DeCure for Neuronopathy, distal hereditary motor, autosomal recessive
DeCure's autonomous Rare AI scientist is researching a drug-repurposing hypothesis for neuronopathy, distal hereditary motor, autosomal recessive — 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 moduleNeuronopathy, distal hereditary motor, autosomal recessive 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 neuronopathy, distal hereditary motor, autosomal recessive 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
collagen type VI alpha 3 chain (COL6A3) — COL6A3 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 9GTU · 3.14 Å · ligand none (apo structure). Experimental structure, not a prediction.
What the evidence adds up to
In a series of 228 patients with hereditary motor and sensory neuropathy, autosomal recessive inheritance was identified in four families with type I disease (motor conduction velocity below 38 m/s) and two families with type II disease (conduction velocity above 38 m/s). The recessive type I cases had significantly slower motor conduction velocity than dominant ones. Onset in type I peaked in the first decade; type II onset was most often in the second decade but could be delayed to the seventh. Males were more severely affected in both types.
A 2011 study of a large Jewish family from Morocco found a homozygous splice mutation in the HSJ1 (DNAJB2) gene causing a rare recessive distal hereditary motor neuropathy with early adulthood onset and predominance of paralysis in the lower limbs. The mutation decreased expression of both HSJ1a and HSJ1b isoforms. Overexpression of those isoforms reduced inclusion formation caused by mutant SOD1-A4V in a neuronal cell model. The authors noted that HSJ1 is a neuronal co-chaperone and that loss-of-function produced a pure lower motor neuron disease.
A separate 2011 report described two families with a late-onset autosomal dominant lower motor neuronopathy not previously characterised. First symptoms were muscle cramps and fasciculations after age 25–30, followed by slowly progressive proximal and distal weakness without overt atrophy during the first decades. Nerve conduction velocities were normal. Linkage studies excluded known hereditary motor neuropathy loci, suggesting a new disorder.
No treatment trial or intervention data are reported in any of these abstracts. What remains missing is a systematic search for additional recessive genes beyond HSJ1, functional studies in patient-derived motor neurons, and any clinical trial funding for supportive or disease-modifying approaches in these rare populations. Patient stratification by specific mutation and natural history data are absent.
Evidence
Retrieved by DeepSearch across 234,678,978 indexed works and resolved on OpenAlex — ranked by citations, including the results that did not work.
Brain · 1980 · 831 citations
THE CLINICAL FEATURES OF HEREDITARY MOTOR AND SENSORY NEUROPATHY TYPES I AND II
AbstractObservations have been made on a series of 228 patients with hereditary motor and sensory neuropathy, comprising 120 index cases and 108 affected relatives. These could be separated into genetically distinct type I and type II categories depending upon whether motor nerve conduction velocity in the median nerve was below or above 38 m s-1. These disorders constitute separate genetic subgroups within the clinical spectrum of 'peroneal muscular atrophy'. Type I cases were more numerous. Most were of autosomal dominant inheritance, but a proportion were sporadic. Four families with probable autosomal recessive inheritance were identified; these displayed significantly slower motor conduction velocity. There was a positive correlation between motor conduction velocity in the propositi and that in their relatives in the total type I group which persisted after the autosomal recessive cases had been extracted, indicating further genetic heterogeneity amongst the autosomal dominant families. No X-linked recessive families were encountered. Type I cases had a peak age of onset of symptoms during the first decade of life. In comparison with the type II cases, they displayed a greater tendency to show weakness of the hands, upper limb tremor and ataxia, generalized tendon areflexia and more extensive distal sensory loss, sometimes with acrodystrophic changes. Foot and spinal deformities were more frequent, probably due to the earlier age of onset. Nerve thickening was confined to the type I cases. The onset of symptoms was most often in the second decade in the type II cases, but in some it was delayed, even as late as the seventh decade. Most cases were again of autosomal dominant inheritance, but two probable autosomal recessive families were detected, as well as sporadic cases. Upper limb tremor also occurred in this form but was considerably less common. In both types, males tended to be more severely affected, and asymptomatic affected family members ('formes frustes') were more commonly female.
