950 resultados para Voltage clamp


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ZusammenfassungDer humane kationische Aminosäure-Transporter hCAT-1 (CAT für cationic amino acid transporter) gehört zur Familie der Na+- und pH-unabhängigen Transporter für basische Aminosäuren (BAS). Die vorliegende Arbeit befasst sich mit unterschiedlichen Aspekten des hCAT-1-vermittelten Transportes, die in zwei Teilabschnitten behandelt werden. Im ersten Abschnitt wurden die Transporteigenschaften von hCAT-1-exprimierenden X. laevis-Oozyten mit Hilfe von elektrophysiologischen Methoden untersucht und mit denen der Isoformen hCAT-2A und -2B verglichen. Dabei zeigte sich, dass es durch die Expression von hCAT-2A und -2B in Oozyten zur Bildung eines BAS-Potentiales kommt, jedoch nicht durch die Expression von hCAT-1. Hierfür dürfte die hohe Transstimulierbarkeit des hCAT-1-Proteins verantwortlich sein. Obwohl das Membranpotential einer Zelle die Akkumulation von BAS durch die hCAT-Proteine beeinflusst, war bei sehr hohen extrazellulären BAS-Konzentrationen die Akkumulation durch hCAT-1 und -2B im Gegensatz zu hCAT-2A nicht vom Membranpotential abhängig, da unter diesen Bedingungen der Efflux limitierend wirkte. Mit Hilfe der voltage clamp-Methode wurden die L-Arginin-induzierten Maximalströme (Vmax) und die Leitfähigkeiten der hCAT-Proteine bestimmt. Die so ermittelten Vmax-Werte sind nur halb so groß wie die durch Flux-Studien bestimmten. Daher muss von einem Gegentransport an positiver Ladung (Substrat) ausgegangen werden. Weiterhin konnte gezeigt werden, dass die hCAT-Isoformen zwei unterschiedliche Leitfähigkeitszustände für BAS besitzen, die von der intrazellulären BAS-Konzentration abhängig sind. Eine Leitfähigkeitszunahme durch Zugabe von extrazellulärem L-Arginin konnte bei allen hCAT-Isoformen in depletierten Oozyten beobachtet werden. In BAS-beladenen Oozyten führte die Zugabe von L-Arginin dagegen zu keiner (hCAT-1 und hCAT-2B) bzw. zu einer geringen (hCAT-2A) Zunahme der Leitfähigkeit der Transporter. Im Substratgleichgewicht jedoch nahm die Leitfähigkeit der drei untersuchten hCAT-Isoformen in Abhängigkeit von der Substratkonzentration zu. Überraschenderweise wurden für die untersuchten hCAT-Isoformen Leck-Ströme in Abwesenheit von BAS nachgewiesen. An hCAT-2B-exprimierenden Oozyten wurde eine erhöhte Leitfähigkeit für K+-Ionen gezeigt. Die physiologische Bedeutung dieser Kanalfunktion ist jedoch noch völlig ungeklärt. Im zweiten Abschnitt wurde der Mechanismus der Proteinkinase C (PKC)-vermittelten Inhibition der hCAT-1-Transportaktivität untersucht. Hierfür wurden hCAT-1.EGFP-Konstrukte in Oozyten und in U373MG Glioblastom-Zellen exprimiert. Mit Hilfe konfokaler Mikroskopie und Western-Blot-Analysen von biotinylierten Zelloberflächen-Proteinen wurde gezeigt, dass die PKC-vermittelte Reduktion der hCAT-1-Transportaktivität auf einer Reduktion der hCAT-Expression an der Zelloberfläche beruht. Ähnliche Ergebnisse wurden auch mit dem endogen in humanen DLD-1 Kolonkarzinom-Zellen exprimierten hCAT-1 erzielt. Der PKC-Effekt war auch noch nach Entfernung der putativen PKC-Erkennungsstellen am hCAT-1-Protein vorhanden. Daher reguliert die PKC die hCAT-1-Transportaktivität vermutlich über einen indirekten Mechanismus, d. h. nicht über eine direkte Phosphorylierung des hCAT-1-Proteins. Die Veränderung der Zelloberflächenexpression stellt einen neuen Regulationsmechanismus für die CAT-Proteine dar, der erklären kann, warum sich Modifikationen in der CAT-Proteinexpression oft nicht in entsprechenden Veränderungen der Transportaktivität widerspiegeln.

