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Developmental progression of respiratory dysfunction in a mouse model of Dravet syndrome
Brenda M. Milla, Eliandra N. da Silva, Cleyton R. Sobrinho, Monica L. Strain, Daniel K. Mulkey
Brenda M. Milla, Eliandra N. da Silva, Cleyton R. Sobrinho, Monica L. Strain, Daniel K. Mulkey
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Research Article Cell biology Neuroscience

Developmental progression of respiratory dysfunction in a mouse model of Dravet syndrome

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Abstract

Dravet syndrome (DS) is an early-onset epilepsy caused by loss-of-function mutations in the SCN1A gene, which encodes Nav1.1 channels that preferentially regulate activity of inhibitory neurons early in development. DS is associated with a high incidence of sudden unexpected death in epilepsy (SUDEP) by a mechanism that may involve respiratory failure. Evidence also shows that loss of Scn1a impaired activity of neurons in the retrotrapezoid nucleus (RTN) that regulate breathing in response to CO2/H+, suggesting breathing problems precede seizures and serve as a biomarker of SUDEP. Consistent with this, we showed that Scn1a+/– mice exhibited a blunted ventilatory response to CO2/H+ prior to overt seizure activity that worsened with disease progression. Later in development, some Scn1a+/– mice also showed a blunted ventilatory response to hypoxia. Importantly, the severity of respiratory problems correlated with mortality. We also found that pharmacological activation of Nav1.1 rescued activity deficits of RTN neurons in Scn1a+/– mice. We conclude that disordered breathing may be an early biomarker of SUDEP in DS, and at the cellular level, loss of Scn1a disrupts RTN neurons by mechanisms involving disinhibition and pharmacological activation of Nav1.1 to reestablish inhibitory control of RTN neurons rescues activity deficits.

Authors

Brenda M. Milla, Eliandra N. da Silva, Cleyton R. Sobrinho, Monica L. Strain, Daniel K. Mulkey

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Figure 4

RTN neurons in slices from Scn1a+/– mice are hyperexcitable under control conditions and during hypocapnia.

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RTN neurons in slices from Scn1a+/– mice are hyperexcitable under contro...
(A) Computer-assisted plot shows the location of RTN neurons from each genotype in the ventral parafacial region. Py, pyramidal tract; 7 N, facial motor nucleus. Numbers to the right of each section designate millimeters from bregma. (B) Double immunolabeling shows a Lucifer yellow–filled (LY-filled) CO2/H+-sensitive RTN neuron recorded in a slice from a Scn1a+/– mouse is Phox2b immunoreactive. DAPI was used to visualize the cell nucleus. Scale bar: 20 μm. We confirmed Phox2b immunoreactivity in RTN neurons from control (n = 10) and Scn1a+/– (n = 11) tissue. (C) Traces of firing rate and segments of holding current from RTN neurons in slices from control (black) and Scn1a+/– (red) mice show examples of spontaneous activity under control conditions (5% CO2, pH 7.3) and that neurons from both genotypes respond to 10% CO2 with a washable and repeatable increase in activity (pH 7.0). (D and E) Summary data show that RTN neurons in Scn1a+/– tissue exhibit high baseline activity (D) but respond to 10% CO2 by an amount similar to control neurons (E). (F) Traces of firing rate from RTN neurons in slices from control (black) and Scn1a+/– (red) mice show that exposure to 3% CO2 strongly inhibits control neurons but causes only a modest inhibition of neurons in Scn1a+/– tissue. (G) Summary data (n = 13/ genotype) show that RTN neurons in slices from Scn1a+/– mice are more excitable at 3% and 5% CO2. Means were compared using 2-way ANOVA followed by Šídák’s multiple-comparison test and slopes of neural activity between 3% and 10% CO2 were compared using 1-way ANCOVA. ***P < 0.001 for differences between genotypes; ####P < 0.0001 for genotype differences from control.

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