RESUMEN
Cyclic nucleotide-gated (CNG) ion channels of olfactory neurons are tetrameric membrane receptors that are composed of two A2 subunits, one A4 subunit, and one B1b subunit. Each subunit carries a cyclic nucleotide-binding domain in the carboxyl terminus, and the channels are activated by the binding of cyclic nucleotides. The mechanism of cooperative channel activation is still elusive. Using a complete set of engineered concatenated olfactory CNG channels, with all combinations of disabled binding sites and fit analyses with systems of allosteric models, the thermodynamics of microscopic cooperativity for ligand binding was subunit- and state-specifically quantified. We show, for the closed channel, that preoccupation of each of the single subunits increases the affinity of each other subunit with a Gibbs free energy (ΔΔG) of â¼-3.5 to â¼-5.5 kJ â mol-1, depending on the subunit type, with the only exception that a preoccupied opposite A2 subunit has no effect on the other A2 subunit. Preoccupation of two neighbor subunits of a given subunit causes the maximum affinity increase with ΔΔG of â¼-9.6 to â¼-9.9 kJ â mol-1 Surprisingly, triple preoccupation leads to fewer negative ΔΔG values for a given subunit as compared to double preoccupation. Channel opening increases the affinity of all subunits. The equilibrium constants of closed-open isomerizations systematically increase with progressive liganding. This work demonstrates, on the example of the heterotetrameric olfactory CNG channel, a strategy to derive detailed insights into the specific mutual control of the individual subunits in a multisubunit membrane receptor.
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AMP Cíclico/metabolismo , GMP Cíclico/metabolismo , Canales Catiónicos Regulados por Nucleótidos Cíclicos/química , Canales Catiónicos Regulados por Nucleótidos Cíclicos/metabolismo , Activación del Canal Iónico , Termodinámica , Animales , Sitios de Unión , Canales Catiónicos Regulados por Nucleótidos Cíclicos/genética , Ligandos , Oocitos/metabolismo , Conformación Proteica , Subunidades de Proteína , Xenopus laevis/crecimiento & desarrollo , Xenopus laevis/metabolismoRESUMEN
Aripiprazole is an atypical antipsychotic drug, which is prescribed for many psychiatric diseases such as schizophrenia and mania in bipolar disorder. It primarily acts as an agonist of dopaminergic and other G-protein coupled receptors. So far, an interaction with ligand- or voltage-gated ion channels has been classified as weak. Meanwhile, we identified aripiprazole in a preliminary test as a potent blocker of voltage-gated sodium channels. Here, we present a detailed analysis about the interaction of aripiprazole with the dominant voltage-gated sodium channel of heart muscle (hNav1.5). Electrophysiological experiments were performed by means of the patch clamp technique at human heart muscle sodium channels (hNav1.5), heterologously expressed in human TsA cells. Aripiprazole inhibits the hNav1.5 channel in a state- but not use-dependent manner. The affinity for the resting state is weak with an extrapolated Kr of about 55 µM. By contrast, the interaction with the inactivated state is strong. The affinities for the fast and slow inactivated state are in the low micromolar range (0.5-1 µM). Kinetic studies indicate that block development for the inactivated state must be described with a fast (ms) and a slow (s) time constant. Even though the time constants differ by a factor of about 50, the resulting affinity constants were nearly identical (in the range of 0.5 µM). Besides this, aripirazole also interacts with the open state of the channel. Using an inactivation deficit mutant, an affinity of about 1 µM was estimated. In summary, aripiprazole inhibits voltage-gated sodium channels at low micromolar concentrations. This property might add to its possible anticancer and neuroprotective properties.
