DeCure for Autosomal recessive spinocerebellar ataxia 2
DeCure's autonomous Neuro AI scientist is researching a drug-repurposing hypothesis for autosomal recessive spinocerebellar ataxia 2 — screening already-approved drugs against its 1-gene Open Targets disease module to publish open-access research. Research is fast; the path to publication is funded in milestone stages.
Disease moduleAutosomal recessive spinocerebellar ataxia 2 maps to a 1-gene Open Targets module — the target space DeCure's AI scientist screens approved drugs against.
DeCure.ai methodSignature reversal (LINCS) plus network proximity (STRING) rank already-approved drugs likely to perturb this module — the same engine that produces DeCure.ai's repurposing hypotheses.
Repurposing thesisScreening approved medicines against this disease module, then publishing the evidence for the strongest candidate. Known pharmacology and human exposure data make the first question sharper — they do not establish safety or efficacy in a new indication.
Research record
01
ResearchComing soon
Candidate research + dossier — target rationale, drug-repurposing thesis and evidence pack.proof: Published dossier + on-chain hash
02
ValidationComing soon
In-vitro biological validation at a contract research org (CRO).proof: CRO contract + in-vitro report
03
Peer review & paperComing soon
Peer-reviewed paper published open-access (preprint + journal).proof: DOI + open-access link + on-chain hash
Current lead
No approved-drug candidate for autosomal recessive spinocerebellar ataxia 2 is corroborated in the literature DeepSearch retrieved. Some conditions are managed with non-pharmacological care — a device, surgery or physical therapy — rather than a medicine; that may be the case here, or the literature we found may simply be too sparse yet to support a drug-repurposing angle.
What the evidence adds up to
By 2011, the causative mutations of more than 30 spinocerebellar ataxias and 20 recessive ataxias had been identified, bringing the total number of distinct ataxia disorders to between 50 and 100. Despite this progress, effective therapies for ataxias were still lacking. Recurrent pathophysiological themes included protein aggregation, failure of protein homeostasis, perturbations in ion channel function, defects in DNA repair, and mitochondrial dysfunction. For the dominant spinocerebellar ataxias, over 35 genetic subtypes existed by 2011; those caused by expanded CAG repeats remained the more common ones, but the majority of recently identified subtypes arose from more conventional mutations. Repeat length partially explained age at onset, disease severity, progression, and core clinical phenotype. Common disease mechanisms included misfolding and aggregation, impairment of the protein quality control system, abnormal protein interactions, disruption of gene transcription, RNA toxicity, and changes in glutamate and calcium signalling. Yet no drug specifically designed for or targeted at those mechanisms was available.
A 2025 review of approaches to treating autosomal-dominant spinocerebellar ataxias stated that these diseases remain incurable. Research results indicated that certain medications and physical therapy could alleviate symptoms of cerebellar ataxia, but the review did not name any specific drug or quantify any effect. The same review expressed high hopes that gene therapy methods might be developed to slow or stop disease progression, but no such therapy was described as having been tested or proven in patients.
The abstracts provide no clinical trial data, no response rates, no survival figures, and no sample sizes for any drug in autosomal recessive spinocerebellar ataxia 2 specifically. What is still missing is any completed or ongoing trial that tests a repurposed or novel compound in this particular recessive subtype, as well as the patient stratification and funding needed to move from general pathophysiological themes to a targeted therapy.
Evidence
Retrieved by DeepSearch across 234,678,978 indexed works and resolved on OpenAlex — ranked by citations, including the results that did not work.
