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The therapeutic role of creatine in Huntington's disease
Hoon Ryu1, H Diana Rosas, Steven M Hersch
1Experimental Neuropathology Unit and Translational Therapeutics Laboratory, Geriatric Research Education Clinical Center, Bedford VA Medical Center, MA 01730, USA.
Insights
Huntington's disease (HD) is a fatal neurodegenerative disorder. Creatine supplementation may offer a safe therapeutic strategy to buffer cellular energy and potentially delay HD progression.
Area of Science:
- Neuroscience
- Genetics
- Biochemistry
Background:
- Huntington's disease (HD) is an autosomal dominant neurodegenerative disorder caused by CAG repeat expansion in the huntingtin gene.
- Current treatments do not prevent HD onset or slow its progression.
- Mitochondrial dysfunction and reduced cellular energy are implicated in HD pathogenesis.
Purpose of the Study:
- To explore the potential of creatine as a therapeutic strategy for Huntington's disease.
- To investigate if maintaining cellular energy levels can ameliorate HD neurodegeneration.
Main Methods:
- This study reviews the role of mitochondrial dysfunction and energy deficits in HD.
- It examines creatine's function in cellular energy maintenance.
- The potential therapeutic application of creatine in HD is discussed.
Main Results:
- Mutant huntingtin protein may trigger pathogenic mechanisms leading to neuronal death.
- Mitochondrial dysfunction and reduced ATP levels contribute to neurodegeneration in HD.
- Creatine is essential for cellular energy and may buffer energy levels.
Conclusions:
- Therapeutic strategies buffering intracellular energy may ameliorate HD neurodegeneration.
- Sustained ATP levels are important in managing HD pathogenic mechanisms.
- Creatine offers a potentially safe and accessible therapeutic option to delay HD progression.
Abstract:
Huntington's disease (HD) is an autosomal dominant and fatal neurological disorder characterized by a clinical triad of progressive choreiform movements, psychiatric symptoms, and cognitive decline. HD is caused by an expanded trinucleotide CAG repeat in the gene coding for the protein huntingtin. No proven treatment to prevent the onset or to delay the progression of HD currently exists. While a direct causative pathway from the gene mutation to the selective neostriatal neurodegeneration remains unclear, it has been hypothesized that interactions of the mutant huntingtin protein or its fragments may result in a number of interrelated pathogenic mechanisms triggering a cascade of molecular events that lead to the untimely neuronal death observed in HD. One putative pathological mechanism reported to play a prominent role in the pathogenesis of HD is mitochondrial dysfunction and the subsequent reduction of cellular energy. Indeed, if mitochondrial impairment and reduced energy stores play roles in the neuronal loss in HD, then a therapeutic strategy that buffers intracellular energy levels may ameliorate the neurodegenerative process. Sustained ATP levels may have both direct and indirect importance in ameliorating the severity of many of the pathogenic mechanisms associated with HD. Creatine, a guanidino compound produced endogenously and acquired exogenously through diet, is a critical component in maintaining much needed cellular energy. As such, creatine is one of a number of ergogens that may provide a relatively safe and immediately available therapeutic strategy to HD patients that may be the cornerstone of a combined treatment necessary to delay the relentless progression of HD.
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