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Canales de Sodio Activados por Voltaje , Humanos , Aripiprazol/farmacología , Cinética , Técnicas de Placa-Clamp , Miocardio , Bloqueadores de los Canales de Sodio/farmacologíaRESUMEN
Aberrant expression of the sodium channel gene (SCN5A) has been proposed to disrupt cardiac action potential and cause human cardiac arrhythmias, but the mechanisms of SCN5A gene regulation and dysregulation still remain largely unexplored. To gain insight into the transcriptional regulatory networks of SCN5A, we surveyed the promoter and first intronic regions of the SCN5A gene, predicting the presence of several binding sites for GATA transcription factors (TFs). Consistent with this prediction, chromatin immunoprecipitation (ChIP) and sequential ChIP (Re-ChIP) assays show co-occupancy of cardiac GATA TFs GATA4 and GATA5 on promoter and intron 1 SCN5A regions in fresh-frozen human left ventricle samples. Gene reporter experiments show GATA4 and GATA5 synergism in the activation of the SCN5A promoter, and its dependence on predicted GATA binding sites. GATA4 and GATA6 mRNAs are robustly expressed in fresh-frozen human left ventricle samples as measured by highly sensitive droplet digital PCR (ddPCR). GATA5 mRNA is marginally but still clearly detected in the same samples. Importantly, GATA4 mRNA levels are strongly and positively correlated with SCN5A transcript levels in the human heart. Together, our findings uncover a novel mechanism of GATA TFs in the regulation of the SCN5A gene in human heart tissue. Our studies suggest that GATA5 but especially GATA4 are main contributors to SCN5A gene expression, thus providing a new paradigm of SCN5A expression regulation that may shed new light into the understanding of cardiac disease.
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Factor de Transcripción GATA4/metabolismo , Regulación de la Expresión Génica , Miocardio/metabolismo , Canal de Sodio Activado por Voltaje NAV1.5/genética , Transcripción Genética , Animales , Sitios de Unión , Línea Celular , Factor de Transcripción GATA5/metabolismo , Perfilación de la Expresión Génica , Humanos , Mutación , Canal de Sodio Activado por Voltaje NAV1.5/metabolismo , Regiones Promotoras Genéticas , Unión Proteica , ARN Mensajero/genética , ARN Interferente Pequeño/genética , RatasRESUMEN
More than 36,000 people in the United States die from suicide annually, and suicide is the third leading cause of death in adolescence. Adolescence is a time of high risk for suicidal behavior, as well as a time that intervention and treatment may have the greatest impact because of structural brain changes and significant psychosocial development during this period. Functional and structural neuroimaging studies in adults who have attempted suicide suggest distinct gray matter volume abnormalities in cortical regions, as well as prefrontal cortical and dorsal anterior cingulate gyrus neural circuitry differences compared with affective and healthy adult controls. Recent functional neuroimaging studies in adolescents with a history of suicide attempt suggest differences in the attention and salience networks compared with adolescents with depression and no history of suicide attempt and healthy controls when viewing angry faces. In contrast, no abnormalities are seen in these areas in the absence of emotional stimuli. These networks may represent promising targets for future neuroimaging studies to identify markers of risk for future suicide attempt in adolescents.
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Mapeo Encefálico , Encéfalo/fisiología , Intento de Suicidio , Adolescente , Atención , Encéfalo/crecimiento & desarrollo , Emociones , Humanos , Imagen por Resonancia MagnéticaRESUMEN
Hyperpolarization-activated cyclic nucleotide-modulated (HCN) channels are tetrameric membrane proteins that generate electrical rhythmicity in specialized neurons and cardiomyocytes. The channels are primarily activated by voltage but are receptors as well, binding the intracellular ligand cyclic AMP. The molecular mechanism of channel activation is still unknown. Here we analyze the complex activation mechanism of homotetrameric HCN2 channels by confocal patch-clamp fluorometry and kinetically quantify all ligand binding steps and closed-open isomerizations of the intermediate states. For the binding affinity of the second, third and fourth ligand, our results suggest pronounced cooperativity in the sequence positive, negative and positive, respectively. This complex interaction of the subunits leads to a preferential stabilization of states with zero, two or four ligands and suggests a dimeric organization of the activation process: within the dimers the cooperativity is positive, whereas it is negative between the dimers.
