Early childhood malnutrition (ECM) is robustly associated with increased risk of cognitive impairment and neuropsychiatric disorders across the lifespan, yet the biological mechanisms underlying this vulnerability remain incompletely defined. Accumulating clinical evidence indicates that ECM is associated with delayed maturation and reduced diversity of the intestinal microbiota, including depletion of taxa involved in short-chain fatty acid production and complex carbohydrate fermentation. These microbial alterations coincide with broader metabolic, immune, and barrier dysfunctions - such as reduced availability of neuroactive metabolites, low-grade inflammation, and impaired intestinal and vascular integrity - that plausibly intersect with critical processes in brain development. Experimental studies in animal models demonstrate that perturbation of microbiota-derived signaling during sensitive early periods is sufficient to induce lasting neurodevelopmental and behavioral changes, providing proof of concept for a causal role. However, in human populations, the microbiota remains best viewed as a biologically plausible intermediary rather than a proven determinant of outcome. Future progress will require integrative longitudinal studies and developmentally timed interventions to test whether restoration of microbiota function can modify neurodevelopmental trajectories. Clarifying these relationships has important implications for understanding the long-term consequences of early nutritional adversity and for identifying preventive strategies in settings where ECM remains prevalent.
Jama et al. (2026) studied this question.