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La messa a punto di tecniche come il patch clamp e la creazione di doppi strati lipidici artificiali (artificial bilayers) ha permesso di effettuare studi su canali ionici per valutarne la permeabilità, la selettività ionica, la dipendenza dal voltaggio e la cinetica, sia in ambito di ricerca, per analizzarne il funzionamento specifico, sia in quello farmaceutico, per studiare la risposta cellulare a nuovi farmaci prodotti. Tali tecniche possono essere inoltre impiegate nella realizzazione di biosensori, combinando così i vantaggi di specificità e sensibilità dei sistemi biologici alla veloce risposta quantitativa degli strumenti elettrochimici. I segnali in corrente che vengono rilevati con questi metodi sono dell’ordine dei pA e richiedono perciò l’utilizzo di strumentazioni molto costose e ingombranti per amplificarli, analizzarli ed elaborarli correttamente. Il gruppo di ricerca afferente al professor Tartagni della facoltà di ingegneria di Cesena ha sviluppato un sistema miniaturizzato che possiede molte delle caratteristiche richieste per questi studi. L’obiettivo della tesi riguarda la caratterizzazione sperimentale di tale sistema con prove di laboratorio eseguite in uno spazio ridotto e senza l’impiego di ulteriori strumentazioni ad eccezione del PC. In particolare le prove effettuate prevedono la realizzazione di membrane lipidiche artificiali seguita dall’inserimento e dallo studio del comportamento di due particolari canali ionici comunemente utilizzati per questa tipologia di studi: la gramicidina A, per la facilità d’inserimento nella membrana e per la bassa conduttanza del singolo canale, e l’α-emolisina, per l’attuale impiego nella progettazione e realizzazione di biosensori. Il presente lavoro si sviluppa in quattro capitoli di seguito brevemente riassunti. Nel primo vengono illustrate la struttura e le funzioni svolte dalla membrana cellulare, rivolgendo particolare attenzione ai fosfolipidi e alle proteine di membrana; viene inoltre descritta la struttura dei canali ionici utilizzati per gli esperimenti. Il secondo capitolo comprende una descrizione del metodo utilizzato per realizzare i doppi strati lipidici artificiali, con riferimento all’analogo elettrico che ne risulta, ed una presentazione della strumentazione utilizzata per le prove di laboratorio. Il terzo e il quarto capitolo sono dedicati all’elaborazione dei dati raccolti sperimentalmente: in particolare vengono prima analizzati quelli specifici dell’amplificatore, quali quelli inerenti il rumore che si somma al segnale utile da analizzare e la variabilità inter-prototipo, successivamente si studiano le prestazioni dell’amplificatore miniaturizzato in reali condizioni sperimentali e dopo aver inserito i canali proteici all’interno dei bilayers lipidici.

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Questo elaborato ha avuto come obiettivo la modifica di un modello matematico di potenziale d’azione ventricolare umano per migliorare la relazione che lega la durata del potenziale d’azione all’incremento degli intervalli diastolici, al fine di riprodurre correttamente i risultati sperimentali noti in letteratura. Ruolo principe nell’analisi e nell’implementazione di tale modello è stato quello dello ione calcio, coinvolto in numerosi processi chimici all’interno della cellula cardiaca, e responsabile anche della sua contrazione. Tutte le modifiche effettuate sono state fatte preservando la dipendenza inversa tra la durata del potenziale d’azione e le variazioni di calcio extracellulare, che costituiva il punto di forza del modello considerato rispetto alla sua versione originale. Le modifiche effettuate hanno riguardato in parte la struttura del modello (compartimenti, volumi) e in parte il calcium handling, ovvero la gestione del Ca2+ all’interno della cellula, in termini di flussi e correnti. Il modello così ottenuto, denominato “newORk”, è stato validato rispetto a numerosi protocolli sperimentali (sia di voltage-clamp, sia di current-clamp) presenti in letteratura e i risultati di simulazione hanno dimostrato un comportamento coerente con i risultati in vitro. In particolare la risposta del modello al protocollo S1S2, che non era fisiologica nel modello precedente, viene adesso riprodotta correttamente dal nuovo modello, presentando un aumento dell’APD all’aumentare dell’intervallo diastolico considerato. Il modello qui descritto può quindi essere ritenuto un importante, per quanto specifico, miglioramento nella descrizione matematica della elettrofisiologia cardiaca umana e potrà essere utilizzato per esplorare contesti clinici in cui le concentrazioni di calcio nel sistema cardiocircolatorio si modificano, come per esempio la terapia dialitica.