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Canales Iónicos/metabolismo , Animales , AMP Cíclico/farmacología , Humanos , Canales Regulados por Nucleótidos Cíclicos Activados por Hiperpolarización , Canales Iónicos/química , Ligandos , Miocitos Cardíacos , Neuronas , Técnicas de Placa-Clamp , Canales de Potasio , Unión Proteica , Multimerización de Proteína , Estabilidad Proteica , Subunidades de ProteínaRESUMEN
When in extreme distress, it is difficult to remember the coping strategies and resources available to you. The purpose of a safety plan is to make it easier for individuals to make wise choices in moments of crisis. By virtue of this, we should strive to have safety plans as easy and convenient to use as possible. The Stanley-Brown safety plan is a template for this style of intervention and has been adapted and adopted in numerous institutions.1 A pillar of this intervention is ready-at-hand contact information for mental health agencies and crisis resources. Although the classic paper safety plan remains an invaluable tool, integration of digital resources may be necessary to meet our young patients "where they live."2 Generation Z are "digital natives" with great fluency and comfort with smart devices. Expansion of the audio-only National Suicide Prevention Lifeline to the audio, SMS, and Web-based instant messaging capabilities of the 988 Crisis & Suicide Lifeline recognizes this shift.3 At the University of Michigan, we developed a quick response (QR) code to save these resources directly onto youths' smartphones.
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Suicidio , Humanos , Adolescente , Suicidio/psicología , Prevención del Suicidio , Adaptación Psicológica , Teléfono Inteligente , Salud MentalRESUMEN
Dimeric metabotropic glutamate receptors (mGluRs) are abundantly expressed in neurons. In mammals, eight subunit isoforms, mGluR1-8, have been identified, forming the groups I, II, and III. We investigated receptor dimerization and kinetics of these mGluR isoforms in excised membrane patches by FRET and confocal patch-clamp fluorometry. We show that 5 out of 8 homodimeric receptors develop characteristic glutamate-induced on- and off-kinetics, as do 11 out of 28 heterodimers. Glutamate-responsive heterodimers were identified within each group, between groups I and II as well as between groups II and III, but not between groups I and III. The glutamate-responsive heterodimers showed heterogeneous activation and deactivation kinetics. Interestingly, mGluR7, not generating a kinetic response in homodimers, showed fast on-kinetics in mGluR2/7 and mGluR3/7 while off-kinetics retained the speed of mGluR2 or mGluR3 respectively. In conclusion, glutamate-induced conformational changes in heterodimers appear within each group and between groups if one group II subunit is present.
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Receptores de Glutamato Metabotrópico , Animales , Ácido Glutámico , Mamíferos , Neuronas , CinéticaRESUMEN
Voltage-gated sodium (Na+) channels respond to short membrane depolarization with conformational changes leading to pore opening, Na+ influx, and action potential (AP) upstroke. In the present study, we coupled channelrhodopsin-2 (ChR2), the key ion channel in optogenetics, directly to the cardiac voltage-gated Na+ channel (Nav1.5). Fusion constructs were expressed in Xenopus laevis oocytes, and electrophysiological recordings were performed by the two-microelectrode technique. Heteromeric channels retained both typical Nav1.5 kinetics and light-sensitive ChR2 properties. Switching to the current-clamp mode and applying short blue-light pulses resulted either in subthreshold depolarization or in a rapid change of membrane polarity typically seen in APs of excitable cells. To study the effect of individual K+ channels on the AP shape, we co-expressed either Kv1.2 or hERG with one of the Nav1.5-ChR2 fusions. As expected, both delayed rectifier K+ channels shortened AP duration significantly. Kv1.2 currents remarkably accelerated initial repolarization, whereas hERG channel activity efficiently restored the resting membrane potential. Finally, we investigated the effect of the LQT3 deletion mutant ΔKPQ on the AP shape and noticed an extremely prolonged AP duration that was directly correlated to the size of the non-inactivating Na+ current fraction. In conclusion, coupling of ChR2 to a voltage-gated Na+ channel generates optical switches that are useful for studying the effect of individual ion channels on the AP shape. Moreover, our novel optogenetic approach provides the potential for an application in pharmacology and optogenetic tissue-engineering.
