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1.
FASEB J ; 35(1): e21241, 2021 01.
Artigo em Inglês | MEDLINE | ID: mdl-33368632

RESUMO

The voltage-gated potassium channel Kv3.4 is a crucial regulator of nociceptive signaling in the dorsal root ganglion (DRG) and the dorsal horn of the spinal cord. Moreover, Kv3.4 dysfunction has been linked to neuropathic pain. Although kinases and phosphatases can directly modulate Kv3.4 gating, the signaling mechanisms regulating the expression and stability of the Kv3.4 protein are generally unknown. We explored a potential role of PKCε and found an unexpected interaction that has a positive effect on Kv3.4 expression. Co-immunoprecipitation studies revealed a physical association between PKCε and Kv3.4 in both heterologous cells and rat DRG neurons. Furthermore, in contrast to the wild-type and constitutively active forms of PKCε, expression of a catalytically inactive form of the enzyme inhibits Kv3.4 expression and membrane localization through a dominant negative effect. Co-expression of Kv3.4 with the wild-type, constitutively active, or catalytically inactive forms of PKCε had no significant effects on Kv3.4 gating. These results suggest that a novel physical interaction of the Kv3.4 channel with functional PKCε primarily determines its stability and localization in DRG neurons. This interaction is akin to those of previously identified accessory ion channel proteins, which could be significant in neural tissues where Kv3.4 regulates electrical signaling.


Assuntos
Gânglios Espinais/metabolismo , Regulação da Expressão Gênica , Neurônios/metabolismo , Proteína Quinase C-épsilon/metabolismo , Canais de Potássio Shaw/biossíntese , Animais , Células CHO , Cricetulus , Células HEK293 , Humanos , Proteína Quinase C-épsilon/genética , Ratos , Canais de Potássio Shaw/genética
2.
J Neurosci ; 37(34): 8256-8272, 2017 08 23.
Artigo em Inglês | MEDLINE | ID: mdl-28751455

RESUMO

Dysfunction of the fast-inactivating Kv3.4 potassium current in dorsal root ganglion (DRG) neurons contributes to the hyperexcitability associated with persistent pain induced by spinal cord injury (SCI). However, the underlying mechanism is not known. In light of our previous work demonstrating modulation of the Kv3.4 channel by phosphorylation, we investigated the role of the phosphatase calcineurin (CaN) using electrophysiological, molecular, and imaging approaches in adult female Sprague Dawley rats. Pharmacological inhibition of CaN in small-diameter DRG neurons slowed repolarization of the somatic action potential (AP) and attenuated the Kv3.4 current. Attenuated Kv3.4 currents also exhibited slowed inactivation. We observed similar effects on the recombinant Kv3.4 channel heterologously expressed in Chinese hamster ovary cells, supporting our findings in DRG neurons. Elucidating the molecular basis of these effects, mutation of four previously characterized serines within the Kv3.4 N-terminal inactivation domain eliminated the effects of CaN inhibition on the Kv3.4 current. SCI similarly induced concurrent Kv3.4 current attenuation and slowing of inactivation. Although there was little change in CaN expression and localization after injury, SCI induced upregulation of the native regulator of CaN 1 (RCAN1) in the DRG at the transcript and protein levels. Consistent with CaN inhibition resulting from RCAN1 upregulation, overexpression of RCAN1 in naive DRG neurons recapitulated the effects of pharmacological CaN inhibition on the Kv3.4 current and the AP. Overall, these results demonstrate a novel regulatory pathway that links CaN, RCAN1, and Kv3.4 in DRG neurons. Dysregulation of this pathway might underlie a peripheral mechanism of pain sensitization induced by SCI.SIGNIFICANCE STATEMENT Pain sensitization associated with spinal cord injury (SCI) involves poorly understood maladaptive modulation of neuronal excitability. Although central mechanisms have received significant attention, recent studies have identified peripheral nerve hyperexcitability as a driver of persistent pain signaling after SCI. However, the ion channels and signaling molecules responsible for this change in primary sensory neuron excitability are still not well defined. To address this problem, this study used complementary electrophysiological and molecular methods to determine how Kv3.4, a voltage-gated K+ channel robustly expressed in dorsal root ganglion neurons, becomes dysfunctional upon calcineurin (CaN) inhibition. The results strongly suggest that CaN inhibition underlies SCI-induced dysfunction of Kv3.4 and the associated excitability changes through upregulation of the native regulator of CaN 1 (RCAN1).


