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Pharmacological Therapies for Machado-Joseph Disease
Sara Duarte-Silva1,2, Patrícia Maciel3,4
1Life and Health Sciences Research Institute (ICVS), School of Medicine, University of Minho, Braga, Portugal.
Abstract:
Machado-Joseph disease (MJD), also known as Spinocerebellar Ataxia type 3 (SCA3), is the most common autosomal dominant ataxia worldwide. MJD integrates a large group of disorders known as polyglutamine diseases (polyQ). To date, no effective treatment exists for MJD and other polyQ diseases. Nevertheless, researchers are making efforts to find treatment possibilities that modify the disease course or alleviate disease symptoms. Since neuroimaging studies in mutation carrying individuals suggest that in nervous system dysfunction begins many years before the onset of any detectable symptoms, the development of therapeutic interventions becomes of great importance, not only to slow progression of manifest disease but also to delay, or ideally prevent, its onset. Potential therapeutic targets for MJD and polyQ diseases can be divided into (i) those that are aimed at the polyQ proteins themselves, namely gene silencing, attempts to enhance mutant protein degradation or inhibition/prevention of aggregation; and (ii) those that intercept the toxic downstream effects of the polyQ proteins, such as mitochondrial dysfunction and oxidative stress, transcriptional abnormalities, UPS impairment, excitotoxicity, or activation of cell death. The existence of relevant animal models and the recent contributions towards the identification of putative molecular mechanisms underlying MJD are impacting on the development of new drugs. To date only a few preclinical trials were conducted, nevertheless some had very promising results and some candidate drugs are close to being tested in humans. Clinical trials for MJD are also very few to date and their results not very promising, mostly due to trial design constraints. Here, we provide an overview of the pharmacological therapeutic strategies for MJD studied in animal models and patients, and of their possible translation into the clinical practice.
Insights
Machado-Joseph disease (MJD), or Spinocerebellar Ataxia type 3 (SCA3), lacks effective treatments. Research focuses on targeting toxic polyglutamine proteins or their downstream effects to develop new therapies for this progressive neurodegenerative disorder.
Area of Science:
- Neuroscience
- Genetics
- Pharmacology
Background:
- Machado-Joseph disease (MJD), also known as Spinocerebellar Ataxia type 3 (SCA3), is the most prevalent autosomal dominant ataxia globally.
- MJD is a polyglutamine disease (polyQ) with no current effective treatments, necessitating research into therapeutic interventions.
- Early nervous system dysfunction in MJD suggests the importance of interventions to slow progression or prevent onset.
Purpose of the Study:
- To provide an overview of pharmacological therapeutic strategies for MJD.
- To discuss strategies targeting polyQ proteins and their downstream effects.
- To review MJD therapeutic approaches studied in animal models and patients for clinical translation.
Main Methods:
- Review of preclinical and clinical studies on MJD therapeutic strategies.
- Analysis of targets including gene silencing, protein degradation, aggregation inhibition, and downstream effects.
- Evaluation of drug development progress and clinical trial constraints.
Main Results:
- Preclinical trials show promising results, with some candidate drugs nearing human testing.
- Therapeutic targets are divided into direct polyQ protein modulation and interception of downstream toxic effects.
- Clinical trials for MJD are limited and have faced challenges, including trial design constraints.
Conclusions:
- Developing effective treatments for MJD is crucial due to early-onset neurological dysfunction.
- Both direct and indirect therapeutic strategies show potential, supported by animal models.
- Further research and optimized clinical trial designs are needed to translate promising preclinical findings into effective human therapies.
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