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Targeting Vasohibins to Promote Axon Regeneration
Philipp Gobrecht1,2, Jeannette Gebel1,2, Alexander Hilla2
1Center of Pharmacology, Institute II, Medical Faculty, University of Cologne, Cologne D-50931, Germany.
Abstract:
Treatments accelerating axon regeneration in the nervous system are still clinically unavailable. However, parthenolide promotes adult sensory neurons' axon growth in culture by inhibiting microtubule detyrosination. Here, we show that overexpression of vasohibins increases microtubule detyrosination in growth cones and compromises growth in culture and in vivo. Moreover, overexpression of these proteins increases the required parthenolide concentrations to promote axon regeneration. At the same time, the partial knockdown of endogenous vasohibins or their enhancer SVBP in neurons facilitates axon growth, verifying them as pharmacological targets for promoting axon growth. In vivo, repeated intravenous application of parthenolide or its prodrug di-methyl-amino-parthenolide (DMAPT) markedly facilitates the regeneration of sensory, motor, and sympathetic axons in injured murine and rat nerves, leading to acceleration of functional recovery. Moreover, orally applied DMAPT was similarly effective in promoting nerve regeneration. Thus, pharmacological inhibition of vasohibins facilitates axon regeneration in different species and nerves, making parthenolide and DMAPT the first promising drugs for curing nerve injury.
Insights
Parthenolide and its prodrug DMAPT promote axon regeneration by inhibiting vasohibins, offering the first promising drugs for nerve injury repair. This research advances treatments for nervous system repair.
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- Clinically unavailable treatments for accelerating axon regeneration.
- Parthenolide promotes axon growth by inhibiting microtubule detyrosination.
Purpose of the Study:
- To investigate the role of vasohibins in axon regeneration.
- To evaluate parthenolide and its prodrug DMAPT as potential therapeutics for nerve injury.
Main Methods:
- Overexpression and knockdown of vasohibins and SVBP in neurons.
- In vitro and in vivo studies of axon growth and regeneration.
- Administration of parthenolide and DMAPT via intravenous and oral routes.
Main Results:
- Vasohibins increase microtubule detyrosination, compromising axon growth.
- Knockdown of vasohibins or SVBP facilitates axon growth.
- Parthenolide and DMAPT promote significant axon regeneration and functional recovery in injured nerves.
Conclusions:
- Pharmacological inhibition of vasohibins facilitates axon regeneration.
- Parthenolide and DMAPT are promising therapeutic agents for nerve injury.
- This study identifies novel drug targets for nervous system repair.
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