ABSTRACT Background Biallelic pathogenic variants in MCM3AP, encoding the germinal center–associated nuclear protein (GANP), have been linked to autosomal recessive peripheral neuropathies variably accompanied by cognitive impairment and multisystem involvement. To date, anterior horn cell involvement has not been documented in association with MCM3AP‐related disorders. Objective To describe a patient with biallelic MCM3AP variants presenting with a motor neuronopathy phenotype and to provide the first whole‐body muscle MRI characterization associated with this gene. Methods and Results A 53‐year‐old woman born to non‐consanguineous parents presented with early‐onset motor neuronopathy and lifelong learning difficulties. Neurological examination revealed generalized areflexia and widespread fasciculations without sensory abnormalities. Electroneuromyography demonstrated diffuse mixed acute‐on‐chronic denervation process. Whole‐body muscle MRI showed a selective non–length‐dependent pattern of fatty infiltration. Whole‐exome sequencing identified two likely pathogenic heterozygous variants in the MCM3AP gene. Standard Protocol Approvals, Registrations, and Patient Consents According to the policies of our institution, single‐patient case reports do not require review or approval by the institutional ethics committee. Written informed consent for participation and for publication of clinical information, photographs, electrophysiological data, and muscle MRI images was obtained from the patient. No clinical trial registration was applicable. Conclusion This case extends the phenotypic spectrum of MCM3AP‐related disorders to include a slowly progressive, non‐syndromic motor neuronopathy with electrophysiological evidence of active denervation and distinctive MRI findings. These observations highlight the hidden boundaries between hereditary motor neuropathies and anterior horn cell diseases, emphasizing the need for integrated clinical, neurophysiological, and genetic evaluation.
Lemos et al. (Sun,) studied this question.