Literature DB >> 25159725

Responsiveness of cardiometabolic-related microbiota to diet is influenced by host genetics.

Annalouise O'Connor1, Pamela M Quizon, Jody E Albright, Fred T Lin, Brian J Bennett.   

Abstract

Intestinal microbial community structure is driven by host genetics in addition to environmental factors such as diet. In comparison with environmental influences, the effect of host genetics on intestinal microbiota, and how host-driven differences alter host metabolism is unclear. Additionally, the interaction between host genetics and diet, and the impact on the intestinal microbiome and possible down-stream effect on host metabolism is not fully understood, but represents another aspects of inter-individual variation in disease risk. The objectives of this study were to investigate how diet and genetic background shape microbial communities, and how these diet- and genetic-driven microbial differences relate to cardiometabolic phenotypes. To determine these effects, we used the 8 progenitor strains of the collaborative cross/diversity outbred mapping panels (C57BL/6J, A/J, NOD/ShiLtJ, NZO/HILtJ, WSB/EiJ, CAST/EiJ, PWK/PhJ, and 129S1/SvImJ). 16s rRNA profiling of enteric microbial communities in addition to the assessment of phenotypes central to cardiometabolic health was conducted under baseline nutritional conditions and in response to diets varying in atherogenic nutrient (fat, cholesterol, cholic acid) composition. These studies revealed strain-driven differences in enteric microbial communities which were retained with dietary intervention. Diet-strain interactions were seen for a core group of cardiometabolic-related microbial taxa. In conclusion, these studies highlight diet and genetically regulated cardiometabolic-related microbial taxa. Furthermore, we demonstrate the progenitor model is useful for nutrigenomic-based studies and screens seeking to investigate the interaction between genetic background and the phenotypic and microbial response to diet.

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Year:  2014        PMID: 25159725      PMCID: PMC4239785          DOI: 10.1007/s00335-014-9540-0

Source DB:  PubMed          Journal:  Mamm Genome        ISSN: 0938-8990            Impact factor:   2.957


  66 in total

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Journal:  Proc Natl Acad Sci U S A       Date:  2010-04-02       Impact factor: 11.205

2.  Individuality in gut microbiota composition is a complex polygenic trait shaped by multiple environmental and host genetic factors.

Authors:  Andrew K Benson; Scott A Kelly; Ryan Legge; Fangrui Ma; Soo Jen Low; Jaehyoung Kim; Min Zhang; Phaik Lyn Oh; Derrick Nehrenberg; Kunjie Hua; Stephen D Kachman; Etsuko N Moriyama; Jens Walter; Daniel A Peterson; Daniel Pomp
Journal:  Proc Natl Acad Sci U S A       Date:  2010-10-11       Impact factor: 11.205

3.  Bile acid is a host factor that regulates the composition of the cecal microbiota in rats.

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6.  The gut microbiota as an environmental factor that regulates fat storage.

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8.  Richness of human gut microbiome correlates with metabolic markers.

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Journal:  Nature       Date:  2013-08-29       Impact factor: 49.962

9.  Innate immunity and intestinal microbiota in the development of Type 1 diabetes.

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Journal:  Nature       Date:  2008-09-21       Impact factor: 49.962

10.  Mouse phenome database.

Authors:  Stephen C Grubb; Carol J Bult; Molly A Bogue
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  32 in total

1.  Cystic fibrosis mouse model-dependent intestinal structure and gut microbiome.

Authors:  Mark Bazett; Lisa Honeyman; Anguel N Stefanov; Christopher E Pope; Lucas R Hoffman; Christina K Haston
Journal:  Mamm Genome       Date:  2015-02-27       Impact factor: 2.957

2.  Host Genotype and Gut Microbiome Modulate Insulin Secretion and Diet-Induced Metabolic Phenotypes.

Authors:  Julia H Kreznar; Mark P Keller; Lindsay L Traeger; Mary E Rabaglia; Kathryn L Schueler; Donald S Stapleton; Wen Zhao; Eugenio I Vivas; Brian S Yandell; Aimee Teo Broman; Bruno Hagenbuch; Alan D Attie; Federico E Rey
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4.  Murine Genetic Background Has a Stronger Impact on the Composition of the Gut Microbiota than Maternal Inoculation or Exposure to Unlike Exogenous Microbiota.

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Journal:  Appl Environ Microbiol       Date:  2019-08-29       Impact factor: 4.792

5.  microRNA-146a-5p association with the cardiometabolic disease risk factor TMAO.

Authors:  Alisha R Coffey; Matt Kanke; Tangi L Smallwood; Jody Albright; Wendy Pitman; Raad Z Gharaibeh; Kunjie Hua; Erik Gertz; Sudha B Biddinger; Ryan E Temel; Daniel Pomp; Praveen Sethupathy; Brian J Bennett
Journal:  Physiol Genomics       Date:  2019-01-11       Impact factor: 3.107

Review 6.  Unraveling the environmental and genetic interactions in atherosclerosis: Central role of the gut microbiota.

Authors:  Elin Org; Margarete Mehrabian; Aldons J Lusis
Journal:  Atherosclerosis       Date:  2015-06-03       Impact factor: 5.162

Review 7.  Role of gut microbiota in atherosclerosis.

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Journal:  Nat Rev Cardiol       Date:  2016-12-01       Impact factor: 32.419

8.  Host Genome Influence on Gut Microbial Composition and Microbial Prediction of Complex Traits in Pigs.

Authors:  Amelia Camarinha-Silva; Maria Maushammer; Robin Wellmann; Marius Vital; Siegfried Preuss; Jörn Bennewitz
Journal:  Genetics       Date:  2017-05-03       Impact factor: 4.562

Review 9.  Assessing health risks from multiple environmental stressors: Moving from G×E to I×E.

Authors:  Cliona M McHale; Gwendolyn Osborne; Rachel Morello-Frosch; Andrew G Salmon; Martha S Sandy; Gina Solomon; Luoping Zhang; Martyn T Smith; Lauren Zeise
Journal:  Mutat Res Rev Mutat Res       Date:  2017-11-24       Impact factor: 5.657

Review 10.  Cross-species comparisons of host genetic associations with the microbiome.

Authors:  Julia K Goodrich; Emily R Davenport; Jillian L Waters; Andrew G Clark; Ruth E Ley
Journal:  Science       Date:  2016-04-29       Impact factor: 47.728

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