Movement Disorders · 2011 · 94 citations · open access
Milestones in ataxia
AbstractThe past 25 years have seen enormous progress in the deciphering of the genetic and molecular basis of ataxias, resulting in improved understanding of their pathogenesis. The most significant milestones during this period were the cloning of the genes associated with the common spinocerebellar ataxias, ataxia telangiectasia, and Friedreich ataxia. To date, the causative mutations of more than 30 spinocerebellar ataxias and 20 recessive ataxias have been identified. In addition, there are numerous acquired ataxias with defined molecular causes, so that the entire number of distinct ataxia disorders exceeds 50 and possibly approaches 100. Despite this enormous heterogeneity, a few recurrent pathophysiological themes stand out. These include protein aggregation, failure of protein homeostasis, perturbations in ion channel function, defects in DNA repair, and mitochondrial dysfunction. The clinical phenotypes of the most common ataxia disorders have been firmly established, and their natural history is being studied in ongoing large observational trials. Effective therapies for ataxias are still lacking. However, novel drug targets are under investigation, and it is expected that there will be an increasing number of therapeutic trials in ataxia.
Recent Advances in Hereditary Spinocerebellar Ataxias
AbstractIn recent years, molecular genetic research has unraveled a major part of the genetic background of autosomal dominant and recessive spinocerebellar ataxias. These advances have also allowed insight in (some of) the pathophysiologic pathways assumed to be involved in these diseases. For the clinician, the expanding number of genes and genetic loci in these diseases and the enormous clinical heterogeneity of specific ataxia subtypes complicate management of ataxia patients. In this review, the clinical and neuropathologic features of the recently identified spinocerebellar ataxias are described, and the various molecular mechanisms that have been demonstrated to be involved in these disorders are discussed.
AbstractThe relevant clinical, genetic, and cell biologic aspects of the dominantly inherited spinocerebellar ataxias (SCAs) are reviewed in this article. SCAs are diseases of the entire nervous system; in addition to cerebellar ataxia, the central (but not obligate) disease feature, many noncerebellar complications can be present as well. There are over 35 genetic subtypes: although those caused by expanded CAG repeats are still the more common ones, the majority of the recent SCAs have been caused by more conventional mutations. Genotype-phenotype correlations do exist and are most clear for the repeat expansion, where repeat length partially explains age at onset, disease severity and progression, and the core clinical phenotype. Some common themes within the disease mechanisms seem to emerge, including misfolding and aggregation, impairment of the protein quality control system, abnormal protein interactions, disruption of gene transcription, RNA toxicity, and changes in glutamate and calcium signaling. Yet despite this exciting progress in the molecular genetic background and suggested corresponding pathways, there is still no drug available that is specifically designed for or targeted at the mechanisms at play.
Rinsho Shinkeigaku · 2016 · 1 citations · open access
Autosomal recessive spinocerebellar ataxias in Japan
AbstractRecent new sequencing techniques allow the identification of novel responsible genes for autosomal recessive spinocerebellar ataxias (ARCAs). However, the same phenotypes are sometimes attributed to the different responsible genes in ARCAs. On the contrary, the same responsible genes may cause heterogeneous phenotypes with respect to the age at onset, symptoms, and the severity of the disease progression. In addition, it is an important issue to clarify whether the gene mutations identified in Caucasian patients with infantile-onset ARCAs are also observed in Japanese patients with adult-onset ARCAs. In this article we review the characteristics of several ARCAs, the existence of which has been recently identified or confirmed in Japan.
Yakut Medical Journal · 2025 · 0 citations · open access
Approaches to the treatment of autosomal-dominant spinocerebellar ataxias
AbstractThe article is devoted to the prospects for the treatment of neurodegenerative diseases with dynamic mutations based on published studies of the search for approaches to the treatment of spinocerebellar ataxia. Although these diseases are incurable, research results show that certain medications and physical therapy can alleviate the symptoms of cerebellar ataxia. Due to the progress made in the study of spinocerebellar ataxia in recent years, there are high hopes that it will be possible to develop gene therapy methods that will slow down the progression of the disease or even stop its development.
Disease module: DeepOracle (Open Targets). Structures: RDKit from PubChem SMILES. Literature: retrieved by DeepSearch across 234,678,978 indexed works (targeted per-candidate search), resolved on OpenAlex.
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