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Fractionation for Resolution of Soluble and Insoluble Huntingtin Species
Published on: February 27, 2018
Excess Rab4 rescues synaptic and behavioral dysfunction caused by defective HTT-Rab4 axonal transport in Huntington's
Joseph A White1, Thomas J Krzystek1, Hayley Hoffmar-Glennon1
1Department of Biological Sciences, The State University of New York at Buffalo, New York, 14260, USA.
Insights
Huntingtin (HTT) protein moves with Rab4 vesicles in axons, crucial for neuronal transport. In Huntington's disease (HD), this transport is disrupted, causing synaptic and behavioral deficits, suggesting Rab4 as a therapeutic target.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Huntington's disease (HD) involves striatal neuron loss and protein aggregates due to expanded CAG repeats in the huntingtin (HTT) gene.
- HTT is vital for axonal transport, but its specific cargo remains unclear.
Purpose of the Study:
- To identify the cargo of huntingtin (HTT) protein within axonal vesicles.
- To investigate the role of HTT-associated vesicles in Huntington's disease (HD) pathogenesis.
Main Methods:
- In vivo dual-color imaging to track HTT and Rab4 vesicle movement.
- Analysis of vesicle motility using kinesin-1, dynein motors, and HIP1.
- Assessment of behavioral and synaptic defects in HD models and patient-derived neurons.
Main Results:
- HTT colocalizes with Rab4-containing vesicles in axons, forming a unique motile complex.
- Reduced HTT impairs bidirectional Rab4 vesicle motility, leading to axonal and synaptic accumulation.
- Pathogenic HTT disrupts this complex, causing locomotion defects and reduced lifespan, which are rescued by excess Rab4.
- Rab4 motility is also perturbed in human HD patient-derived neurons.
Conclusions:
- A novel HTT-Rab4 vesicle complex involved in axonal transport is identified.
- Disruption of this vesicle's motility in HD contributes to synaptic and behavioral dysfunction.
- Rab4 represents a potential therapeutic target for early intervention in Huntington's disease.
Abstract:
Huntington's disease (HD) is characterized by protein inclusions and loss of striatal neurons which result from expanded CAG repeats in the poly-glutamine (polyQ) region of the huntingtin (HTT) gene. Both polyQ expansion and loss of HTT have been shown to cause axonal transport defects. While studies show that HTT is important for vesicular transport within axons, the cargo that HTT transports to/from synapses remain elusive. Here, we show that HTT is present with a class of Rab4-containing vesicles within axons in vivo. Reduction of HTT perturbs the bi-directional motility of Rab4, causing axonal and synaptic accumulations. In-vivo dual-color imaging reveal that HTT and Rab4 move together on a unique putative vesicle that may also contain synaptotagmin, synaptobrevin, and Rab11. The moving HTT-Rab4 vesicle uses kinesin-1 and dynein motors for its bi-directional movement within axons, as well as the accessory protein HIP1 (HTT-interacting protein 1). Pathogenic HTT disrupts the motility of HTT-Rab4 and results in larval locomotion defects, aberrant synaptic morphology, and decreased lifespan, which are rescued by excess Rab4. Consistent with these observations, Rab4 motility is perturbed in iNeurons derived from human Huntington's Disease (HD) patients, likely due to disrupted associations between the polyQ-HTT-Rab4 vesicle complex, accessory proteins, and molecular motors. Together, our observations suggest the existence of a putative moving HTT-Rab4 vesicle, and that the axonal motility of this vesicle is disrupted in HD causing synaptic and behavioral dysfunction. These data highlight Rab4 as a potential novel therapeutic target that could be explored for early intervention prior to neuronal loss and behavioral defects observed in HD.
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