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Mitochondrial-Epigenetic Crosstalk in Autism Spectrum Disorder: Linking Cellular Stress to Synaptic Dysfunction and
Dijie Liu1, Kai Tao2, Yuxia Wang2
1The Fourth Affiliated Hospital, China Medical University, Shenyang, 110032, China. liudijie@cmu.edu.cn.
Abstract:
Autism spectrum disorder (ASD) is a complex neurodevelopmental condition characterized by striking heterogeneity in therapeutic outcomes, with a substantial subset of individuals showing limited or absent improvement in targeted behavioral domains following behavioral or pharmacological interventions. Traditional explanations for poor treatment response-such as receptor desensitization and pharmacokinetic variability-fail to capture the persistent, systems-level alterations underlying this phenomenon. Emerging evidence identifies mitochondrial dysfunction as a critical but underexplored contributor to persistent treatment non-response in ASD. Beyond energy failure, mitochondrial stress activates adaptive transcriptional programs (UPRmt, NRF2-ATF4) that recruit epigenetic effectors, including DNMTs, HDACs, and EZH2, leading to chromatin remodeling and repression of neuroplasticity-related genes. In parallel, mitochondrial noncoding RNAs (mt-ncRNAs) may participate in locus-specific epigenetic regulation, establishing a relatively stable transcriptional state that constrains treatment responsiveness. This review consolidates current insights into the mitochondrial-epigenetic axis in ASD, highlighting its association with synaptic dysfunction and clinical heterogeneity. We further discuss emerging strategies aimed at modulating mitochondrial stress and epigenetic repression, including mitochondria-targeted antioxidants, epigenetic modulators, and CRISPR/dCas9-based epigenome editing. By integrating recent multi-omics findings and preclinical evidence, we propose a mechanistic framework linking mitochondrial stress to epigenetic remodeling and domain-specific treatment non-response, with implications for precision therapeutics in ASD.
Insights
Mitochondrial dysfunction and epigenetic changes contribute to treatment non-response in autism spectrum disorder (ASD). Targeting these pathways may improve therapeutic outcomes for individuals with ASD.
Area of Science:
- Neuroscience
- Genetics
- Cell Biology
Background:
- Autism spectrum disorder (ASD) exhibits significant variability in treatment response.
- Conventional explanations for treatment non-response in ASD are insufficient.
- Mitochondrial dysfunction is an emerging factor in persistent non-response to ASD therapies.
Purpose of the Study:
- To review the role of the mitochondrial-epigenetic axis in ASD treatment non-response.
- To explore the link between mitochondrial stress, epigenetic modifications, and synaptic dysfunction in ASD.
- To discuss novel therapeutic strategies targeting mitochondrial and epigenetic pathways in ASD.
Main Methods:
- Literature review integrating multi-omics findings and preclinical evidence.
- Analysis of adaptive transcriptional programs (UPRmt, NRF2-ATF4) and epigenetic effectors (DNMTs, HDACs, EZH2).
- Examination of mitochondrial noncoding RNAs (mt-ncRNAs) in epigenetic regulation.
Main Results:
- Mitochondrial stress activates transcriptional programs that lead to epigenetic repression of neuroplasticity genes.
- Mitochondrial noncoding RNAs may contribute to locus-specific epigenetic regulation, impacting treatment responsiveness.
- The mitochondrial-epigenetic axis is associated with synaptic dysfunction and clinical heterogeneity in ASD.
Conclusions:
- A mechanistic framework links mitochondrial stress to epigenetic remodeling and domain-specific treatment non-response in ASD.
- Modulating mitochondrial stress and epigenetic repression offers potential for precision therapeutics in ASD.
- Further research into the mitochondrial-epigenetic axis is crucial for advancing ASD treatment strategies.
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