DeCure's autonomous Rare AI scientist is researching a drug-repurposing hypothesis for hereditary spastic paraplegia 53 — 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 moduleHereditary spastic paraplegia 53 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 hereditary spastic paraplegia 53 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.
Molecular view
CCR4-NOT transcription complex subunit 7 (CNOT7) — CNOT7 is one of the genes genetically linked to this disease in Open Targets — shown as context, not as a drug target we're pursuing: no approved-drug candidate for this disease is yet corroborated in the literature we found.
Loading structure…
helix sheet apo structuredrag to rotate · scroll to zoom
RCSB Protein Data Bank · entry 4GMJ · 2.7 Å · ligand none (apo structure). Experimental structure, not a prediction.
What the evidence adds up to
Hereditary spastic paraplegia 53 (SPG35) was first mapped in 2008 to chromosome 16q21-q23.1 in a large consanguineous Omani family. The study identified a 20.4 Mb region of homozygosity shared by all affected individuals, with a peak multipoint lod score of 4.86. Age at onset in that family ranged from 6 to 11 years, the disease was progressive, and intellectual disability was present, with seizures in two individuals. Two candidate genes in the interval, DYNC1LI2 and VPS4A, were sequenced but no disease-causing mutations were found. The causative gene for SPG35 was therefore not identified in that report.
A 2006 study of two consanguineous families with complicated autosomal recessive hereditary spastic paraplegia mapped a different locus on chromosome 8p12-p11.21, with a combined lod score of 7.077 at marker D8S505. Affected individuals in one family had thin corpus callosum and mental retardation; in the other family two of three affected individuals had epilepsy. The neuregulin and KIF13B genes in that interval were noted as functional candidates, but no mutations were reported. That locus is not SPG35.
A 2003 review noted that hereditary spastic paraplegias share progressive lower limb spastic paralysis due to corticospinal tract degeneration, with at least 20 genes involved and extreme genetic heterogeneity. A 1988 report described six families with 26 affected members, all with slowly progressive spastic paraparesis, slightly delayed motor milestones, normal intellect, and no perinatal cerebral event; treatment consisted of tendon lengthenings when necessary. A 2017 review of balance impairments in hereditary spastic paraplegia stated that multidisciplinary treatment tailored to identified underlying mechanisms can improve balance and prevent a proportion of falls, but gave no drug treatments.
No drug treatment for SPG35 or any hereditary spastic paraplegia is reported in these abstracts. The causative gene for SPG35 remains unidentified. What is missing is the identification of the SPG35 gene, any preclinical or clinical drug testing, and any trial design or patient stratification for this specific subtype.
Evidence
Retrieved by DeepSearch across 234,678,978 indexed works and resolved on OpenAlex — ranked by citations, including the results that did not work.
Journal of Medical Genetics · 2003 · 168 citations · open access
Science in motion: common molecular pathological themes emerge in the hereditary spastic paraplegias: Table 1
AbstractThe hereditary spastic paraplegias are a group of neurodegenerative conditions that all share the principal clinical feature of progressive lower limb spastic paralysis, caused by either failure of development or progressive degeneration of the corticospinal tract. The conditions are characterised by extreme genetic heterogeneity, with at least 20 genes involved. Until recently, no functional overlap was apparent in the associated molecular pathological mechanisms. However, with recent progress in hereditary spastic paraplegia gene identification, common pathological themes are now emerging.