Assuntos
Inibidores de Calcineurina/farmacologia , Calcineurina/biossíntese , Gânglios Espinais/metabolismo , Canais de Potássio Shaw/biossíntese , Traumatismos da Medula Espinal/metabolismo , Animais , Células CHO , Inibidores de Calcineurina/toxicidade , Células Cultivadas , Vértebras Cervicais , Cricetinae , Cricetulus , Feminino , Gânglios Espinais/efeitos dos fármacos , Neurônios/efeitos dos fármacos , Neurônios/metabolismo , Canais de Potássio de Abertura Dependente da Tensão da Membrana/biossíntese , Ratos , Ratos Sprague-Dawley , Traumatismos da Medula Espinal/fisiopatologia
3.
J Neurosci ; 35(3): 1260-73, 2015 Jan 21.
Artigo em Inglês | MEDLINE | ID: mdl-25609640

RESUMO

Spinal cord injury (SCI) patients develop chronic pain involving poorly understood central and peripheral mechanisms. Because dysregulation of the voltage-gated Kv3.4 channel has been implicated in the hyperexcitable state of dorsal root ganglion (DRG) neurons following direct injury of sensory nerves, we asked whether such a dysregulation also plays a role in SCI. Kv3.4 channels are expressed in DRG neurons, where they help regulate action potential (AP) repolarization in a manner that depends on the modulation of inactivation by protein kinase C (PKC)-dependent phosphorylation of the channel's inactivation domain. Here, we report that, 2 weeks after cervical hemicontusion SCI, injured rats exhibit contralateral hypersensitivity to stimuli accompanied by accentuated repetitive spiking in putative DRG nociceptors. Also in these neurons at 1 week after laminectomy and SCI, Kv3.4 channel inactivation is impaired compared with naive nonsurgical controls. At 2-6 weeks after laminectomy, however, Kv3.4 channel inactivation returns to naive levels. Conversely, Kv3.4 currents at 2-6 weeks post-SCI are downregulated and remain slow-inactivating. Immunohistochemistry indicated that downregulation mainly resulted from decreased surface expression of the Kv3.4 channel, as whole-DRG-protein and single-cell mRNA transcript levels did not change. Furthermore, consistent with Kv3.4 channel dysregulation, PKC activation failed to shorten the AP duration of small-diameter DRG neurons. Finally, re-expressing synthetic Kv3.4 currents under dynamic clamp conditions dampened repetitive spiking in the neurons from SCI rats. These results suggest a novel peripheral mechanism of post-SCI pain sensitization implicating Kv3.4 channel dysregulation and potential Kv3.4-based therapeutic interventions.


Assuntos
Potenciais de Ação/fisiologia , Gânglios Espinais/metabolismo , Neurônios/fisiologia , Canais de Potássio Shaw/metabolismo , Traumatismos da Medula Espinal/metabolismo , Animais , Feminino , Gânglios Espinais/fisiopatologia , Dor/etiologia , Dor/metabolismo , Dor/fisiopatologia , Ratos , Ratos Sprague-Dawley , Traumatismos da Medula Espinal/complicações , Traumatismos da Medula Espinal/fisiopatologia
4.
Cell Rep ; 42(11): 113344, 2023 11 28.
Artigo em Inglês | MEDLINE | ID: mdl-37910500

RESUMO

Identifying molecular specializations in cortical circuitry supporting complex behaviors, like learned vocalizations, requires understanding of the neuroanatomical context from which these circuits arise. In songbirds, the robust arcopallial nucleus (RA) provides descending cortical projections for fine vocal-motor control. Using single-nuclei transcriptomics and spatial gene expression mapping in zebra finches, we have defined cell types and molecular specializations that distinguish RA from adjacent regions involved in non-vocal motor and sensory processing. We describe an RA-specific projection neuron, differential inhibitory subtypes, and glia specializations and have probed predicted GABAergic interneuron subtypes electrophysiologically within RA. Several cell-specific markers arise developmentally in a sex-dependent manner. Our interactive apps integrate cellular data with developmental and spatial distribution data from the gene expression brain atlas ZEBrA. Users can explore molecular specializations of vocal-motor neurons and support cells that likely reflect adaptations key to the physiology and evolution of vocal control circuits and refined motor skills.


