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Deficiency of essential dietary n-3 PUFA disrupts the caecal microbiome and metabolome in mice.
Robertson, Ruairi C; Seira Oriach, Clara; Murphy, Kiera; Moloney, Gerard M; Cryan, John F; Dinan, Timothy G; Ross, R P; Stanton, Catherine.
Affiliation
  • Robertson RC; 1School of Microbiology,University College Cork,Cork,Republic of Ireland.
  • Seira Oriach C; 3APC Microbiome Institute,University College Cork,Cork,Republic of Ireland.
  • Murphy K; 2Teagasc Moorepark Food Research Centre,Fermoy, Co. Cork,Republic of Ireland.
  • Moloney GM; 5Department of Anatomy and Neuroscience,University College Cork,Cork,Republic of Ireland.
  • Cryan JF; 3APC Microbiome Institute,University College Cork,Cork,Republic of Ireland.
  • Dinan TG; 3APC Microbiome Institute,University College Cork,Cork,Republic of Ireland.
  • Ross RP; 6School of Science Engineering and Food Science,University College Cork,Cork,Republic of Ireland.
  • Stanton C; 2Teagasc Moorepark Food Research Centre,Fermoy, Co. Cork,Republic of Ireland.
Br J Nutr ; 118(11): 959-970, 2017 Dec.
Article in En | MEDLINE | ID: mdl-29173237
ABSTRACT
n-3 PUFA are lipids that play crucial roles in immune-regulation, cardio-protection and neurodevelopment. However, little is known about the role that these essential dietary fats play in modulating caecal microbiota composition and the subsequent production of functional metabolites. To investigate this, female C57BL/6 mice were assigned to one of three diets (control (CON), n-3 supplemented (n3+) or n-3 deficient (n3-)) during gestation, following which their male offspring were continued on the same diets for 12 weeks. Caecal content of mothers and offspring were collected for 16S sequencing and metabolic phenotyping. n3- male offspring displayed significantly less % fat mass than n3+ and CON. n-3 Status also induced a number of changes to gut microbiota composition such that n3- offspring had greater abundance of Tenericutes, Anaeroplasma and Coriobacteriaceae. Metabolomics analysis revealed an increase in caecal metabolites involved in energy metabolism in n3+ including α-ketoglutaric acid, malic acid and fumaric acid. n3- animals displayed significantly reduced acetate, butyrate and total caecal SCFA production. These results demonstrate that dietary n-3 PUFA regulate gut microbiota homoeostasis whereby n-3 deficiency may induce a state of disturbance. Further studies are warranted to examine whether these microbial and metabolic disturbances are causally related to changes in metabolic health outcomes.
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Full text: 1 Collection: 01-internacional Health context: 3_ND Database: MEDLINE Main subject: Fatty Acids, Omega-3 / Cecum / Gastrointestinal Microbiome / Animal Nutritional Physiological Phenomena Limits: Animals Language: En Journal: Br J Nutr Year: 2017 Document type: Article

Full text: 1 Collection: 01-internacional Health context: 3_ND Database: MEDLINE Main subject: Fatty Acids, Omega-3 / Cecum / Gastrointestinal Microbiome / Animal Nutritional Physiological Phenomena Limits: Animals Language: En Journal: Br J Nutr Year: 2017 Document type: Article