Metabolic toxicity and neurological dysfunction in methylmalonic acidemia: from mechanisms to therapeutics
Mengmeng Du, Miaomiao Li, Shengnan Wu, Xue Wu, Yongxing Chen, Changlian Zhu · 2025 · 6 citationsRead the paper
Methylmalonic acidemia (MMAemia) is an inborn error of organic acid metabolism characterized by the accumulation of toxic metabolites-including methylmalonic acid (MMA), 2-methylcitric acid (2-MCA), propionic acid (PA), homocysteine (Hcy), ammonia, and lactate-due to defects in methylmalonyl-CoA mutase or impaired cobalamin metabolism. These metabolites exert profound effects on the central nervous system, contributing to neurological injury through tightly interconnected mechanisms, including mitochondrial dysfunction, neuroinflammation, and excitotoxicity. This review synthesizes current evidence on how these metabolites trigger neurological dysfunction, integrating findings from clinical studies, animal models, and cellular systems. We also highlight the increasingly recognized role of aberrant post-translational modifications (e.g., methylmalonylation, propionylation, lactylation) in disrupting metabolic network architecture and reprogramming cellular metabolism. Despite advances in supportive therapies, intracerebral metabolite accumulation remains a therapeutic challenge. We discuss emerging strategies targeting mitochondrial protection, redox homeostasis, and inflammation-including enzyme replacement, gene therapy, antioxidant regimens, and exosome-based delivery. A deeper mechanistic understanding of metabolite-driven neurotoxicity is critical to the development of targeted interventions that can improve neurological outcomes in MMAemia.
4 ideas Seedlabs derived from this research
A targeted delivery vehicle using engineered exosomes to transport methylmalonyl-CoA mutase or related enzymes across the blood-brain barrier to reduce intracerebral metabolite accumulation.
AI score 71/100A specialized biomarker test that measures aberrant methylmalonylation and propionylation levels to track disease progression and treatment response in MMA patients.
AI score 69/100A targeted drug delivery vehicle using exosomes to transport mitochondrial protectors and antioxidants across the blood-brain barrier to treat MMA-induced neurotoxicity.
AI score 55/100An engineered exosome delivery vehicle loaded with antioxidant or enzyme-replacement cargo, surface-functionalized to cross the blood-brain barrier and deposit payload directly into neuronal mitochondria, targeting the root cause of MMAemia-associated brain injury.
AI score 43/100