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Myosin 5A mediates membrane-associated periodic skeleton reassembly during axon regeneration in response to ROCK-2
Atrayee Basu1, Elisa M Howard1, Tanina Arab1
1Departments of Neuroscience and Neurology, Program in Cellular Neuroscience, Neurodegeneration and Repair, Yale School of Medicine, New Haven, CT 06510 USA.
Abstract:
The membrane-associated periodic skeleton (MPS) is a submembrane lattice composed of actin rings and spectrin tetramers that repeats every 190 nm along axons and maintains mechanical stability. Loss of the MPS precedes axon fragmentation during degeneration, but during axon regrowth after injury the extent and timing of MPS reformation are not clear. We used stimulated emission depletion (STED) microscopy to track βII-spectrin periodicity in regenerating axons from mouse cortical neurons, human iPSC-derived cortical neurons, and human iPSC-derived motor neurons following mechanical axotomy. Regrowing axons initially lack periodic βII-spectrin organization, particularly near the growth cone. Over 8 to 15 days, periodicity is partially restored in intermediate axonal regions, while distal segments remain disorganized. We found that reducing Rho kinase ROCK-2 activity either pharmacologically or by CRISPRi promotes axon regrowth and accelerates MPS recovery rate five-fold, reaching near-normal levels by 3 days post-injury. To identify the key effectors, we performed co-immunoprecipitation mass spectrometry of the βII-spectrin complex under injury and ROCK-2-inhibited conditions. Myosin 5A (MYO5A) association with spectrin rose sharply upon injury and further increased when ROCK-2 was absent. Functional experiments positioned MYO5A downstream of ROCK-2. Knocking down MYO5A abolished the enhanced regrowth of ROCK-2-deficient neurons, while overexpressing MYO5A increased regrowth in wild-type neurons. Depleting MYO5A also partially disrupted βII-spectrin periodicity in healthy, uninjured axons, indicating a requirement for MYO5A in MPS maintenance under physiological conditions. STED imaging demonstrated that ROCK-2 is arranged periodically along the axon at 190 nm intervals, suggesting it regulates the local lattice. These findings define a ROCK-2/MYO5A pathway linking a targetable kinase to nanoscale cytoskeletal repair and axon regeneration.
Insights
Axon regeneration after injury is slow, but inhibiting ROCK-2 kinase accelerates membrane-associated periodic skeleton (MPS) recovery. This pathway involves Myosin 5A, crucial for cytoskeletal repair and axon regrowth.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- The membrane-associated periodic skeleton (MPS) is vital for axonal mechanical stability.
- MPS organization is lost during axon degeneration and its reformation during regrowth is unclear.
Purpose of the Study:
- To investigate the timing and extent of MPS reformation during axon regeneration.
- To identify molecular mechanisms regulating MPS recovery and axon regrowth.
Main Methods:
- Stimulated emission depletion (STED) microscopy to track βII-spectrin periodicity in regenerating axons.
- Pharmacological and CRISPRi inhibition of Rho kinase ROCK-2.
- Co-immunoprecipitation mass spectrometry to identify protein interactions.
- Functional experiments involving knockdown and overexpression of Myosin 5A (MYO5A).
Main Results:
- Regenerating axons initially lack periodic βII-spectrin organization, with partial restoration over 8-15 days.
- Reducing ROCK-2 activity accelerated MPS recovery five-fold.
- Myosin 5A (MYO5A) association with spectrin increased upon injury and upon ROCK-2 inhibition.
- MYO5A is downstream of ROCK-2, essential for ROCK-2-mediated enhanced regrowth and MPS maintenance.
Conclusions:
- A ROCK-2/MYO5A pathway regulates nanoscale cytoskeletal repair during axon regeneration.
- Targeting ROCK-2 can promote axon regrowth and accelerate MPS recovery.
- MYO5A plays a critical role in both axon regeneration and maintaining MPS structure in healthy axons.
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