       Date:  2015-02-04

Review 4.  How informative is the mouse for human gut microbiota research?

Authors:  Thi Loan Anh Nguyen; Sara Vieira-Silva; Adrian Liston; Jeroen Raes
Journal:  Dis Model Mech       Date:  2015-01       Impact factor: 5.758

Review 5.  Flavonoids Affect Host-Microbiota Crosstalk through TLR Modulation.

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Review 6.  Soy, Soy Foods and Their Role in Vegetarian Diets.

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Journal:  Nutrients       Date:  2018-01-05       Impact factor: 5.717

7.  Soy food intake associates with changes in the metabolome and reduced blood pressure in a gut microbiota dependent manner.

Authors:  Rachana D Shah; Zheng-Zheng Tang; Guanhua Chen; Shi Huang; Jane F Ferguson
Journal:  Nutr Metab Cardiovasc Dis       Date:  2020-05-18       Impact factor: 4.222

8.  Inflammation-associated enterotypes, host genotype, cage and inter-individual effects drive gut microbiota variation in common laboratory mice.

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Journal:  Genome Biol       Date:  2013-01-24       Impact factor: 13.583

Review 9.  Gut microbioma population: an indicator really sensible to any change in age, diet, metabolic syndrome, and life-style.

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Journal:  Mediators Inflamm       Date:  2014-06-04       Impact factor: 4.711

Review 10.  Effects of Vegetable Proteins on Hypercholesterolemia and Gut Microbiota Modulation.

Authors:  Marco Busnelli; Stefano Manzini; Cesare R Sirtori; Giulia Chiesa; Cinzia Parolini
Journal:  Nutrients       Date:  2018-09-06       Impact factor: 5.717

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