Assuntos
Tentilhões , Córtex Motor , Animais , Tentilhões/fisiologia , Córtex Motor/fisiologia , Encéfalo/fisiologia , Aprendizagem/fisiologia , Neurônios Motores , Vocalização Animal/fisiologia
5.
Elife ; 122023 05 09.
Artigo em Inglês | MEDLINE | ID: mdl-37158590

RESUMO

Complex motor skills in vertebrates require specialized upper motor neurons with precise action potential (AP) firing. To examine how diverse populations of upper motor neurons subserve distinct functions and the specific repertoire of ion channels involved, we conducted a thorough study of the excitability of upper motor neurons controlling somatic motor function in the zebra finch. We found that robustus arcopallialis projection neurons (RAPNs), key command neurons for song production, exhibit ultranarrow spikes and higher firing rates compared to neurons controlling non-vocal somatic motor functions (dorsal intermediate arcopallium [AId] neurons). Pharmacological and molecular data indicate that this striking difference is associated with the higher expression in RAPNs of high threshold, fast-activating voltage-gated Kv3 channels, that likely contain Kv3.1 (KCNC1) subunits. The spike waveform and Kv3.1 expression in RAPNs mirror properties of Betz cells, specialized upper motor neurons involved in fine digit control in humans and other primates but absent in rodents. Our study thus provides evidence that songbirds and primates have convergently evolved the use of Kv3.1 to ensure precise, rapid AP firing in upper motor neurons controlling fast and complex motor skills.


Assuntos
Córtex Motor , Canais de Potássio de Abertura Dependente da Tensão da Membrana , Aves Canoras , Animais , Potenciais de Ação/fisiologia , Interneurônios , Neurônios Motores , Canais de Potássio Shaw
6.
Am J Physiol Regul Integr Comp Physiol ; 302(5): R551-60, 2012 Mar 01.
Artigo em Inglês | MEDLINE | ID: mdl-22160541

RESUMO

Arousal is an important defense against hypoxia during sleep. Rat pups exhibit progressive arousal impairment (habituation) with multiple hypoxia exposures. The mechanisms are unknown. The medullary raphe (MR) is involved in autonomic functions, including sleep, and receives abundant GABAergic inputs. We hypothesized that inhibiting MR neurons with muscimol, a GABA(A) receptor agonist, or preventing GABA reuptake with nipecotic acid, would impair arousal and enhance arousal habituation and that blocking GABA(A) receptors with bicuculline would enhance arousal and attenuate habituation. Postnatal day 15 (P15) to P25 rat pups were briefly anesthetized, and microinjections with aCSF, muscimol, bicuculline, or nipecotic acid were made into the MR. After a ∼30-min recovery, pups were exposed to four 3-min episodes of hypoxia separated by 6 min of normoxia. The time to arousal from the onset of hypoxia (latency) was determined for each trial. Latency progressively increased across trials (habituation) in all groups. The overall latency was greater after muscimol and nipecotic acid compared with aCSF, bicuculline, or noninjected controls. Arousal habituation was reduced after bicuculline compared with aCSF, muscimol, nipecotic acid, or noninjected pups. Increases in latency were mirrored by decreases in chamber [O2] and oxyhemoglobin saturation. Heart rate increased during hypoxia and was greatest in muscimol-injected pups. Our results indicate that the MR plays an important, not previously described, role in arousal and arousal habituation during hypoxia and that these phenomena are modulated by GABAergic mechanisms. Arousal habituation may contribute to sudden infant death syndrome, which is associated with MR serotonergic and GABAergic receptor dysfunction.


Assuntos
Animais Recém-Nascidos/fisiologia , Nível de Alerta/fisiologia , Hipóxia/fisiopatologia , Bulbo/fisiologia , Sono/fisiologia , Vigília/fisiologia , Ácido gama-Aminobutírico/fisiologia , Animais , Bicuculina/farmacologia , Temperatura Corporal/fisiologia , Feminino , Antagonistas de Receptores de GABA-A/farmacologia , Frequência Cardíaca/fisiologia , Masculino , Modelos Animais , Ácidos Nipecóticos/farmacologia , Ratos , Ratos Sprague-Dawley , Receptores de GABA-A/efeitos dos fármacos , Receptores de GABA-A/fisiologia , Taxa Respiratória/fisiologia , Fatores de Tempo
7.
Nat Commun ; 12(1): 6762, 2021 11 19.
Artigo em Inglês | MEDLINE | ID: mdl-34799550