A novel locus for an autosomal recessive hereditary spastic paraplegia (SPG35) maps to 16q21-q23
AbstractBACKGROUND: The hereditary spastic paraplegias (HSPs) are a group of clinically and genetically heterogeneous neurodegenerative disorders in which the cardinal pathologic feature is upper motor neuron degeneration leading to progressive spasticity and weakness of the lower limbs. To date, 14 autosomal recessive HSP loci have been mapped. METHODS: We have identified a large consanguineous Omani family in which an autosomal recessive form of HSP is segregating. The age at onset varied from 6 to 11 years and the course of the disease is progressive with intellectual disability and is associated with seizures in two individuals. To map the chromosomal location of the causative gene we undertook 250K gene chip SNP analyses of all affected individuals assuming that a founder mutation was responsible. RESULTS: All affected individuals shared a 20.4 Mb (3.25 cM) region of homozygosity located on chromosome 16q21-q23.1, defined by SNP markers rs149428 and rs9929635 (peak multipoint lod score of 4.86). Two candidate genes, dynein, cytoplasmic 1, light intermediate chain 2 (DYNC1LI2) and vacuolar protein sorting 4 homolog A (VPS4A), were sequenced but no disease causing mutations were identified. CONCLUSION: We have mapped the chromosomal location of a novel gene responsible for a form of hereditary spastic paraplegia (HSP) (SPG35) and defined its clinical presentation.
A novel locus for hereditary spastic paraplegia with thin corpus callosum and epilepsy
AbstractBACKGROUND: Hereditary spastic paraplegia (HSP) are classified clinically as pure when progressive spasticity occurs in isolation or complicated when other neurologic abnormalities are present. At least 22 genetic loci have been linked to HSP, 8 of which are autosomal recessive (ARHSP). HSP complicated with the presence of thin corpus callosum (HSP-TCC) is a common subtype of HSP. One genetic locus has been identified on chromosome 15q13-q15 (SPG11) for HSP-TCC, but some HSP-TCC families have not been linked to this locus. METHODS: The authors characterized two families clinically and radiologically and performed a genome-wide scan and linkage analysis. RESULTS: The two families had complicated ARHSP. The affected individuals in Family A had thin corpus callosum and mental retardation, whereas in Family B two of three affected individuals had epilepsy. In both families linkage analysis identified a locus on chromosome 8 between markers D8S1820 and D8S532 with the highest combined lod score of 7.077 at marker D8S505. This 9 cM interval located on 8p12-p11.21 represents a new locus for ARHSP-TCC. Neuregulin and KIF13B genes, located within this interval, are interesting functional candidate genes for this HSP form. CONCLUSION: Two consanguineous families with complicated autosomal recessive hereditary spastic paraplegia were clinically characterized and genetically mapped to a new locus on 8p12-p11.21.
Journal of Rehabilitation Medicine · 2017 · 22 citations · open access
Pathophysiology, diagnostic work-up and management of balance impairments and falls in patients with hereditary spastic paraplegia
AbstractINTRODUCTION: Balance impairments are common in patients with hereditary spastic paraplegia and are among the most debilitating symptoms, as they frequently result in falls and fall-related injuries. Several features of hereditary spastic paraplegia contribute to balance impairments and multiple treatment options exist. However, an overview of these underlying mechanisms and their treatment is currently lacking. METHODS: This paper reviews the pathophysiology, diagnostic workup, and management of balance impairments in hereditary spastic paraplegia. Recommendations are based on scientific evidence, when available, and otherwise reflect practice-based evidence supported by clinical experience. CONCLUSION: Through diligent history-taking and clinical examination, followed by multidisciplinary treatment tailored to the identified underlying mechanisms, balance capacities can be improved in patients with hereditary spastic paraplegia and at least a proportion of falls can be prevented.
Journal of Pediatric Orthopaedics · 1988 · 11 citations
Hereditary Spastic Paraplegia
AbstractHereditary spastic paraplegia is a genetically transmitted disease that is usually autosomal dominant. Characterized by a slow progression of spastic paraparesis, it is frequently misdiagnosed as cerebral palsy. Our experience consists of six families with a total of 26 affected members. All initial referrals were children with a slowly progressive paraplegia. Each child was noted to have slightly delayed motor milestones, normal intellect, and no history of perinatal cerebral event. Each child was treated when necessary with appropriate tendon lengthenings. Recognition is the key to management. A careful patient and family history will reveal the hereditary nature of the disease and help develop treatment plans.
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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