Related Experiment Videos
CYP450 network shifts in MASLD/MASH: from pathogenesis to nutrition-informed modulation
Sümeyye Koç1, Sude Toydemir2, Gökay Vardar3
1Department of Nutrition Dietetics, Faculty of Health Sciences, Lokman Hekim University, Ankara, Türkiye; Department of Molecular Biology and Genetics, Faculty of Science, Boğaziçi University, Istanbul, Türkiye.
None:
As metabolic dysfunction-associated steatotic liver disease (MASLD)/metabolic dysfunction-associated steatohepatitis (MASH) becomes increasingly prevalent in parallel with obesity, metabolic dysfunction, and ultra-processed dietary patterns, understanding how diet-related exposures influence hepatic drug-metabolizing and lipid-metabolizing pathways has become clinically relevant. Cytochrome P450 (CYP450) enzymes represent a key interface between metabolic stress, xenobiotic handling, oxidative injury, and nutrition-related exposures, yet their role in MASLD/MASH has not been fully integrated from a nutrition-informed perspective. This review maps nutrition-exposure-CYP relationships across MASLD/MASH by integrating dietary patterns, food-processing exposures, contaminants/additives, and bioactive compounds within a structured qualitative framework. The reviewed evidence suggests that obesity, high-fat diet exposure, fructose co-exposure, and fatty acid composition may reshape hepatic CYP responses through isoform-, exposure-, and endpoint-dependent mechanisms. Human liver tissue and microsome studies provide relatively stronger translational evidence for altered CYP3A4 expression, activity, and clearance in NAFLD/NASH, whereas evidence for many nutrition-related exposures remains primarily animal-based, in vitro, or mechanistic. Macronutrient-related pathways, including fructose with high-fat intake and omega-6/omega-3 oxylipin imbalance, appear to influence CYP-mediated lipid and inflammatory signaling. Food-derived contaminants, such as nitrosamines, aflatoxin B1, and acrylamide, provide biologically plausible examples of CYP-dependent bioactivation in metabolically vulnerable liver contexts, although direct human MASLD/MASH validation remains limited. Evidence for food additives and phytochemicals is more preliminary and should be interpreted mainly as hypothesis-generating rather than clinically established. Across the reviewed evidence, metabolic inflammation appears to favor pro-oxidant CYP pathways, including CYP2E1 and CYP4A/4F, while suppressing or altering detoxification and epoxygenase-related pathways, including CYP3A and CYP2C/2J. However, changes in CYP expression do not necessarily translate into altered enzymatic activity or clinical clearance. We conclude that nutrition-related CYP remodeling may represent a mechanistic and translational interface linking diet, oxidative injury, xenobiotic handling, and MASLD/MASH progression. Future studies should integrate dietary exposure assessment with CYP activity or clearance phenotypes, oxidative stress biomarkers, gut-liver axis markers, and MASLD/MASH stage-specific clinical outcomes.
Related Concept Videos
Electron Transport Chain: Complex I and II
ROS generation is regulated and maintained at moderate levels necessary...
Phase I Oxidative Reactions: Overview
Bioactivation and Tissue Toxicity
Phase I Reactions: Oxidation of Aliphatic and Aromatic Carbon-Containing Systems
Oxidation reactions are fundamental in aromatic carbon-containing systems. An example is the hydroxylation of phenobarbital, a process that transforms it into...
Drug Metabolism: Phase I Reactions
Redox Reactions