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L'utilizzo di polimeri organici coniugati in dispositivi elettronici per applicazioni biologiche, grazie alle loro proprietà meccaniche ed elettriche, insieme alla loro biocompatibilità, è un campo di ricerca relativamente nuovo e in rapida espansione. In questo lavoro di tesi si utilizza la tecnica del Voltage Clamp in configurazione whole cell per caratterizzare le proprietà elettrofisiologiche della linea cellulare di glioblastoma multiforme (T98G) e per registrare le correnti ioniche di cellule adese su una matrice polimerica biocompatibile di poli(etilenediossitiofene)-poli(stirenesulfonato) (PEDOT:PSS). La tecnica consiste nel bloccare il potenziale di membrana al valore desiderato, secondo un preciso protocollo di stimolazione, misurando la corrente necessaria per mantenere costante il potenziale presente tra le due superfici della membrana cellulare. Nella prima parte del lavoro le cellule sono state perfuse con farmaci inibitori dei canali potassio, prima con il bloccante non specifico tetraetilammonio (TEA), e poi selettivamente tramite bloccanti specifici come iberiotossina e dendrotossina. Il 44% circa delle cellule ha evidenziato una significativa corrente residua riconducibile all'attività dei canali ionici voltaggio-dipendenti Kv1.2. Al contrario nelle cellule restanti questi canali non sono espressi. Successivamente, sempre utilizzando le T98G, si è analizzato come lo stato di ossido-riduzione del polimero coniugato PEDOT:PSS possa influenzare le correnti dei canali ionici di membrana; è emerso che il substrato di PEDOT:PSS ridotto provoca una diminuzione significativa della corrente registrata rispetto al substrato di controllo (petri in polistirene). Questi risultati sono stati confrontati con le curve di proliferazione delle cellule T98G coltivate per 24h, 48h e 72h sui diversi substrati considerati, evidenziando interessanti correlazioni nel caso del substrato PEDOT:PSS ridotto.