Journal of Neurology Neurosurgery & Psychiatry · 1980 · 115 citations · open access
Autosomal recessive forms of hereditary motor and sensory neuropathy.
AbstractSix families are described with hereditary motor and sensory neuropathy (HMSN) of probable autosomal recessive inheritance. Four of these were classified as HMSN type I and two as type II. The consanguinity rate in this series was high, suggesting that these recessive genes are rare. In comparison with the dominantly inherited forms of these disorders, the mean age of onset was significantly earlier for the type II cases but did not differ for the type I patients. Motor nerve conduction velocity was significantly less for the type I cases but did not differ for the type II form. The recessive type I cases tended to show a greater incidence of weakness, ataxia, tendon areflexia and scoliosis than in the dominant form. The importance of differentiating such cases from Friedreich's ataxia is emphasised.
A rare recessive distal hereditary motor neuropathy with HSJ1 chaperone mutation
AbstractOBJECTIVE: Distal hereditary motor neuropathies (dHMN) form a clinically and genetically heterogeneous group of disorders, characterized by muscle weakness and atrophy predominating at the distal part of the limbs, due to the progressive degeneration of motor neurons in the spinal cord. We report here a novel rare variant of dHMN with autosomal recessive inheritance in a large Jewish family originating from Morocco. The disease is characterized by a predominance of paralysis at the lower limbs and an early adulthood onset. We performed a genetic study in this family to identify and characterized the causing mutation. METHODS: Homozygosity mapping strategy and sequencing of the candidate genes were performed. Expression studies were made on patient fibroblasts. Functional experiments were performed on a cellular model of motor neuron disease. RESULTS: We mapped the disease to the 2q34-q36.1 chromosomal region and identified a homozygous splice mutation in the gene HSJ1 (DNAJB2) decreasing the expression of the 2 main isoforms HSJ1a and HSJ1b. Overexpression of both HSJ1a and HSJ1b reduced inclusion formation induced by the mutated SOD1-A4V in a neuronal cellular model. INTERPRETATION: HSJ1 is a neuronal enriched member of the HSP40/DNAJ co-chaperone family. Previous studies have shown that HSP40 proteins play a crucial role in protein aggregation and neurodegeneration in several neuronal types, in animal models and human diseases. Interestingly, this mutation causing a loss-of-function of HSJ1 is linked to a pure lower motor neuron disease, strongly suggesting that HSJ1 also plays an important and specific role in motor neurons.
AbstractOBJECTIVE: Characterization of a new type of late-onset autosomal dominant lower motor neuron disease. METHODS: Patients from 2 families underwent detailed neurologic, electrophysiologic, muscle biopsy, and laboratory investigations. MRI of lower limbs was performed in selected patients. DNA samples from leukocytes were used for molecular genetic linkage studies. RESULTS: First symptoms were muscle cramps and fasciculations after age 25-30, followed by a slowly progressive proximal and distal weakness without overt atrophy during the first decades of symptoms. Nerve conduction velocities were within normal range and EMG showed widespread neurogenic alterations. Muscle biopsy revealed characteristic neurogenic findings: fiber type grouping and group atrophy. MRI showed diffuse fatty-degenerative changes, marked in medial gastrocnemius. CONCLUSION: Exactly the same clinical phenotype has not previously been described, and linkage studies showed exclusion of known chromosomal loci for hereditary motor neuropathies, suggesting the disease we report may represent a new disorder.
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.
DeCure is a research and publication project, not medical advice and not a treatment. "DeCure for X" describes a research goal, not a claim that a cure exists. Backing a cure is a contribution to fund the research — it is not an investment, and confers no yield, royalty, equity or IP ownership. Papers are published open-access by the DeCure.ai DAO.