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Swanger, S. A.

Publications and source records attributed to Swanger, S. A..

9 recordsLinked to original sources

Dissecting Gap Junctional and Ephaptic Contributions to Electrical Conduction in a Novel Cardiomyocyte Pair Model

Electrical communication between excitable cells depends on both direct gap junction (GJ) currents and field-mediated ephaptic interactions, but their relative contributions have remained difficult to quantify experimentally, limiting mechanistic insight into arrhythmia and other disorders of bioelectric signaling in excitable tissues. Building on the concept of a nanoscale, sodium channel-rich perinexus at the cardiac intercalated disc, we developed a Single-on-Paired (SoP) preparation in which whole-cell sodium current is recorded from one adult ventricular myocyte that remains end-to-end coupled to an intact partner. This configuration revealed a composite two-cell sodium current characterized by a unique pre-peak waveform which exhibits two slopes in the rising phase, and a pronounced activation jump in sodium current amplitude between closely spaced voltage steps. This feature was absent in isolated single myocytes and interpretable as an Intercalated Disc Signature of intercellular activation. By combining graded GJ inhibition, perinexal widening via a Scn1b-derived competitive adhesion peptide, and controlled modulation of extracellular sodium, we show that low sodium conditions favor GJ-dominated activation, whereas at higher, more physiological sodium levels, perinexus-centered ephaptic mechanisms provide substantial support for intercellular activation. A complementary two-cell computational model, simulating our SoP model and incorporating lateral and junctional sodium channels, reproduces the two-cell Intercalated Disc Signature and predicts a shift from GJ-dominated activation at low sodium to ephaptic-dominated support at higher, more physiological sodium concentrations when GJ conductance is reduced. Together, these results provide direct experimental evidence for a specific structural and molecular substrate of ephaptic coupling in the heart and establish a framework for dissecting how nanoscale extracellular cleft geometry, channel organization, sodium level, and GJ conductance jointly tune electric-field-based mechanisms of activation in excitable tissues, with implications for paradoxical clinical responses to anti-arrhythmic interventions.

biophysics↗

Input-and cell-type-specific developmental alterations to thalamic synapses in a Dravet syndrome mouse model

Dravet syndrome is an epileptic encephalopathy most often caused by loss-of-function mutations in the SCN1A gene, leading to haploinsufficiency of the voltage-gated sodium channel NaV1.1. Seizures begin during infancy and generally wane throughout childhood, but behavioral symptoms, such as intellectual disability, motor impairments, and autistic features, remain through adulthood. Seizures primarily stem from inhibitory neuron hypo-excitability in the cortex, hippocampus, and thalamus, but circuit abnormalities underlying persistent behavioral symptoms are poorly understood. Prior work showed synapse dysfunction in thalamocortical neurons in four-week-old DS mice. To understand when synaptic deficits develop and whether they could contribute to persistent thalamic dysfunction, we investigated synapse function in the ventral posterolateral (VPL) and ventral posteromedial (VPM) thalamus prior to seizure onset (P13-P17), after the period of highest seizure burden (P28-P32), and in adulthood (P58-P63). Recordings of VPL and VPM synaptic activity showed excitatory input to the VPL was significantly reduced after seizure onset and this reduction persisted through adulthood, while VPM excitatory input was unaffected. We further showed a selective reduction in the function and number of excitatory sensory synapses in the VPL, with no change to cortical synapses. VPL and VPM neurons both showed inhibitory synapse dysfunction at four weeks, which persisted into adult DS mice only in VPL neurons. These results revealed persistent input- and cell-type-specific alterations to thalamic synapses that develop after seizure onset and are maintained into adulthood, suggesting that synaptic deficits could contribute to ongoing circuit dysfunction in DS.

neuroscience↗

Hippocampal cell- and circuit-specific differences in mitochondrial form and function