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The betaine/GABA transporter BGT1 is one of the most important osmolyte transporters in the kidney. BGT1 is a member of the neurotransmitter sodium symporter (NSS) family, facilitates Na+/Cl--coupled betaine uptake to cope with hyperosmotic stress. Betaine transport in kidney cells is upregulated under hypertonic conditions by a yet unknown mechanism when increasing amounts of intracellular BGT1 are inserted into the plasma membrane. Re-establishing isotonicity results in ensuing depletion of BGT1 from the membrane. BGT1 phosphorylation on serines and threonines might be a regulation mechanism. In the present study, four potential PKC phosphorylation sites were mutated to alanines and the responses to PKC activators, phorbol 12-myristate acetate (PMA) and dioctanoyl-sn-glycerol (DOG) were determined. GABA-sensitive currents were diminished after 30 min preincubation with these PKC activators. Staurosporine blocked the response to DOG. Three mutants evoked normal GABA-sensitive currents but currents in oocytes expressing the mutant T40A were greatly diminished. [3H]GABA uptake was also determined in HEK-293 cells expressing EGFP-tagged BGT1 with the same mutations. Three mutants showed normal upregulation of GABA uptake after hypertonic stress, and downregulation by PMA was normal compared to EGFP-BGT1. In contrast, GABA uptake by the T40A mutant showed no response to hypertonicity or PMA. Confocal microscopy of the EGFP-BGT1 mutants expressed in MDCK cells, grown on glass or filters, revealed that T40A was present in the cytoplasm after 24 h hypertonic stress while the other mutants and EGFP-BGT1 were predominantely present in the plasma membrane. All four mutants co-migrated with EGFP-BGT1 on Western blots suggesting they are full-length proteins. In conclusion, T235, S428, and S564 are not involved in downregulation of BGT1 due to phosphorylation by PKC. However, T40 near the N-terminus may be part of a hot spot important for normal trafficking or insertion of BGT1 into the plasma membrane. Additionally, a link between substrate transport regulation, insertion of BGT1 into the plasma membrane and N-glycosylation in the extracellular loop 2 (EL2) could be revealed. The functional importance of two predicted N-glycosylation sites, which are conserved in EL2 within the NSS family were investigated for trafficking, transport and regulated plasma membrane insertion by immunogold-labelling, electron microscopy, mutagenesis, two-electrode voltage clamp measurements in Xenopus laevis oocytes and uptake of radioactive-labelled substrate into MDCK cells. Trafficking and plasma membrane insertion of BGT1 was clearly promoted by proper N-glycosylation in both, oocytes and MDCK cells. De-glycosylation with PNGase F or tunicamycin led to a decrease in substrate affinity and transport rate. Mutagenesis studies revealed that in BGT1 N183 is the major N-glycosylation site responsible for full protein activity. Replacement of N183 with aspartate resulted in a mutant, which was not able to bind N-glycans suggesting that N171 is a non-glycosylated site in BGT1. N183D exhibited close to WT transport properties in oocytes. Surprisingly, in MDCK cells plasma membrane insertion of the N183D mutant was no longer regulated by osmotic stress indicating unambiguously that association with N-glycans at this position is linked to osmotic stress-induced transport regulation in BGT1. The molecular transport mechanism of BGT1 remains largely unknown in the absence of a crystal structure. Therefore investigating the structure-function relationship of BGT1 by a combination of structural biology (2D and 3D crystallization) and membrane protein biochemistry (cell culture, substrate transport by radioactive labeled GABA uptake into cells and proteoliposomes) was the aim of this work. While the functional assays are well established, structure determination of eukaryotic membrane transporters is still a challenge. Therefore, a suitable heterologous expression system could be defined, starting with cloning and overexpression of an optimized gene. The achieved expression levels in P. pastoris were high enough to proceed with isolation of BGT1. Furthermore, purification protocols could be established and resulted in pure protein, which could even be reconstituted in an active form. The quality and homogeneity of the protein allowed already 2D and 3D crystallization, in which initial crystals could be obtained. Interestingly, the striking structural similarity of BGT1 to the bacterial betaine transporter BetP, which became a paradigm for osmoregulated betaine transport, provided information on substrate coordination in BGT1. The structure of a BetP mutant that showed activity for GABA was solved to 3.2Å in complex with GABA in an inward facing open state. This structure shed some light into the molecular transport mechanisms in BGT1 and might help in future to design conformationally locked BGT1 to enforce the on-going structure determination.

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HeLa cells expressing wild-type connexin43, connexin40 or connexin45 and connexins fused with a V5/6-His tag to the carboxyl terminus (CT) domain (Cx43-tag, Cx40-tag, Cx45-tag) were used to study connexin expression and the electrical properties of gap junction channels. Immunoblots and immunolabeling indicated that tagged connexins are synthesized and targeted to gap junctions in a similar manner to their wild-type counterparts. Voltage-clamp experiments on cell pairs revealed that tagged connexins form functional channels. Comparison of multichannel and single-channel conductances indicates that tagging reduces the number of operational channels, implying interference with hemichannel trafficking, docking and/or channel opening. Tagging provoked connexin-specific effects on multichannel and single-channel properties. The Cx43-tag was most affected and the Cx45-tag, least. The modifications included (1) V j-sensitive gating of I j (V j, gap junction voltage; I j, gap junction current), (2) contribution and (3) kinetics of I j deactivation and (4) single-channel conductance. The first three reflect alterations of fast V j gating. Hence, they may be caused by structural and/or electrical changes on the CT that interact with domains of the amino terminus and cytoplasmic loop. The fourth reflects alterations of the ion-conducting pathway. Conceivably, mutations at sites remote from the channel pore, e.g., 6-His-tagged CT, affect protein conformation and thus modify channel properties indirectly. Hence, V5/6-His tagging of connexins is a useful tool for expression studies in vivo. However, it should not be ignored that it introduces connexin-dependent changes in both expression level and electrophysiological properties.

