TY - JOUR
T1 - Potential therapeutic implications of histidine catabolism by the gut microbiota in NAFLD patients with morbid obesity
AU - Quesada-Vázquez, Sergio
AU - Castells-Nobau, Anna
AU - Latorre, Jèssica
AU - Oliveras-Cañellas, Núria
AU - Puig-Parnau, Irene
AU - Tejera, Noemi
AU - Tobajas, Yaiza
AU - Baudin, Julio
AU - Hildebrand, Falk
AU - Beraza, Naiara
AU - Burcelin, Rémy
AU - Martinez-Gili, Laura
AU - Chilloux, Julien
AU - Dumas, Marc-Emmanuel
AU - Federici, Massimo
AU - Hoyles, Lesley
AU - Caimari, Antoni
AU - Bas, Josep M. del
AU - Escoté, Xavier
AU - Fernández-Real, José-Manuel
AU - Mayneris-Perxachs, Jordi
PY - 2023/12/19
Y1 - 2023/12/19
N2 - The gut microbiota contributes to the pathophysiology of non-alcoholic fatty liver disease (NAFLD). Histidine is a key energy source for the microbiota, scavenging it from the host. Its role in NAFLD is poorly known. Plasma metabolomics, liver transcriptomics, and fecal metagenomics were performed in three human cohorts coupled with hepatocyte, rodent, and Drosophila models. Machine learning analyses identified plasma histidine as being strongly inversely associated with steatosis and linked to a hepatic transcriptomic signature involved in insulin signaling, inflammation, and trace amine-associated receptor 1. Circulating histidine was inversely associated with Proteobacteria and positively with bacteria lacking the histidine utilization (Hut) system. Histidine supplementation improved NAFLD in different animal models (diet-induced NAFLD in mouse and flies, ob/ob mouse, and ovariectomized rats) and reduced de novo lipogenesis. Fecal microbiota transplantation (FMT) from low-histidine donors and mono-colonization of germ-free flies with Enterobacter cloacae increased triglyceride accumulation and reduced histidine content. The interplay among microbiota, histidine catabolism, and NAFLD opens therapeutic opportunities.
AB - The gut microbiota contributes to the pathophysiology of non-alcoholic fatty liver disease (NAFLD). Histidine is a key energy source for the microbiota, scavenging it from the host. Its role in NAFLD is poorly known. Plasma metabolomics, liver transcriptomics, and fecal metagenomics were performed in three human cohorts coupled with hepatocyte, rodent, and Drosophila models. Machine learning analyses identified plasma histidine as being strongly inversely associated with steatosis and linked to a hepatic transcriptomic signature involved in insulin signaling, inflammation, and trace amine-associated receptor 1. Circulating histidine was inversely associated with Proteobacteria and positively with bacteria lacking the histidine utilization (Hut) system. Histidine supplementation improved NAFLD in different animal models (diet-induced NAFLD in mouse and flies, ob/ob mouse, and ovariectomized rats) and reduced de novo lipogenesis. Fecal microbiota transplantation (FMT) from low-histidine donors and mono-colonization of germ-free flies with Enterobacter cloacae increased triglyceride accumulation and reduced histidine content. The interplay among microbiota, histidine catabolism, and NAFLD opens therapeutic opportunities.
KW - Hut operon
KW - NAFLD
KW - Proteobacteria
KW - amino acids
KW - dysbiosis
KW - hepatic disease
KW - histidine
KW - omics
UR - https://www.scopus.com/pages/publications/85180419795
U2 - 10.1016/j.xcrm.2023.101341
DO - 10.1016/j.xcrm.2023.101341
M3 - Article
SN - 2666-3791
VL - 4
JO - Cell Reports Medicine
JF - Cell Reports Medicine
IS - 12
M1 - 101341
ER -