Abstract MPTH74: Metabolomic Responses to Diets Varying in Carbohydrate and Glycemic Index Are Linked to Improved Glucose Metabolism and Insulin Sensitivity: OmniCarb and POUNDS Lost

Y Yoriko Heianza (TULANE UNIVERSITY, New Orleans, Louisiana, United States) Q Qi Sun J Jennifer Rood (Pennington Biomedical Research Center) G George Bray (Pennington Research Institute, Baton Rouge, Louisiana, United States) L Lawrence Appel (Johns Hopkins University, Baltimore, Maryland, United States) F Frank Sacks (Harvard T.H. Chan School of Public Health, Boston, Massachusetts, United States) L Lu Qi (Shandong Provincial Key Laboratory for Science of Material Creation and Energy Conversion, Science Center for Material Creation and Energy Conversion, Institute of Frontier Chemistry, School of Chemistry and Chemical Engineering)

Abstract

Background: The effects of reducing dietary carbohydrate intake and glycemic index (GI) levels on temporal changes in blood metabolomic profiles and their impact on improving glucose tolerance remain unclear. Aim: We examined temporal changes in circulating metabolites induced by lowering dietary carbohydrate content and GI levels and aimed to identify specific metabolites associated with improved glucose tolerance and insulin sensitivity. Methods: We analyzed data from 162 adults in the OmniCarb trial, a crossover feeding study of diets varying in carbohydrate amount and GI levels. Each diet was consumed for 5 weeks, with at least a 2-week washout period. Global metabolomics was repeatedly performed to calculate temporal changes. Oral glucose tolerance tests (OGTTs) were conducted for all participants; 12-hour meal tests were performed in a subsample (n=59). To validate and explore long-term associations in an independent study (n=670), we analyzed 6-month changes in metabolites in response to weight-loss diets varying in macronutrient composition among participants in the POUNDS Lost trial. Results: At baseline, 189 of 906 analyzed metabolites showed suggestive associations (crude p <0.05) for the area under the curve of glucose during the OGTT, and 51 metabolites remained significant after correcting for multiple testing (P-FDR <0.05). We found that 170 metabolites (19%) after overnight fasting were significantly modified by lowering carbohydrate amount and GI. In addition, at 30 minutes post-meal (after breakfast), 101 metabolites changed significantly, indicating that the low-carbohydrate, low-GI diet altered postprandial metabolite responses. Particularly, changes in gut microbiota-related metabolites, including 3-hydroxybutyrate, 3-aminoisobutyrate, kynurenate, N-acetylglycine, and hippurate, were associated with improved 12-hour postprandial glucose responses following the low-carbohydrate, low-GI diet. In the POUNDS Lost trial, 6-month increases in 3-hydroxybutyrate, 3-aminoisobutyrate, and N-acetylglycine were associated with greater reductions in fasting glucose and insulin resistance at 6 months. These initial (6-month) metabolite changes were associated with 2-year improvements in glucose metabolism and insulin sensitivity. Conclusions: Dietary interventions focusing on carbohydrate amount and GI altered circulating metabolites, including gut microbiota-related metabolites, which were linked to improved glucose tolerance and insulin sensitivity.

Article Details

Journal Circulation
Volume / Issue Vol. 153, Issue Suppl_1
Published March 24, 2026
ISSN 0009-7322
Publisher Lippincott Williams & Wilkins

Journal Info

Circulation

Lippincott Williams & Wilkins

ISSN: 0009-7322 Health Sciences

Authors (7)

Y

Yoriko Heianza

TULANE UNIVERSITY, New Orleans, Louisiana, United States

Q

Qi Sun

J

Jennifer Rood

Pennington Biomedical Research Center

G

George Bray

Pennington Research Institute, Baton Rouge, Louisiana, United States

L

Lawrence Appel

Johns Hopkins University, Baltimore, Maryland, United States

F

Frank Sacks

Harvard T.H. Chan School of Public Health, Boston, Massachusetts, United States

L

Lu Qi

Shandong Provincial Key Laboratory for Science of Material Creation and Energy Conversion, Science Center for Material Creation and Energy Conversion, Institute of Frontier Chemistry, School of Chemistry and Chemical Engineering