RESUMEN
Hyperpolarization-activated cyclic nucleotide-modulated (HCN) channels are tetramers that generate electrical rhythmicity in special brain neurons and cardiomyocytes. The channels are activated by membrane hyperpolarization. The binding of cAMP to the four available cyclic nucleotide-binding domains (CNBD) enhances channel activation. We analyzed in the present study the mechanism of how the effect of cAMP binding is transmitted to the pore domain. Our strategy was to uncouple the C-linker (CL) from the channel core by inserting one to five glycine residues between the S6 gate and the A'-helix (constructs 1G to 5G). We quantified in full-length HCN2 channels the resulting functional effects of the inserted glycines by current activation as well as the structural dynamics and statics using molecular dynamics simulations and Constraint Network Analysis. We show functionally that already in 1G the cAMP effect on activation is lost and that with the exception of 3G and 5G the concentration-activation relationships are shifted to depolarized voltages with respect to HCN2. The strongest effect was found for 4G. Accordingly, the activation kinetics were accelerated by all constructs, again with the strongest effect in 4G. The simulations reveal that the average residue mobility of the CL and CNBD domains is increased in all constructs and that the junction between the S6 and A'-helix is turned into a flexible hinge, resulting in a destabilized gate in all constructs. Moreover, for 3G and 4G, there is a stronger downward displacement of the CL-CNBD than in HCN2 and the other constructs, resulting in an increased kink angle between S6 and A'-helix, which in turn loosens contacts between the S4-helix and the CL. This is suggested to promote a downward movement of the S4-helix, similar to the effect of hyperpolarization. In addition, exclusively in 4G, the selectivity filter in the upper pore region and parts of the S4-helix are destabilized. The results provide new insights into the intricate activation of HCN2 channels.
RESUMEN
Atomoxetine, a neuroactive drug, is approved for the treatment of attention-deficit/hyperactivity disorder (ADHD). It is primarily known as a high affinity blocker of the noradrenaline transporter, whereby its application leads to an increased level of the corresponding neurotransmitter in different brain regions. However, the concentrations used to obtain clinical effects are much higher than those which are required to block the transporter system. Thus, off-target effects are likely to occur. In this way, we previously identified atomoxetine as blocker of NMDA receptors. As many psychotropic drugs give rise to sudden death of cardiac origin, we now tested the hypothesis whether atomoxetine also interacts with voltage-gated sodium channels of heart muscle type in clinically relevant concentrations. Electrophysiological experiments were performed by means of the patch-clamp technique at human heart muscle sodium channels (hNav1.5) heterogeneously expressed in human embryonic kidney cells. Atomoxetine inhibited sodium channels in a state- and use-dependent manner. Atomoxetine had only a weak affinity for the resting state of the hNav1.5 (Kr: â¼ 120 µM). The efficacy of atomoxetine strongly increased with membrane depolarization, indicating that the inactivated state is an important target. A hallmark of this drug was its slow interaction. By use of different experimental settings, we concluded that the interaction occurs with the slow inactivated state as well as by slow kinetics with the fast-inactivated state. Half-maximal effective concentrations (2-3 µM) were well within the concentration range found in plasma of treated patients. Atomoxetine also interacted with the open channel. However, the interaction was not fast enough to accelerate the time constant of fast inactivation. Nevertheless, when using the inactivation-deficient hNav1.5_I408W_L409C_A410W mutant, we found that the persistent late current was blocked half maximal at about 3 µM atomoxetine. The interaction most probably occurred via the local anesthetic binding site. Atomoxetine inhibited sodium channels at a similar concentration as it is used for the treatment of ADHD. Due to its slow interaction and by inhibiting the late current, it potentially exerts antiarrhythmic properties.
