Cytoskeletal Dynamics and Molecular Motor Dysfunction in Psychiatric Disorders: Insights from Schizophrenia and Autism Spectrum Disorder
Simple Summary
Abstract
1. Introduction
2. Cytoskeletal and Molecular Motor Abnormalities in Schizophrenia
3. Cytoskeletal and Molecular Motor Abnormalities in Autism Spectrum Disorder
4. Conclusions
- Clarifying the relationships between glia-specific cytoskeletal and molecular motor gene variants and psychiatric disorders;
- Developing novel therapeutic strategies that directly target glial cytoskeletal and molecular motor pathways;
- Elucidating the roles of cytoskeletal and motor systems in neuron–glia interactions;
- Defining how morphological changes in glial cells relate to functional alterations in the context of psychiatric illnesses.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Category | Gene/Protein | Type of Evidence | Molecular Function | Reported Alteration | Cellular Consequence | Relevance | Key Refs. |
|---|---|---|---|---|---|---|---|
| Microtubule | MAP2 | Postmortem brain studies | Stabilizes dendritic microtubules | Reduced expression | Dendritic arbor simplification and reduced synaptic integration | Schizophrenia | [39,40] |
| Microtubule-associated | DISC1 | Genetic/functional studies | Regulates microtubule stability and intracellular transport | SNPs: rs821616 (p.Ser704Cys) disrupts NDEL1/LIS1 binding; rs1000731 associated with hippocampal deficits | Neurodevelopmental and synaptic plasticity defects | Schizophrenia | [41,42] |
| Actin regulation | CYFIP1 (WAVE complex) | CNV/expression studies | Controls actin polymerization in dendritic spines | 15q11.2 microdeletion (OR ≈ 2.8 for SCZ); CYFIP1 haploinsufficiency (~50% protein reduction) | Spine dysgenesis and excitatory synapse dysfunction | SCZ/ASD | [43,44,45,46] |
| Actin regulation | NCKAP1/WASF1 | Postmortem expression | Components of WAVE actin regulatory complex | Expression changes | Defective dendritic spine formation | Schizophrenia | [43,44] |
| Actin-binding | Calponin-3 | Proteomics/neuronal assays | Stabilizes actin filaments | Increased expression | Abnormal spine morphology and plasticity | Schizophrenia | [47,48] |
| Intermediate filament | GFAP | Postmortem brain analysis | Astrocytic cytoskeletal protein | Increased expression | Astrocyte activation and neuroinflammation | Schizophrenia | [49,50] |
| Kinesin motor | KIF17 | Genetics/protein studies | Transports NMDA receptor subunit NR2B | rs2722519 (missense SNP); reduced KIF17 protein expression impairs NR2B-NMDAR trafficking | Impaired NMDA receptor trafficking and synaptic plasticity | Schizophrenia | [51,52] |
| Kinesin motor | KIF1A | Genetic/rare variants | Anterograde transport of synaptic vesicle precursors | Motor/stalk domain SNPs (SCZ); c.773C > T p.Pro258Leu (ASD, de novo); impaired ATPase/processivity | Reduced neurotransmitter supply to synapses | SCZ/ASD | [53,54,55,56] |
| Kinesin motor | KIF3B | Mouse model studies | Regulates NMDA receptor trafficking | Kif3b loss-of-function (mouse model); reduces NR2A trafficking, causes SCZ-like behavior | Disrupted NMDA signaling | Schizophrenia | [57] |
| Dynein motor | DYNC1H1 | Rare variant reports | Retrograde axonal transport | De novo missense variants; predicted motor domain destabilization impairing retrograde transport | Impaired trophic signaling and cargo recycling | Schizophrenia | [58,59] |
| Myosin motor | MYO16 | Rare variant studies | Regulates neuronal migration and dendrite formation | Rare missense and CNVs (Han Chinese GWAS); impaired neuronal migration and dendrite formation | Circuit formation abnormalities | SCZ/ASD | [60,61] |
| Myosin motor | MYO1D | Genetic association | Spine-localized actin motor | Common risk variant (GWAS); TH1-domain–dependent spine localization; excitatory synapse defect | Excitatory synaptic dysfunction | ASD | [17,36] |
| Myosin metabolism | MYO1D–ASPA | Protein interaction studies | Links cytoskeleton and neuronal metabolism | Common risk variant (GWAS); TH1-domain–dependent spine localization; excitatory synapse defect | Metabolic–synaptic coupling abnormalities | ASD | [62,63] |
| Myosin motor | MYO9B | Functional neuronal studies | Regulates RhoA signaling and dendritic morphology | Rare missense in RhoGAP domain; impaired RhoA inactivation; dendritic arborization defects | Altered dendritic structure | ASD | [5,64] |
| PSD scaffold | SHANK3 | Human genetics | Organizes actin cytoskeleton in postsynaptic density | 22q13.3 deletion (Phelan-McDermid); protein-truncating variants (e.g., p.Arg1117); PSD scaffold loss | Severe dendritic spine defects | ASD | [65,66] |
| Microtubule nucleation | TUBG1 | Rare variant reports | Microtubule nucleation | p.Tyr92Cys (de novo missense); disrupts γ-TuRC; impairs MT nucleation and cortical neuron migration | Neuronal polarity and migration defects | ASD | [67,68] |
| Neurogenesis regulator | ASPM | Genetic studies | Controls neural progenitor division | Biallelic LoF variants in IQ-domain repeats; symmetric progenitor division defect; ASD cohort CNVs | Cortical development abnormalities | ASD | [69,70] |
| Kinesin motor | KIF5C | Genetic studies | Axonal transport and neuronal polarity | p.Glu237Lys (de novo, motor domain); ATP hydrolysis impaired; axon elongation and cortical wiring defects | Abnormal axon elongation and circuit wiring | ASD | [71] |
| Kinesin (microglia) | KIF family (Kifs) | Primary cultured microglia | Intracellular transport in microglia | Upregulation in alternatively activated microglia | Altered microglial transport and immune function | SCZ/ASD | [38] |
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Nakamura, K.; Kubo, A.; Sanaka, S.; Kamiya, S.; Itagaki, K.; Sasaki, T. Cytoskeletal Dynamics and Molecular Motor Dysfunction in Psychiatric Disorders: Insights from Schizophrenia and Autism Spectrum Disorder. Biology 2026, 15, 550. https://doi.org/10.3390/biology15070550
Nakamura K, Kubo A, Sanaka S, Kamiya S, Itagaki K, Sasaki T. Cytoskeletal Dynamics and Molecular Motor Dysfunction in Psychiatric Disorders: Insights from Schizophrenia and Autism Spectrum Disorder. Biology. 2026; 15(7):550. https://doi.org/10.3390/biology15070550
Chicago/Turabian StyleNakamura, Kenyu, Asumi Kubo, Sae Sanaka, Sara Kamiya, Kentaro Itagaki, and Tetsuya Sasaki. 2026. "Cytoskeletal Dynamics and Molecular Motor Dysfunction in Psychiatric Disorders: Insights from Schizophrenia and Autism Spectrum Disorder" Biology 15, no. 7: 550. https://doi.org/10.3390/biology15070550
APA StyleNakamura, K., Kubo, A., Sanaka, S., Kamiya, S., Itagaki, K., & Sasaki, T. (2026). Cytoskeletal Dynamics and Molecular Motor Dysfunction in Psychiatric Disorders: Insights from Schizophrenia and Autism Spectrum Disorder. Biology, 15(7), 550. https://doi.org/10.3390/biology15070550