Mitochondrial morphology varies by neuronal cell type and subcellular compartment; however, the functional significance of these differences is unclear. Hippocampal CA2 neurons are enriched for genes encoding mitochondrial proteins compared to CA1 neurons, suggesting a difference in metabolic demand across hippocampal circuits. However, whether CA2 neuron mitochondria are structurally or functionally distinct to support circuit-specific energy demands is unknown. Here we compared mitochondrial morphology, protein expression, and calcium levels across CA1 and CA2 circuits. We found mitochondria in CA2 dendrites were larger than mitochondria in CA1 dendrites. However, both subregions harbored larger mitochondria in the entorhinal cortex (EC)-contacting distal dendrites compared to CA3-contacting proximal dendrites. Together, these data demonstrate both cell type- and input-specific regulation of mitochondrial morphology that likely influences the function of these distinct circuits. To determine whether differences in mitochondrial fission or fusion account for cell and/or layer specific differences in morphology, we immunostained for OPA1 and MFF, which showed a general enrichment in distal dendrites relative to proximal dendrites, and an unexpected increase in CA1 distal dendrites compared to CA2 distal dendrites. To show whether these morphological differences result in functionally distinct mitochondria, we measured mitochondrial calcium levels in live slices. We found a striking enrichment of mitochondrial calcium levels in CA2 distal dendrites relative to proximal dendrites, and this layer-specific effect was significantly different from that in CA1 dendrites at baseline and after activity. Collectively, these findings reveal discrete morphological and functional differences in mitochondria across hippocampal subregions and dendritic layers, which likely confer unique circuit properties and/or vulnerabilities to disease.

neuroscience↗

Hypernatremia Enhances Transient Outward Potassium and Late Sodium Currents in a Mouse Model of Long QT Syndrome Type 3

Cardiac voltage-gated sodium channel gain-of-function (NavGOF) is characterized by action potential duration (APD) prolongation. Hypernatremia and perinexal widening synergistically prolong cardiac APD in guinea pig. However, guinea pig lack the transient outward potassium current (Ito), which could be increased by hypernatremia and thereby shorten APD. ObjectiveDetermine whether hypernatremia and perinexal expansion synergistically prolong APD in an animal model functionally expressing Ito. MethodsWhole-cell Ito was measured in isolated genetically-modified NavGOF ({Delta}KPQ) mouse ventricular myocytes. Ventricular APD at 30 (APD30) and 90 (APD90) percent repolarization were measured from optically mapped, Langendorff-perfused wild-type (WT) and {Delta}KPQ mouse hearts at different perfusate sodium concentrations (145 or 160mM), without and with the perinexal adhesion antagonist {beta}adp1. ResultsIn isolated myocytes, hypernatremia (160mM sodium) increased Ito. In whole-heart, hypernatremia significantly decreased both APD30 and APD90 in WT but only APD30 in {Delta}KPQ preparations. Perinexal disruption with {beta}adp1 did not change APD30 or APD90 in WT hearts, however it decreased APD30 and increased APD90 in {Delta}KPQ hearts. Combination of hypernatremia and {beta}adp1 did not synergistically change APD in {Delta}KPQ hearts. Computational models predict that Ito activation can prevent synergistic APD prolongation in mouse during hypernatremia and perinexal expansion that was observed previously in a guinea pig NavGOF model lacking Ito. ConclusionsHypernatremia during NavGOF prevents early ventricular repolarization due to Ito activation (mouse) and prolongs repolarization in the absence of Ito (guinea pig). Future studies in animal models electrophysiologically similar to humans are needed to determine if hypernatremia and perinexal expansion are proarrhythmic during NavGOF.

physiology↗

Input-specific localization of NMDA receptor GluN2 subunits in thalamocortical neurons

Molecular and functional diversity among synapses is generated, in part, by differential expression of neurotransmitter receptors and their associated protein complexes. N-methyl-D-aspartate receptors (NMDARs) are tetrameric ionotropic glutamate receptors that most often comprise two GluN1 and two GluN2 subunits. NMDARs generate functionally diverse synapses across neuron populations through cell-type-specific expression patterns of GluN2 subunits (GluN2A - 2D), which have vastly different functional properties and distinct downstream signaling. Diverse NMDAR function has also been observed at anatomically distinct inputs to a single neuron population. However, the mechanisms that generate input-specific NMDAR function remain unknown as few studies have investigated subcellular GluN2 subunit localization in native brain tissue. We investigated NMDAR synaptic localization in thalamocortical (TC) neurons expressing all four GluN2 subunits. Utilizing super resolution imaging and knockout-validated antibodies, we revealed subtype- and input-specific GluN2 localization at corticothalamic (CT) versus sensory inputs to TC neurons in 4-week-old male and female C57Bl/6J mice. GluN2B was the most abundant postsynaptic subunit across all glutamatergic synapses followed by GluN2A and GluN2C, and GluN2D was localized to the fewest synapses. GluN2B was preferentially localized to CT synapses over sensory synapses, while GluN2A and GluN2C were more abundant at sensory inputs compared to CT inputs. Furthermore, postsynaptic scaffolding proteins PSD95 and SAP102 were preferentially localized with specific GluN2 subunits, and SAP102 was more abundant at sensory synapses than PSD95. This work indicates that TC neurons exhibit subtype- and input-specific localization of diverse NMDARs and associated scaffolding proteins that likely contribute to functional differences between CT and sensory synapses. HIGHLIGHTSO_LINMDAR subtypes and synaptic scaffolding proteins show preferential localization at specific inputs to thalamocortical neurons. C_LIO_LIGluN2B was preferentially localized to corticothalamic synapses, while GluN2A and GluN2C were more abundant at sensory inputs to thalamocortical neurons. C_LIO_LIColocalization between synaptic scaffolding proteins with NMDARs was GluN2 subtype-dependent. C_LIO_LINMDAR subsynaptic organization in thalamocortical neurons is input- and GluN2-subtype specific. C_LI