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Connexin45 (Cx45) hemichannels (HCs) open in the absence of Ca(2+) and close in its presence. To elucidate the underlying mechanisms, we examined the role of extra- and intracellular Ca(2+) on the electrical properties of HCs. Experiments were performed on HeLa cells expressing Cx45 using electrical (voltage clamp) and optical (Ca(2+) imaging) methods. HCs exhibit a time- and voltage-dependent current (I(hc)), activating with depolarization and inactivating with hyperpolarization. Elevation of [Ca(2+)](o) from 20 nM to 2 μM reversibly decreases I(hc), decelerates its rate of activation, and accelerates its deactivation. Our data suggest that [Ca(2+)](o) modifies the channel properties by adhering to anionic sites in the channel lumen and/or its outer vestibule. In this way, it blocks the channel pore and reversibly lowers I(hc) and modifies its kinetics. Rapid lowering of [Ca(2+)](o) from 2 mM to 20 nM, achieved early during a depolarizing pulse, led to an outward I(hc) that developed with virtually no delay and grew exponentially in time paralleled by unaffected [Ca(2+)](i). A step increase of [Ca(2+)](i) evoked by photorelease of Ca(2+) early during a depolarizing pulse led to a transient decrease of I(hc) superimposed on a growing outward I(hc); a step decrease of [Ca(2+)](i) elicited by photoactivation of a Ca(2+) scavenger provoked a transient increase in I(hc). Hence, it is tempting to assume that Ca(2+) exerts a direct effect on Cx45 hemichannels.

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Human HeLa cells expressing mouse connexin30 were used to study the electrical properties of gap junction channel substates. Experiments were performed on cell pairs using a dual voltage-clamp method. Single-channel currents revealed discrete levels attributable to a main state, a residual state, and five substates interposed, suggesting the operation of six subgates provided by the six connexins of a gap junction hemichannel. Substate conductances, gamma(j,substate), were unevenly distributed between the main-state and the residual-state conductance (gamma(j,main state) = 141 pS, gamma(j,residual state) = 21 pS). Activation of the first subgate reduced the channel conductance by approximately 30%, and activation of subsequent subgates resulted in conductance decrements of 10-15% each. Current transitions between the states were fast (<2 ms). Substate events were usually demarcated by transitions from and back to the main state; transitions among substates were rare. Hence, subgates are recruited simultaneously rather than sequentially. The incidence of substate events was larger at larger gradients of V(j). Frequency and duration of substate events increased with increasing number of synchronously activated subgates. Our mathematical model, which describes the operation of gap junction channels, was expanded to include channel substates. Based on the established V(j)-sensitivity of gamma(j,main state) and gamma(j,residual state), the simulation yielded unique functions gamma(j,substate) = f(V(j)) for each substate. Hence, the spacing of subconductance levels between the channel main state and residual state were uneven and characteristic for each V(j).

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Human HeLa cells transfected with mouse connexin45 were used to explore the experimental conditions suitable to measure currents carried by gap junction hemichannels. Experiments were performed with a voltage-clamp technique and whole-cell recording. Lowering [Ca(2+)](o) from 2 mM to 20 nM evoked an extra current, I (m), putatively carried by Cx45 hemichannels. However, the variability of I (m) (size, voltage sensitivity, kinetics) suggested the involvement of other channels. The finding that growth medium in the incubator increased the osmolarity with time implied that volume-regulated anion channels (VRAC) may participate. This assumption was reinforced by the following observations. On the one hand, keeping [Ca(2+)](o) normal while the osmolarity of the extracellular solution was reduced from 310 to 290 mOsm yielded a current characteristic of VRAC; I (VRAC) activated/deactivated at negative/positive voltage, giving rise to the conductance functions g (VRAC,inst)=f(V (m)) (inst: instantaneous; V (m): membrane potential) and g (VRAC,ss)=f(V (m)) (ss: steady state). Moreover, it was reversibly inhibited by mibefradil, a Cl(-)channel blocker (binding constant K (d)=38 microM, Hill coefficient n=12), but not by the gap junction channel blocker 18alpha-glycyrrhetinic acid. On the other hand, minimizing the osmotic imbalance while [Ca(2+)](o) was reduced led to a current typical for Cx45 hemichannels; I (hc) activated/deactivated at positive/negative voltage. Furthermore, it was reversibly inhibited by 18alpha-glycyrrhetinic acid or palmitoleic acid, but not by mibefradil. Computations based on g (VRAC,ss)=f(V (m)) and g (hc,ss)=f(V (m)) indicated that the concomitant operation of both currents results in a bell-shaped conductance-voltage relationship. The functional implications of the data presented are discussed. Conceivably, VRAC and hemichannels are involved in a common signaling pathway.

