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The human channel gating–modifying A749G CACNA1D (Cav1.3) variant induces a neurodevelopmental syndrome–like phenotype in mice
Nadine J. Ortner, Anupam Sah, Enrica Paradiso, Josef Shin, Strahinja Stojanovic, Niklas Hammer, Maria Haritonova, Nadja T. Hofer, Andrea Marcantoni, Laura Guarina, Petronel Tuluc, Tamara Theiner, Florian Pitterl, Karl Ebner, Herbert Oberacher, Emilio Carbone, Nadia Stefanova, Francesco Ferraguti, Nicolas Singewald, Jochen Roeper, Jörg Striessnig
Nadine J. Ortner, Anupam Sah, Enrica Paradiso, Josef Shin, Strahinja Stojanovic, Niklas Hammer, Maria Haritonova, Nadja T. Hofer, Andrea Marcantoni, Laura Guarina, Petronel Tuluc, Tamara Theiner, Florian Pitterl, Karl Ebner, Herbert Oberacher, Emilio Carbone, Nadia Stefanova, Francesco Ferraguti, Nicolas Singewald, Jochen Roeper, Jörg Striessnig
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Research Article Neuroscience

The human channel gating–modifying A749G CACNA1D (Cav1.3) variant induces a neurodevelopmental syndrome–like phenotype in mice

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Abstract

Germline de novo missense variants of the CACNA1D gene, encoding the pore-forming α1 subunit of Cav1.3 L-type Ca2+ channels (LTCCs), have been found in patients with neurodevelopmental and endocrine dysfunction, but their disease-causing potential is unproven. These variants alter channel gating, enabling enhanced Cav1.3 activity, suggesting Cav1.3 inhibition as a potential therapeutic option. Here we provide proof of the disease-causing nature of such gating-modifying CACNA1D variants using mice (Cav1.3AG) containing the A749G variant reported de novo in a patient with autism spectrum disorder (ASD) and intellectual impairment. In heterozygous mutants, native LTCC currents in adrenal chromaffin cells exhibited gating changes as predicted from heterologous expression. The A749G mutation induced aberrant excitability of dorsomedial striatum–projecting substantia nigra dopamine neurons and medium spiny neurons in the dorsal striatum. The phenotype observed in heterozygous mutants reproduced many of the abnormalities described within the human disease spectrum, including developmental delay, social deficit, and pronounced hyperactivity without major changes in gross neuroanatomy. Despite an approximately 7-fold higher sensitivity of A749G-containing channels to the LTCC inhibitor isradipine, oral pretreatment over 2 days did not rescue the hyperlocomotion. Cav1.3AG mice confirm the pathogenicity of the A749G variant and point toward a pathogenetic role of altered signaling in the dopamine midbrain system.

Authors

Nadine J. Ortner, Anupam Sah, Enrica Paradiso, Josef Shin, Strahinja Stojanovic, Niklas Hammer, Maria Haritonova, Nadja T. Hofer, Andrea Marcantoni, Laura Guarina, Petronel Tuluc, Tamara Theiner, Florian Pitterl, Karl Ebner, Herbert Oberacher, Emilio Carbone, Nadia Stefanova, Francesco Ferraguti, Nicolas Singewald, Jochen Roeper, Jörg Striessnig

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Figure 4

Gating changes and altered firing in acutely isolated MCCs from adult male HET Cav1.3AG mice.

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Gating changes and altered firing in acutely isolated MCCs from adult ma...
(A) Voltage dependence of steady-state activation (normalized conductance-voltage curves; circles) and inactivation (squares) of WT (n = 7) and HET (n = 7) LTCC currents. Bottom, window Ca2+ current (Iw) was increased for HET MCCs between −50 and −30 mV (shaded area). (B) Representative sets of pharmacologically isolated LTCC Ca2+ currents from a WT and HET MCC. (C) Similar current densities among genotypes (inward current at +10mV normalized to the cell size; WT, n = 30; HET, n = 34). (D) Averaged normalized LTCC currents during 600 ms depolarizations to +10 mV. Inactivation kinetics followed a double exponential time course: WT Aslow 38%, τslow 390 ms, Afast 19%, τfast 18 ms, plateau (C) = 44%; HET Aslow 65%, τslow 904 ms, Afast 31%, τfast 36 ms, C = 4%. (E) Compared with WT (n = 14), the resting membrane potential of HET MCCs (n = 12) was significantly decreased (P < 0.01, unpaired Student’s t test). (F) Percentage of spontaneously firing versus silent cells over a total of n = 19 WT or HET MCCs. Significance testing on categorical data was performed by RxC contingency tables and a χ2 test (P < 0.01). (G) Mean frequency of spontaneously firing HET MCCs (n = 11) was significantly decreased compared with WT (n = 10; P < 0.01, unpaired Student’s t test). (H) Current-clamp traces of representative WT and HET MCCs without current injection. Dashed lines indicate baseline; dotted line indicates 0 mV. Blue arrows indicate spontaneous subthreshold oscillations often observed in HET MCCs. (I) Representative AP traces at increasing current injections (4, 10, 16 pA) from a HP of −70 mV. (J and K) Plot of fo (first interspike interval frequency) and fss (last interspike interval frequency) against the injected current. fo is unaltered (J), while fss (K) exhibits a marked decrease with current injections above 10 pA in HET MCCs. Paired Student’s t test was used. **P < 0.01, *P < 0.05.

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