Roscovitine, a CDK Inhibitor, Reduced Neuronal Toxicity of mHTT by Targeting HTT Phosphorylation at S1181 and S1201
Hongshuai Liu1, Ainsley McCollum1, Asvini Krishnaprakash1
1Division of Neurobiology, Department of Psychiatry, Johns Hopkins University School of Medicine, Baltimore, MD 21287, USA.
Insights
Researchers identified cyclin-dependent kinase 5 (CDK5) as a key regulator of mutant huntingtin protein (mHTT) toxicity in Huntington's disease (HD). Inhibiting CDK5 with roscovitine reduced mHTT toxicity and showed promise for preclinical HD treatment.
Area of Science:
- Neuroscience
- Genetics
- Pharmacology
Background:
- Huntington's disease (HD) is a fatal neurodegenerative disorder caused by mutations in the huntingtin gene (HTT).
- Mutant huntingtin protein (mHTT) toxicity is linked to its post-translational modifications (PTMs), including phosphorylation.
- Identifying kinases that modify mHTT is crucial for developing targeted therapies.
Purpose of the Study:
- To identify kinase inhibitors that can modulate the toxicity of mutant huntingtin protein (mHTT).
- To investigate the role of cyclin-dependent kinases (CDKs) in mHTT phosphorylation and toxicity.
- To evaluate the therapeutic potential of CDK inhibitors in Huntington's disease models.
Main Methods:
- Screened 368 kinases using in vitro kinase assays with HTT peptides containing identified PTM sites.
- Investigated the effects of CDK1 and CDK5 on HTT phosphorylation at serine sites S1181 and S1201.
- Administered roscovitine, a CDK inhibitor, to Huntington's disease mice to assess its brain penetration and efficacy.
Main Results:
- Cyclin-dependent kinases (CDKs) were found to affect serine phosphorylation at S1181 and S1201 of HTT.
- CDK5 was identified as a key kinase modifying these sites, and its knockdown reduced phosphorylation.
- Roscovitine treatment decreased phosphorylation at S1181 and S1201, reduced mHTT toxicity, and penetrated the brain in HD mice.
Conclusions:
- CDK5-mediated phosphorylation of HTT at S1181 and S1201 contributes to mHTT-induced neurotoxicity.
- Inhibition of CDK5 by roscovitine demonstrates a promising therapeutic strategy for Huntington's disease.
- Further in vivo studies are warranted to advance roscovitine as a preclinical treatment for HD.
Abstract:
Huntington's disease (HD) is an autosomal dominant neurodegenerative disease caused by a single mutation in the huntingtin gene (HTT). Normal HTT has a CAG trinucleotide repeat at its N-terminal within the range of 36. However, once the CAG repeats exceed 37, the mutant gene (mHTT) will encode mutant HTT protein (mHTT), which results in neurodegeneration in the brain, specifically in the striatum and other brain regions. Since the mutation was discovered, there have been many research efforts to understand the mechanism and develop therapeutic strategies to treat HD. HTT is a large protein with many post-translational modification sites (PTMs) and can be modified by phosphorylation, acetylation, methylation, sumoylation, etc. Some modifications reduced mHTT toxicity both in cell and animal models of HD. We aimed to find the known kinase inhibitors that can modulate the toxicity of mHTT. We performed an in vitro kinase assay using HTT peptides, which bear different PTM sites identified by us previously. A total of 368 kinases were screened. Among those kinases, cyclin-dependent kinases (CDKs) affected the serine phosphorylation on the peptides that contain S1181 and S1201 of HTT. We explored the effect of CDK1 and CDK5 on the phosphorylation of these PTMs of HTT and found that CDK5 modified these two serine sites, while CDK5 knockdown reduced the phosphorylation of S1181 and S1201. Modifying these two serine sites altered the neuronal toxicity induced by mHTT. Roscovitine, a CDK inhibitor, reduced the p-S1181 and p-S1201 and had a protective effect against mHTT toxicity. We further investigated the feasibility of the use of roscovitine in HD mice. We confirmed that roscovitine penetrated the mouse brain by IP injection and inhibited CDK5 activity in the brains of HD mice. It is promising to move this study to in vivo for pre-clinical HD treatment.
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