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DMT1 (divalent metal-ion transporter 1) is a widely expressed metal-ion transporter that is vital for intestinal iron absorption and iron utilization by most cell types throughout the body, including erythroid precursors. Mutations in DMT1 cause severe microcytic anaemia in animal models. Four DMT1 isoforms that differ in their N- and C-termini arise from mRNA transcripts that vary both at their 5'-ends (starting in exon 1A or exon 1B) and at their 3'-ends giving rise to mRNAs containing (+) or lacking (-) the 3'-IRE (iron-responsive element) and resulting in altered C-terminal coding sequences. To determine whether these variations result in functional differences between isoforms, we explored the functional properties of each isoform using the voltage clamp and radiotracer assays in cRNA-injected Xenopus oocytes. 1A/IRE+-DMT1 mediated Fe2+-evoked currents that were saturable (K(0.5)(Fe) approximately 1-2 microM), temperature-dependent (Q10 approximately 2), H+-dependent (K(0.5)(H) approximately 1 muM) and voltage-dependent. 1A/IRE+-DMT1 exhibited the provisional substrate profile (ranked on currents) Cd2+, Co2+, Fe2+, Mn2+>Ni2+, V3+>>Pb2+. Zn2+ also evoked large currents; however, the zinc-evoked current was accounted for by H+ and Cl- conductances and was not associated with significant Zn2+ transport. 1B/IRE+-DMT1 exhibited the same substrate profile, Fe2+ affinity and dependence on the H+ electrochemical gradient. Each isoform mediated 55Fe2+ uptake and Fe2+-evoked currents at low extracellular pH. Whereas iron transport activity varied markedly between the four isoforms, the activity for each correlated with the density of anti-DMT1 immunostaining in the plasma membrane, and the turnover rate of the Fe2+ transport cycle did not differ between isoforms. Therefore all four isoforms of human DMT1 function as metal-ion transporters of equivalent efficiency. Our results reveal that the N- and C-terminal sequence variations among the DMT1 isoforms do not alter DMT1 functional properties. We therefore propose that these variations serve as tissue-specific signals or cues to direct DMT1 to the appropriate subcellular compartments (e.g. in erythroid cells) or the plasma membrane (e.g. in intestine).

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We describe two Chinese families with a mild form of the myotonia congenita due to novel chloride channel (ClCN1) mutations. In one case, heterozygous I553F and H555N mutations were found. The patient shared the I553F mutation with his healthy father, and his mother had a history of mild myotonia when she was younger. In another family, autosomal dominant myotonia congenita was due to a L844F change. The physiological effects of the mutations were examined by using the two-electrode voltage-clamp technique after expression of the channels in Xenopus oocytes. All mutations drastically shifted the voltage required for half-maximal activation, more under conditions mimicking the homozygous situation, than under conditions mimicking the heterozygous situation. The larger effect was seen in the compound heterozygous situation combining the I553F and the H555N mutations. Our data suggest that myotonia congenita caused by CLCN1 mutations in Chinese have similar variable features to those found in the West.

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Vitamin C (L-ascorbic acid) is an essential micronutrient that serves as an antioxidant and as a cofactor in many enzymatic reactions. Intestinal absorption and renal reabsorption of the vitamin is mediated by the epithelial apical L-ascorbic acid cotransporter SVCT1 (SLC23A1). We explored the molecular mechanisms of SVCT1-mediated L-ascorbic acid transport using radiotracer and voltage-clamp techniques in RNA-injected Xenopus oocytes. L-ascorbic acid transport was saturable (K(0.5) approximately 70 microM), temperature dependent (Q(10) approximately 5), and energized by the Na(+) electrochemical potential gradient. We obtained a Na(+)-L-ascorbic acid coupling ratio of 2:1 from simultaneous measurement of currents and fluxes. L-ascorbic acid and Na(+) saturation kinetics as a function of cosubstrate concentrations revealed a simultaneous transport mechanism in which binding is ordered Na(+), L-ascorbic acid, Na(+). In the absence of L-ascorbic acid, SVCT1 mediated pre-steady-state currents that decayed with time constants 3-15 ms. Transients were described by single Boltzmann distributions. At 100 mM Na(+), maximal charge translocation (Q(max)) was approximately 25 nC, around a midpoint (V(0.5)) at -9 mV, and with apparent valence approximately -1. Q(max) was conserved upon progressive removal of Na(+), whereas V(0.5) shifted to more hyperpolarized potentials. Model simulation predicted that the pre-steady-state current predominantly results from an ion-well effect on binding of the first Na(+) partway within the membrane electric field. We present a transport model for SVCT1 that will provide a framework for investigating the impact of specific mutations and polymorphisms in SLC23A1 and help us better understand the contribution of SVCT1 to vitamin C metabolism in health and disease.