neuroscience↗

Dendritically localized RNAs are packaged as diversely composed Ribonucleoprotein particles with heterogeneous copy number states

RNA localization to neuronal axons and dendrites provides spatiotemporal control over gene expression to support synapse function. Neuronal messenger RNAs (mRNAs) localize as ribonucleoprotein particles (RNPs), commonly known as RNA granules, the composition of which influences when and where proteins are made. Highthroughput sequencing has revealed thousands of mRNAs that localize to the hippocampal neuropil. Whether these mRNAs are spatially organized into common RNA granules or distributed as independent mRNAs for proper delivery to synapses is debated. Here, using highly multiplexed single molecule fluorescence in situ hybridization (HiPlex smFISH) and colocalization analyses, we investigate the subcellular spatial distribution of 15 synaptic neuropil localized mRNAs in the male and female rodent hippocampus. We observed that these mRNAs are present in the neuropil as heterogeneously sized fluorescent puncta with spatial colocalization patterns that generally scale by neuropil mRNA abundance. Indeed, differentially expressed mRNAs across cell types displayed colocalization patterns that scaled by abundance, as did simulations that reproduce cell-specific differences in abundance. Thus, the probability of these mRNAs colocalizing in the neuropil is best explained by stochastic interactions based on abundance, which places constraints on the mechanisms mediating efficient transport to synapses. SIGNIFICANCE STATEMENTRNA localization establishes compartment-specific gene expression that is critical for synapse function. Thousands of mRNAs localize to the hippocampal synaptic neuropil, however, whether mRNAs are spatially organized as similar or distinctly composed ribonucleoprotein particles for delivery to synapses is unknown. Using multiplexed smFISH to assess the spatial organization of 15 neuropil localized mRNAs, we find that these mRNAs are present in variably sized puncta suggestive of heterogeneous transcript copy number states. RNA colocalization analyses in multiple hippocampal cell types suggest that the spatial relationship of these mRNAs is best predicted by their abundance in the neuropil. Stochastic RNA-RNA interactions based on neuropil abundance are consistent with models indicating that global principles, such as energy minimization, influence population localization strategies.

neuroscience↗

Ventral posterolateral and ventral posteromedial thalamus neurons have distinct synaptic and cellular physiology

Somatosensory information is propagated from the periphery to the cerebral cortex by two parallel pathways through the ventral posterolateral (VPL) and ventral posteromedial (VPM) thalamus. VPL and VPM neurons receive somatosensory signals from the body and head, respectively. VPL and VPM neurons also receive cell-type-specific GABAergic input from the reticular nucleus of the thalamus (nRT). Although VPL and VPM neurons have distinct connectivity and physiological roles, differences in the functional properties of VPL and VPM neurons remain unclear as they are often studied as one ventrobasal (VB) thalamus neuron population. Here, we directly compared synaptic and intrinsic properties of VPL and VPM neurons in C57Bl/6J mice of both sexes aged P25-P32. Recordings of spontaneous synaptic transmission suggested that VPL neurons receive excitatory synaptic input with higher frequency and strength than VPM neurons, while VPL neurons exhibited weaker inhibitory synapse strength than VPM neurons. Furthermore, VPL neurons showed enhanced depolarization-induced spike firing and greater spike frequency adaptation than VPM neurons. VPL and VPM neurons fired similar numbers of spikes during hyperpolarization rebound bursts, but VPM neurons exhibited shorter burst latency compared to VPL neurons, which correlated with increased sag potential during hyperpolarization. This work indicates that VPL and VPM thalamocortical neurons are functionally distinct populations. The observed functional differences could have important implications for their specific physiological and pathophysiological roles within the somatosensory thalamocortical network.

