J Nutr. 2026 Sep 2:101815. doi: 10.1016/j.tjnut.2026.101815. Online ahead of print.
ABSTRACT
Dietary carbohydrate has traditionally been classified using a simple-versus-complex scheme, although the heterogeneous sources and structures of carbohydrate-containing foods make physiologically meaningful comparisons based on chemical structure alone challenging. Glycemic load (GL) provides a standardized approach to quantify the glucose-raising potential of carbohydrate-containing foods by integrating glycemic index (GI) with the amount of carbohydrate consumed. GI is an in vivo, unitless relative ranking of the postprandial glucose-raising potential of carbohydrate-containing foods, whereas GL provides a directly quantifiable standard for all carbohydrates regardless of their dietary sources (dGL). A complementary construct, dietary insulin demand (dID), extends physiologic quantification to food-induced insulin responses, incorporating effects attributable not only to carbohydrate but also to protein and amino acid composition, fat, food structure, and mixed-meal interactions. To date, however, the evidence base for dID is substantially smaller than that for dGL; support is strongest for its ability to characterize postprandial insulin responses, whereas evidence relating dID to long-term clinical outcomes remains limited. This review summarizes the development, methodology, interpretation, and implications of dGL and dID, emphasizing the body of observational and experimental work that established dGL as a physiologically quantifiable dietary exposure. A substantial body of evidence links refined carbohydrate intake and higher dGL with cardiometabolic disorders, including cardiovascular disease, dyslipidemia, systemic inflammation, weight gain, and type 2 diabetes, with less consistent evidence for cancer. Recent large cohorts and meta-analyses further support the relevance of dGI and dGL to cardiometabolic risk, particularly in populations consuming diets high in refined carbohydrates and low in dietary fiber. Nevertheless, effect estimates vary across populations and intervention studies, reflecting differences in metabolic phenotype, dietary assessment and GI assignment, energy balance, food sources, comparator diets, and the magnitude of the achieved dGL contrast. For nutritional management of diabetes, development of a "GL exchange" may provide a useful extension of the traditional carbohydrate-exchange approach to glycemic control. Beyond simple isocaloric macronutrient substitution, dGL and dID quantify the physiologic glucose-raising and insulinogenic demands of foods and dietary patterns.
PMID:42686064 | DOI:10.1016/j.tjnut.2026.101815