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Clinicopathologic Dissociation: Robust Lafora Body Accumulation in Malin KO Mice Without Observable Changes in
Vaishnav Krishnan1, Jun Wu2, Arindam Ghosh Mazumder1
1Department of Neurology, Peter Kellaway Section of Neurophysiology and Epilepsy, Baylor College of Medicine, Houston, Texas, USA.
Abstract:
Lafora disease (LD) is a syndrome of progressive myoclonic epilepsy and cumulative neurocognitive deterioration caused by recessively inherited genetic lesions of EPM2A (laforin) or NHLRC1 (malin). Neuropsychiatric symptomatology in LD is thought to be directly downstream of neuronal and astrocytic polyglucosan aggregates, termed Lafora bodies (LBs), which faithfully accumulate in an age-dependent manner in all mouse models of LD. In this study, we applied home-cage monitoring to examine the extent of neurobehavioral deterioration in a model of malin-deficient LD as a means to identify robust preclinical endpoints that may guide the selection of novel genetic treatments. At 6 weeks, ∼6-7 months, and ∼12 months of age, malin-deficient mice ("KO") and wild-type (WT) littermates underwent a standardized home-cage behavioral assessment designed to non-obtrusively appraise features of rest/arousal, consumptive behaviors, risk aversion, and voluntary wheel-running. At all timepoints, and over a range of metrics that we report transparently, WT and KO mice were essentially indistinguishable. In contrast, within WT mice compared across the same timepoints, we identified age-related nocturnal hypoactivity, diminished sucrose preference, and reduced wheel-running. Neuropathological examinations in subsets of the same mice revealed expected age-dependent LB accumulation, gliosis, and microglial activation in cortical and subcortical brain regions. At 12 months of age, despite the burden of neocortical LBs, we did not identify spontaneous seizures during an electroencephalographic (EEG) survey, and KO and WT mice exhibited similar spectral EEG features. However, in an in vitro assay of neocortical function, paroxysmal bursts of network activity (UP states) in KO slices were more prolonged at 3 and 6 months of age, but similar to WT at 12 months. KO mice displayed a distinct response to pentylenetetrazole, with a greater incidence of clonic seizures and a more pronounced postictal suppression of movement, feeding, and drinking behavior. Together, these results highlight the clinicopathologic dissociation in a mouse model of LD, where the accrual of LBs may latently modify cortical circuit function and seizure threshold without clinically meaningful changes in home-cage behavior. Our findings allude to a delay between LB accumulation and neurobehavioral decline in LD: one that may provide a window for treatment, and whose precise duration may be difficult to ascertain within the typical lifespan of a laboratory mouse.
Insights
Lafora disease mouse models show Lafora body accumulation without immediate behavioral changes, suggesting a treatment window before significant neurodegeneration occurs.
Area of Science:
- Neuroscience
- Genetics
- Epilepsy Research
Background:
- Lafora disease (LD) is a fatal neurodegenerative disorder characterized by myoclonic epilepsy and cognitive decline.
- It results from genetic mutations affecting EPM2A (laforin) or NHLRC1 (malin), leading to Lafora body (LB) accumulation in neurons and astrocytes.
- Current understanding suggests LB buildup directly causes neurological symptoms.
Purpose of the Study:
- To investigate neurobehavioral changes in malin-deficient LD mice using home-cage monitoring.
- To identify reliable preclinical endpoints for evaluating novel genetic therapies for Lafora disease.
- To explore the relationship between LB accumulation and neurobehavioral deterioration.
Main Methods:
- Home-cage monitoring of malin-deficient (KO) and wild-type (WT) mice at multiple ages (6 weeks, 6-7 months, 12 months).
- Assessment of rest/arousal, consumptive behaviors, risk aversion, and wheel-running activity.
- Neuropathological examination, electroencephalography (EEG), in vitro neocortical slice electrophysiology, and pentylenetetrazole (PTZ) seizure response testing.
Main Results:
- No significant behavioral differences were observed between KO and WT mice in home-cage monitoring across all timepoints.
- Age-dependent LB accumulation, gliosis, and microglial activation were confirmed in KO mice.
- In vitro assays revealed prolonged network bursts in KO slices at younger ages and increased seizure susceptibility to PTZ, despite normal EEG in vivo.
- A dissociation between LB burden and overt behavioral deficits was evident.
Conclusions:
- Lafora body accumulation in malin-deficient mice precedes significant, detectable neurobehavioral deterioration.
- Home-cage monitoring may not be sensitive enough to detect early-stage LD in this model.
- A potential therapeutic window exists between LB accumulation and the onset of clinical symptoms, warranting further investigation into early intervention strategies.

