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In vivo characterization of a patient CACNA1A variant reveals paradoxical synaptic effects
Abstract:
Channelopathies are a class of neurodevelopmental disorders with often devastating consequences, and effective therapies depend on understanding how patient variants alter channel function. These effects are typically assessed by biophysical characterization in heterologous expression systems. Mutations in CACNA1A, which encodes the P/Q-type calcium channel CaV2.1, underlie a spectrum of neurological disorders in which symptoms are generally classified as loss-of-function (LoF) or gain-of-function (GoF). However, some patients present with overlapping phenotypes that defy this binary framework. Here we describe a CACNA1A variant for which heterologous assays fail to capture a key in vivo functional effect. We characterize a de novo variant of a highly conserved residue, D1634N, identified in a patient with a mixed clinical presentation that includes both LoF- and GoF-associated symptoms. Biophysical characterization in HEK293T cells supports a classic and severe LoF effect, including reduced current density and a right-shifted current-voltage relationship. In contrast, in vivo analysis of the corresponding endogenous variant in the C. elegans homolog reveals a paradoxical increase in spontaneous synaptic vesicle release, despite reduced channel expression. Molecular dynamics simulations predict that the mutation prolongs dwell time in a partially open state, potentially increasing calcium influx at rest. This model is supported by biophysical recordings of the human channel showing increased current at hyperpolarized potentials and by rescue of the C. elegans phenotype through genetic elevation of resting membrane potential. Together, these findings reconcile the patient clinical presentation by describing a complex, mixed-function variant, highlight the importance of cellular context in variant interpretation and therapeutic development, and establish C. elegans as a powerful in vivo platform for evaluating the functional consequences of pathogenic ion channel variants.
Insights
A CACNA1A gene variant, D1634N, causes complex neurological symptoms. In vivo studies in C. elegans revealed paradoxical increased synaptic release, challenging traditional loss-of-function classifications for ion channel variants.
Area of Science:
- Neurogenetics
- Molecular Neuroscience
- Ion Channel Physiology
Background:
- Pathological variants in neuronally expressed genes lead to severe neurological disorders.
- Understanding how mutations alter protein function is crucial for developing therapeutic strategies.
- Ion channel variants are typically studied in heterologous systems, which may not fully capture in vivo function.
Purpose of the Study:
- To characterize a de novo CACNA1A variant (D1634N) identified in a patient with a complex neurological presentation.
- To investigate the in vivo functional impact of the D1634N variant, which presents with both loss-of-function and gain-of-function symptoms.
- To highlight the importance of cellular context and in vivo models for interpreting variant function.
Main Methods:
- Biophysical characterization of the D1634N variant in HEK293T cells.
- In vivo functional analysis of the D1634N variant in Caenorhabditis elegans (C. elegans).
- Molecular dynamics modeling to predict the mutation's effect on channel gating and biophysical recordings at hyperpolarized potentials.
Main Results:
- Heterologous expression assays suggested a severe loss-of-function effect for the D1634N variant.
- In vivo studies in C. elegans demonstrated a paradoxical increase in spontaneous synaptic vesicle release.
- Molecular dynamics and biophysical recordings indicated increased channel dwell time in a partially-open state, leading to increased leak current.
Conclusions:
- The CACNA1A D1634N variant exhibits complex, mixed gain-of-function and loss-of-function properties, explaining the patient's overlapping clinical symptoms.
- Cellular context significantly influences the functional interpretation of ion channel variants.
- C. elegans serves as a valuable in vivo model for assessing the functional consequences of pathological ion channel variants.
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