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This paper reports investigations led on the combination of the refractive index and morphological dilation to enhance performances towards breast tumour margin delineation during conserving surgeries. The refractive index map of invasive ductal and lobular carcinomas were constructed from an inverse electromagnetic problem. Morphological dilation combined with refractive index thresholding was conducted to classify the tissue regions as malignant or benign. A histology routine was conducted to evaluate the performances of various dilation geometries associated with different thresholds. It was found that the combination of a wide structuring element and high refractive index was improving the correctness of tissue classification in comparison to other configurations or without dilation. The method reports a sensitivity of around 80% and a specificity of 82% for the best case. These results indicate that combining the fundamental optical properties of tissues denoted by their refractive index with morphological dilation may open routes to define supporting procedures during breast-conserving surgeries.
Asunto(s)
Neoplasias de la Mama/diagnóstico por imagen , Carcinoma/diagnóstico por imagen , Procesamiento de Imagen Asistido por Computador/métodos , Márgenes de Escisión , Refractometría/métodos , Neoplasias de la Mama/patología , Neoplasias de la Mama/cirugía , Carcinoma/patología , Carcinoma/cirugía , Diagnóstico por Imagen/métodos , Femenino , Humanos , Análisis Espectral/métodosRESUMEN
Background: Tumor therapeutics are aimed to affect tumor cells selectively while sparing healthy ones. For this purpose, a huge variety of different drugs are in use. Recently, also blockers of voltage-gated sodium channels (VGSCs) have been recognized to possess potentially beneficial effects in tumor therapy. As these channels are a frequent target of numerous drugs, we hypothesized that currently used tumor therapeutics might have the potential to block VGSCs in addition to their classical anti-cancer activity. In the present work, we have analyzed the imipridone TIC10, which belongs to a novel class of anti-cancer compounds, for its potency to interact with VGSCs. Methods: Electrophysiological experiments were performed by means of the patch-clamp technique using heterologously expressed human heart muscle sodium channels (hNav1.5), which are among the most common subtypes of VGSCs occurring in tumor cells. Results: TIC10 angular inhibited the hNav1.5 channel in a state- but not use-dependent manner. The affinity for the resting state was weak with an extrapolated Kr of about 600 µM. TIC10 most probably did not interact with fast inactivation. In protocols for slow inactivation, a half-maximal inhibition occurred around 2 µM. This observation was confirmed by kinetic studies indicating that the interaction occurred with a slow time constant. Furthermore, TIC10 also interacted with the open channel with an affinity of approximately 4 µM. The binding site for local anesthetics or a closely related site is suggested as a possible target as the affinity for the well-characterized F1760K mutant was reduced more than 20-fold compared to wild type. Among the analyzed derivatives, ONC212 was similarly effective as TIC10 angular, while TIC10 linear more selectively interacted with the different states. Conclusion: The inhibition of VGSCs at low micromolar concentrations might add to the anti-tumor properties of TIC10.
RESUMEN
Cyclic nucleotide-gated (CNG) channels mediate sensory signal transduction in retinal and olfactory cells. The channels are activated by the binding of cyclic nucleotides to a cyclic nucleotide-binding domain (CNBD) in the C-terminus that is located at the intracellular side. The molecular events translating the ligand binding to the pore opening are still unknown. We investigated the role of the S4-S5 linker in the activation process by quantifying its interaction with other intracellular regions. To this end, we constructed chimeric channels in which the N-terminus, the S4-S5 linker, the C-linker, and the CNBD of the retinal CNGA1 subunit were systematically replaced by the respective regions of the olfactory CNGA2 subunit. Macroscopic concentration-response relations were analyzed, yielding the apparent affinity to cGMP and the Hill coefficient. The degree of functional coupling of intracellular regions in the activation gating was determined by thermodynamic double-mutant cycle analysis. We observed that all four intracellular regions, including the relatively short S4-S5 linker, are involved in controlling the apparent affinity of the channel to cGMP and, moreover, in determining the degree of cooperativity between the subunits, as derived from the Hill coefficient. The interaction energies reveal an interaction of the S4-S5 linker with both the N-terminus and the C-linker, but no interaction with the CNBD.