neuroscience↗

Acute adenoviral cardiac infection elicits an arrhythmogenic substrate prior to inflammatory myocardial remodeling and myocarditis

BackgroundViral cardiac infection represents a significant clinical challenge encompassing several etiological agents, disease stages, complex presentation, and a resulting lack of mechanistic understanding. Myocarditis is a major cause of sudden cardiac death in young adults, where current knowledge in the field is dominated by later disease phases, and pathological immune responses. However, little is known regarding how infection can acutely induce an arrhythmogenic substrate prior to significant immune responses. Adenovirus is a leading cause of myocarditis, but due to species-specificity, models of infection are lacking and it is not understood how adenoviral infection may underlie sudden cardiac arrest. Mouse Adenovirus Type-3 (MAdV-3) was previously reported as cardiotropic, yet has not been utilized to understand mechanisms of cardiac infection and pathology. MethodsWe have developed MAdV-3 infection as a model to investigate acute cardiac infection and molecular alterations to the infected heart prior to an appreciable immune response or gross cardiomyopathy. ResultsOptical mapping of infected hearts exposes decreases in conduction velocity concomitant with increased Cx43Ser368 phosphorylation, a residue known to regulate gap junction function. Hearts from animals harboring a phospho-null mutation at Cx43Ser368 are protected against MAdV-3 induced conduction velocity slowing. Additional to gap junction alterations, patch clamping of MAdV-3-infected adult mouse ventricular cardiomyocytes reveals prolonged action potential duration as a result of decreased IK1 and IKs current density. Turning to human systems, we find human adenovirus type-5 (HAdV-5) increases phosphorylation of Cx43Ser368 and disrupts synchrony in human induced pluripotent stem cell-derived cardiomyocytes (iPSC-CMs), indicating common mechanisms with our mouse whole heart and adult cardiomyocyte data. ConclusionsTogether, these findings demonstrate that adenoviral infection creates an arrhythmogenic substrate through direct targeting of gap junction and ion channel function in the heart. Such alterations are known to precipitate arrhythmias and likely contribute to sudden cardiac death in acutely infected patients.

pathology↗

Synaptic and intrinsic mechanisms impair reticular thalamus and thalamocortical neuron function in a Dravet syndrome mouse model

Thalamocortical network dysfunction contributes to seizures and sleep deficits in Dravet syndrome (DS), an infantile epileptic encephalopathy, but the underlying molecular and cellular mechanisms remain elusive. DS is primarily caused by mutations in the SCN1A gene encoding the voltage-gated sodium channel NaV1.1, which is highly expressed in GABAergic reticular thalamus (nRT) neurons as well as glutamatergic thalamocortical neurons. We hypothesized that NaV1.1 haploinsufficiency alters somatosensory corticothalamic circuit function through both intrinsic and synaptic mechanisms in nRT and thalamocortical neurons. Using Scn1a heterozygous mice of both sexes aged P25-P30, we discovered reduced intrinsic excitability in nRT neurons and thalamocortical neurons in the ventral posterolateral (VPL) thalamus, while thalamocortical ventral posteromedial (VPM) neurons exhibited enhanced excitability. NaV1.1 haploinsufficiency enhanced GABAergic synaptic input and reduced ascending glutamatergic sensory input to VPL neurons, but not VPM neurons. In addition, glutamatergic cortical input to nRT neurons was reduced in Scn1a heterozygous mice, whereas cortical input to VPL and VPM neurons remained unchanged. These findings introduce input-specific alterations in glutamatergic synapse function and aberrant glutamatergic neuron excitability in the thalamus as disease mechanisms in Dravet syndrome, which has been widely considered a disease of GABAergic neurons. This work reveals additional complexity that expands current models of thalamic dysfunction in Dravet syndrome and identifies new components of corticothalamic circuitry as potential therapeutic targets. HIGHLIGHTSO_LIGABAergic reticular thalamus neurons have impaired tonic and burst firing properties in a NaV1.1 haploinsufficiency mouse model of Dravet syndrome. C_LIO_LINaV1.1 haploinsufficiency has opposing effects on spike firing in two distinct glutamatergic thalamocortical neuron populations. C_LIO_LINaV1.1 haploinsufficiency alters glutamatergic synaptic connectivity in an input-specific manner in the thalamus. C_LIO_LIDysregulation of both intrinsic and synaptic mechanisms contribute to imbalanced thalamic excitation and inhibition in this Dravet syndrome mouse model. C_LI

neuroscience↗