RESUMO

The underlying mechanisms that promote precise spiking in upper motor neurons controlling fine motor skills are not well understood. Here we report that projection neurons in the adult zebra finch song nucleus RA display robust high-frequency firing, ultra-narrow spike waveforms, superfast Na+ current inactivation kinetics, and large resurgent Na+ currents (INaR). These properties of songbird pallial motor neurons closely resemble those of specialized large pyramidal neurons in mammalian primary motor cortex. They emerge during the early phases of song development in males, but not females, coinciding with a complete switch of Na+ channel subunit expression from Navß3 to Navß4. Dynamic clamping and dialysis of Navß4's C-terminal peptide into juvenile RA neurons provide evidence that Navß4, and its associated INaR, promote neuronal excitability. We thus propose that INaR modulates the excitability of upper motor neurons that are required for the execution of fine motor skills.


Assuntos
Centro Vocal Superior/fisiologia , Atividade Motora/fisiologia , Córtex Motor/fisiologia , Neurônios Motores/metabolismo , Sódio/metabolismo , Potenciais de Ação/fisiologia , Animais , Tentilhões , Centro Vocal Superior/citologia , Masculino , Córtex Motor/citologia , Rede Nervosa/fisiologia , Técnicas de Patch-Clamp , Subunidades beta do Canal de Sódio Disparado por Voltagem/metabolismo
8.
Front Mol Neurosci ; 11: 253, 2018.
Artigo em Inglês | MEDLINE | ID: mdl-30127716

RESUMO

A-type voltage-gated potassium (Kv) channels are major regulators of neuronal excitability that have been mainly characterized in the central nervous system. By contrast, there is a paucity of knowledge about the molecular physiology of these Kv channels in the peripheral nervous system, including highly specialized and heterogenous dorsal root ganglion (DRG) neurons. Although all A-type Kv channels display pore-forming subunits with similar structural properties and fast inactivation, their voltage-, and time-dependent properties and modulation are significantly different. These differences ultimately determine distinct physiological roles of diverse A-type Kv channels, and how their dysfunction might contribute to neurological disorders. The importance of A-type Kv channels in DRG neurons is highlighted by recent studies that have linked their dysfunction to persistent pain sensitization. Here, we review the molecular neurophysiology of A-type Kv channels with an emphasis on those that have been identified and investigated in DRG nociceptors (Kv1.4, Kv3.4, and Kv4s). Also, we discuss evidence implicating these Kv channels in neuropathic pain resulting from injury, and present a perspective of outstanding challenges that must be tackled in order to discover novel treatments for intractable pain disorders.

9.
Channels (Austin) ; 9(4): 209-17, 2015.
Artigo em Inglês | MEDLINE | ID: mdl-26039360

RESUMO

Recently, we reported the isolation of the Kv3.4 current in dorsal root ganglion (DRG) neurons and described dysregulation of this current in a spinal cord injury (SCI) model of chronic pain. These studies strongly suggest that rat Kv3.4 channels are major regulators of excitability in DRG neurons from pups and adult females, where they help determine action potential (AP) repolarization and spiking properties. Here, we characterized the Kv3.4 current in rat DRG neurons from adult males and show that it transfers 40-70% of the total repolarizing charge during the AP across all ages and sexes. Following SCI, we also found remodeling of the repolarizing currents during the AP. In the light of these studies, homomeric Kv3.4 channels expressed in DRG nociceptors are emerging novel targets that may help develop new approaches to treat neuropathic pain.


Assuntos
Gânglios Espinais/fisiologia , Neurônios/fisiologia , Nociceptores/fisiologia , Canais de Potássio Shaw/fisiologia , Potenciais de Ação/genética , Potenciais de Ação/fisiologia , Animais , Células Cultivadas , Feminino , Gânglios Espinais/citologia , Gânglios Espinais/metabolismo , Expressão Gênica , Masculino , Neurônios/metabolismo , Nociceptores/metabolismo , Técnicas de Patch-Clamp , Interferência de RNA , Ratos Sprague-Dawley , Reação em Cadeia da Polimerase Via Transcriptase Reversa , Canais de Potássio Shaw/genética
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