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Canales Catiónicos Regulados por Nucleótidos Cíclicos/química , Canales Catiónicos Regulados por Nucleótidos Cíclicos/metabolismo , Animales , Bovinos , GMP Cíclico/metabolismo , Espacio Intracelular/metabolismo , Activación del Canal Iónico , Estructura Terciaria de Proteína , Subunidades de Proteína/química , Subunidades de Proteína/metabolismo , TermodinámicaRESUMEN
Voltage-gated sodium channels mediate the rapid upstroke of the action potential in excitable tissues. The tetrodotoxin (TTX) resistant isoform Na(v)1.5, encoded by the SCN5A gene, is the predominant isoform in the heart. This channel plays a key role for excitability of atrial and ventricular cardiomyocytes and for rapid impulse propagation through the specific conduction system. During recent years, strong evidence has been accumulated in support of the expression of several Na(v)1.5 splice variants in the heart, and in various other tissues and cell lines including brain, dorsal root ganglia, breast cancer cells and neuronal stem cell lines. This review summarizes our knowledge on the structure and putative function of nine Na(v)1.5 splice variants detected so far. Attention will be paid to the distinct biophysical properties of the four functional splice variants, to the pronounced tissue- and species-specific expression, and to the developmental regulation of Na(v)1.5 splicing. The implications of alternative splicing for SCN5A channelopathies, and for a better understanding of genotype-phenotype correlations, are discussed.
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Corazón/fisiología , Canales de Sodio , Potenciales de Acción/genética , Potenciales de Acción/fisiología , Empalme Alternativo , Animales , Ganglios Espinales/metabolismo , Ganglios Espinales/fisiología , Estudios de Asociación Genética , Ventrículos Cardíacos/metabolismo , Humanos , Miocitos Cardíacos/metabolismo , Miocitos Cardíacos/fisiología , Neuronas/metabolismo , Neuronas/fisiología , Isoformas de Proteínas/genética , Isoformas de Proteínas/metabolismo , Isoformas de Proteínas/fisiología , Sodio/metabolismo , Sodio/fisiología , Canales de Sodio/genética , Canales de Sodio/metabolismo , Canales de Sodio/fisiología , Sodio en la Dieta/metabolismo , Tetrodotoxina/metabolismo , Tetrodotoxina/fisiologíaRESUMEN
INTRODUCTION: Mutations in SCN5A, the gene encoding alpha subunit of cardiac type sodium channel, Na(v)1.5, lead to familial sick sinus syndrome (SSS). Although several molecular mechanisms for this genetic condition have been explored, the underlying mechanisms for the variable genotype-phenotype relationships have not been well addressed. One of the important contributors to such relationships is the genetic background such as single-nucleotide polymorphisms. METHODS AND RESULTS: To clarify the effects of a common polymorphism in SCN5A gene, H558R, on SCN5A-related SSS phenotype, we investigated the electrophysiological properties of all of the 13 known SSS-related hNa(v)1.5 mutant channels on both H558 and R558 background. Electrophysiological properties of hNa(v)1.5 mutant channels were investigated by the whole-cell patch clamp technique in HEK293 cells. When peak currents were affected by the mutation, cell surface biotinylation was performed to quantify the fraction of correctly cell membrane-targeted mutant channels. Loss-of-function defect of D1275N in SCN5A was rescued by R558 through enhancing cell surface targeting and improving steady-state activation of the mutant channels. In contrast, the defects of mutants E161K, P1298L, and R1632H were aggravated in the R558 background, mainly due to the reduced steady-state availability of mutant channels. The electrophysiological properties of the remaining SSS-related hNa(v)1.5 mutants including the missense mutants (L212P, T220I, DelF1617, T187I, R878C, G1408R), and the truncated mutants (W1421X, K1578fs/52, R1623X) were not significantly affected by H558R. CONCLUSION: We conclude that polymorphism H558R has mutation-specific effects on SCN5A-related SSS. Our data highlight the importance of common genetic variants in modulating phenotypes of genetic diseases.
