Xue Zhang, Esa Abiso Godana, Kaili Wang, Hongyin Zhang, Qiya Yang
Aflatoxins (AFs) are highly carcinogenic mycotoxins produced by toxigenic fungi, posing serious threats to food safety, animal production, and human health. Microbial aflatoxin control has recently emerged as a promising, sustainable, and environmentally friendly strategy for reducing aflatoxin contamination. However, growing evidence suggests that reductions in AF levels within microbial treatment systems may arise not only from direct toxin degradation, but also from inhibition of fungal growth, adsorption or sequestration processes, and suppression of AF biosynthesis. In microbial co-culture systems involving viable toxigenic fungi, exogenous microorganisms and their metabolites can establish persistent ecological stress through nutrient competition, oxidative stress, and interspecies signaling. These stresses activate fungal cell wall integrity pathways, MAPK signaling cascades, and transcriptional regulatory networks, leading to membrane remodeling, alterations in lipid and energy metabolism, and redistribution of cellular resources. As a consequence, fungal physiology progressively shifts from a growth- and toxin-production-oriented state toward a survival- and defense-oriented state, resulting in impaired growth and reduced AF biosynthesis. This review proposes the internal disintegration framework, which conceptualizes AF suppression as a progressive loss of toxin-producing capacity caused by sustained microbial-induced physiological remodeling rather than solely by fungal growth inhibition or toxin degradation. It will provide new perspectives for developing precise, efficient, and eco-friendly dual-target control strategies.