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Neurons in Action (NIA1, 2000; NIA1.5, 2004; NIA2, 2007), a set of tutorials and linked simulations, is designed to acquaint students with neuronal physiology through interactive, virtual laboratory experiments. Here we explore the uses of NIA in lecture, both interactive and didactic, as well as in the undergraduate laboratory, in the graduate seminar course, and as an examination tool through homework and problem set assignments. NIA, made with the simulator NEURON (http://www.neuron.yale.edu/neuron/), displays voltages, currents, and conductances in a membrane patch or signals moving within the dendrites, soma and/or axon of a neuron. Customized simulations start with the plain lipid bilayer and progress through equilibrium potentials; currents through single Na and K channels; Na and Ca action potentials; voltage clamp of a patch or a whole neuron; voltage spread and propagation in axons, motoneurons and nerve terminals; synaptic excitation and inhibition; and advanced topics such as channel kinetics and coincidence detection. The user asks and answers "what if" questions by specifying neuronal parameters, ion concentrations, and temperature, and the experimental results are then plotted as conductances, currents, and voltage changes. Such exercises provide immediate confirmation or refutation of the student's ideas to guide their learning. The tutorials are hyperlinked to explanatory information and to original research papers. Although the NIA tutorials were designed as a sequence to empower a student with a working knowledge of fundamental neuronal principles, we find that faculty are using the individual tutorials in a variety of educational situations, some of which are described here. Here we offer ideas to colleagues using interactive software, whether NIA or another tool, for educating students of differing backgrounds in the subject of neurophysiology.

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Despite efforts implicating the cationic channel transient receptor potential melastatin member 4 (TRPM4) to cardiac, nervous, and immunological pathologies, little is known about its structure and function. In this study, we optimized the requirements for purification and extraction of functional human TRPM4 protein and investigated its supra-molecular assembly. We selected the Xenopus laevis oocyte expression system because it lacks endogenous TRPM4 expression, it is known to overexpress functional human membrane channels, can be used for structure-function analysis within the same system, and is easily scaled to improve yield and develop moderate throughput capabilities through the use of robotics. Negative-stain electron microscopy (EM) revealed various sized low-resolution particles. Single particle analysis identified the majority of the projections represented the monomeric form with additional oligomeric structures potentially characterized as tetramers. Two-electrode voltage clamp electrophysiology demonstrated that human TRPM4 is functionally expressed at the oocyte plasma membrane. This study opens the door for medium-throughput screening and structure-function determination of this important therapeutically relevant target.

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Augmented inositol 1,4,5-trisphosphate receptor (InsP3R) function has been linked to a variety of cardiac pathologies, including cardiac arrhythmia. The contribution of inositol 1,4,5-trisphosphate-induced Ca2+ release (IP3ICR) in excitation-contraction coupling (ECC) under physiological conditions, as well as under cellular remodelling, remains controversial. Here we test the hypothesis that local IP3ICR directly affects ryanodine receptor (RyR) function and subsequent Ca2+-induced Ca2+ release in atrial myocytes. IP3ICR was evoked by UV-flash photolysis of caged InsP3 under whole-cell configuration of the voltage-clamp technique in atrial myocytes isolated from C57/BL6 mice. Photolytic release of InsP3 was accompanied by a significant increase in the Ca2+ release event frequency (4.14±0.72 vs. 6.20±0.76 events (100 μm)−1 s−1). These individual photolytically triggered Ca2+ release events were identified as Ca2+ sparks, which originated from RyR openings. This was verified by Ca2+ spark analysis and pharmacological separation between RyR and InsP3R-dependent sarcoplasmic reticulum (SR)-Ca2+ release (2-aminoethoxydiphenyl borate, xestospongin C, tetracaine). Significant SR-Ca2+ flux but eventless SR-Ca2+ release through InsP3R were characterized using SR-Ca2+ leak/SR-Ca2+ load measurements. These results strongly support the idea that IP3ICR can effectively modulate RyR openings and Ca2+ spark probability. We conclude that eventless and highly efficient InsP3-dependent SR-Ca2+ flux is the main mechanism of functional cross-talk between InsP3Rs and RyRs, which may be an important factor in the modulation of ECC sensitivity.