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Proteínas Musculares/genética , Síndrome del Seno Enfermo/genética , Canales de Sodio/genética , Biotinilación , Western Blotting , Línea Celular , Membrana Celular/fisiología , Membrana Celular/ultraestructura , ADN/genética , ADN Recombinante/genética , Electrofisiología , Humanos , Mutación/genética , Mutación Missense , Canal de Sodio Activado por Voltaje NAV1.5 , Fenotipo , Polimorfismo Genético/genética , Polimorfismo de Nucleótido Simple/genéticaRESUMEN
The spectrum of para-infectious neurological symptoms was examined by a retrospective study of 57 patients admitted with acute neurological symptoms which were eventually interpreted as secondary to urinary tract infection. The symptoms encountered most frequently were confusion, gait disturbances, and drowsiness. Patients with Parkinson's disease, multiple sclerosis or a previous stroke often experienced a deterioration of their preexisting neurological deficits. We suggest that para-infectious encephalopathy (PE) is a mild form of septic encephalopathy with a distinct clinical pattern.
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Encefalopatías/etiología , Infecciones Urinarias/complicaciones , Anciano , Anciano de 80 o más Años , Femenino , Humanos , Masculino , Persona de Mediana Edad , Esclerosis Múltiple/complicaciones , Enfermedad de Parkinson/complicaciones , Estudios RetrospectivosRESUMEN
The human genome encodes nine functional voltage-gated Na+ channels. Three of them, namely Na(v)1.5, Na(v)1.8, and Na(v)1.9, are resistant to nanomolar concentrations of tetrodotoxin (TTX; IC(50) > or = 1 microM). The other isoforms, which are predominantly expressed in the skeletal muscle and nervous system, are highly sensitive to TTX (IC(50) approximately 10 nM). During the last two decades, it has become evident that in addition to the major cardiac isoform Na(v)1.5, several of those TTX sensitive isoforms are expressed in the mammalian heart. Whereas immunohistochemical and electrophysiological methods demonstrated functional expression in various heart regions, the physiological importance of those isoforms for cardiac excitation in higher mammals is still debated. This review summarizes our knowledge on the systemic cardiovascular effects of TTX in animals and humans, with a special focus on cardiac excitation and performance at lower concentrations of this marine drug. Altogether, these data strongly suggest that TTX sensitive Na+ channels, detected more recently in various heart tissues, are not involved in excitation phenomena in the healthy adult heart of higher mammals.
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Sistema Cardiovascular/efectos de los fármacos , Bloqueadores de los Canales de Sodio/toxicidad , Tetrodotoxina/toxicidad , Animales , Humanos , Canales de Sodio/efectos de los fármacos , Canales de Sodio/metabolismoRESUMEN
Voltage-gated sodium (Na+) channels are responsible for the fast upstroke of the action potential of excitable cells. The different α subunits of Na+ channels respond to brief membrane depolarizations above a threshold level by undergoing conformational changes that result in the opening of the pore and a subsequent inward flux of Na+. Physiologically, these initial membrane depolarizations are caused by other ion channels that are activated by a variety of stimuli such as mechanical stretch, temperature changes, and various ligands. In the present study, we developed an optogenetic approach to activate Na+ channels and elicit action potentials in Xenopus laevis oocytes. All recordings were performed by the two-microelectrode technique. We first coupled channelrhodopsin-2 (ChR2), a light-sensitive ion channel of the green alga Chlamydomonas reinhardtii, to the auxiliary ß1 subunit of voltage-gated Na+ channels. The resulting fusion construct, ß1-ChR2, retained the ability to modulate Na+ channel kinetics and generate photosensitive inward currents. Stimulation of Xenopus oocytes coexpressing the skeletal muscle Na+ channel Nav1.4 and ß1-ChR2 with 25-ms lasting blue-light pulses resulted in rapid alterations of the membrane potential strongly resembling typical action potentials of excitable cells. Blocking Nav1.4 with tetrodotoxin prevented the fast upstroke and the reversal of the membrane potential. Coexpression of the voltage-gated K+ channel Kv2.1 facilitated action potential repolarization considerably. Light-induced action potentials were also obtained by coexpressing ß1-ChR2 with either the neuronal Na+ channel Nav1.2 or the cardiac-specific isoform Nav1.5. Potential applications of this novel optogenetic tool are discussed.
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Potenciales de Acción/fisiología , Oocitos/fisiología , Xenopus laevis/fisiología , Potenciales de Acción/efectos de los fármacos , Animales , Channelrhodopsins/farmacología , Activación del Canal Iónico/efectos de los fármacos , Activación del Canal Iónico/fisiología , Luz , Músculo Esquelético/efectos de los fármacos , Músculo Esquelético/metabolismo , Oocitos/efectos de los fármacos , Canales de Potasio Shab/metabolismo , Sodio/metabolismo , Tetrodotoxina/farmacología , Canales de Sodio Activados por Voltaje/metabolismoRESUMEN
Voltage-gated Na+ channels mediate the rapid upstroke of the action potential in excitable tissues. Na(v)1.5, encoded by the SCN5A gene, is the predominant isoform in the heart. Mutations in SCN5A are associated with distinct cardiac excitation disorders often resulting in life-threatening arrhythmias. This review outlines the currently known SCN5A mutations linked to three distinct cardiac rhythm disorders: long QT syndrome subtype 3 (LQT3), Brugada syndrome (BS), and cardiac conduction disease (CCD). Electrophysiological properties of the mutant channels are summarized and discussed in terms of Na+ channel structure-function relationships and regarding molecular mechanisms underlying the respective cardiac dysfunction. Possible reasons for less convincing genotype-phenotype correlations are suggested.
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Arritmias Cardíacas/genética , Proteínas Musculares/genética , Mutación , Canales de Sodio/genética , Arritmias Cardíacas/etiología , Arritmias Cardíacas/fisiopatología , Síndrome de Brugada/genética , Fenómenos Electrofisiológicos , Genotipo , Humanos , Síndrome de QT Prolongado/clasificación , Síndrome de QT Prolongado/genética , Modelos Moleculares , Proteínas Musculares/química , Proteínas Musculares/fisiología , Canal de Sodio Activado por Voltaje NAV1.5 , Fenotipo , Canales de Sodio/química , Canales de Sodio/fisiologíaRESUMEN
In the present study we investigated whether transcription, alternative splicing and developmental regulation of voltage-gated Na(+) channels occur in a species-dependent manner in the mammalian heart. The composition of the Na(+) channel transcript pool including Na(v)1.1-Na(v)1.5 was analysed by RT-PCR in mouse, rat, pig, and human hearts. We found that relative transcript levels of tetrodotoxin (TTX) sensitive channels (Na(v)1.1-Na(v)1.4) decreased with increasing heart size (30% for mouse, 8% for rat, and 4% for pig/human). Considering transcript levels of individual isoforms, human and pig hearts were nearly indistinguishable whereas large differences existed between human and mouse. We also noticed that alternative splicing and age-dependent Na(+) channel expression occurred in a species-dependent manner. Unexpectedly, we even observed gender differences in the cardiac levels of TTX sensitive Na(+) channels in humans. Our data suggest that species differences could underlie published discrepancies on the role of TTX sensitive Na(+) channels in the heart and that the functions of those minor cardiac isoforms in normal and diseased hearts are best studied in larger mammalian animals.