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Charpentier, F.

Publications and source records attributed to Charpentier, F..

4 recordsLinked to original sources

Cardiac gene therapy with PDE2A limits remodeling and arrhythmias in mouse models of heart failure induced by catecholamines

BACKGROUNDConstitutive cardiac PDE2 activation was shown to protect against contractile dysfunction and arrhythmia in heart failure (HF). However, it remains unknown whether an acute elevation of PDE2 is efficient to prevent maladaptive remodeling and arrhythmia. In this study we tested whether increasing acutely PDE2A activity in preclinical models of HF using cardiac PDE2 gene transfer could be of therapeutic value. METHODS AND RESULTSC57BL/6 male mice were injected with serotype 9 adeno-associated viruses (AAV9) encoding for PDE2A, or luciferase (LUC). Cardiac function assessed by echocardiography unveiled neither structural change nor dysfunction consecutive to PDE2A overexpression while AAV9 inoculation led to a {approx}10-fold rise of PDE2A protein levels. Two weeks after AAV9 injections, mice were implanted with osmotic minipumps delivering NaCl or isoproterenol (Iso) (60 mg/kg/day) or Iso and phenylephrine (Iso+Phe, 30 mg/kg/day each) for 2 weeks. In LUC mice, chronic infusion with Iso increased left ventricular (LV) weight over body weight ratio, promoted fibrosis and decreased ejection fraction, but animals overexpressing PDE2A were protected towards these deleterious effects. Similarly, concomitant treatment with Iso+Phe promoted LV contractile dysfunction, fibrosis and apoptosis in LUC mice, while PDE2A overexpression limited these adverse outcomes. Furthermore, inotropic responses to Iso of ventricular cardiomyocytes isolated from Iso+Phe-LUC mice loaded with 1 {micro}mol/L Fura-2AM and stimulated at 1 Hz to record calcium transients and sarcomere shortening were dampened. Chronic treatment with catecholamines favoured spontaneous calcium waves upon {beta}-AR stimulation at the cellular level and promoted susceptibility to ventricular arrhythmias in vivo evoked by catheter-mediated ventricular pacing after Iso and atropine injection. However, these adverse effects were blunted by the cardiac gene therapy with PDE2A. CONCLUSIONGene therapy with PDE2A limits cardiac adverse left ventricle remodeling and dysfunction induced by catecholamines as well as ventricular arrhythmias, providing evidence that acutely increasing PDE2A activity could prevent progression towards HF.

physiology↗

Predicting hERG repolarization power at 37°C from recordings at room temperature

Mutations in the KCNH2 gene cause long or short QT syndromes (LQTS or SQTS) predisposing to life-threatening arrhythmias. KCNH2 encodes for the voltage-gated K+ channel hERG involved in the late repolarization phase of the cardiac action potential (AP). For the last decades, sequencing KCNH2 has provided a plethora of variants associated or not with clear pathological cardiac phenotypes. Identifying pathogenic or likely pathogenic variants from the benign ones would provide useful information to clarify the genetic background of LQTS patients and relatives, and to stratify the risk of adverse events. In face of a wide spectrum of hERG biophysical defects, we looked for a way to summarize the net loss or gain of function in a unique index. In a previous work, we defined as the repolarization power the time integral of the K+ currents developed during an AP clamp. Here, with the aim of accelerating the functional characterization of hERG variants using automated patch-clamp, we adapted the AP-clamp protocol to establish, at room temperature, at which the recording success rate is high, a repolarization power index, as reliable and informative as the one measured at physiological temperature. We also illustrate that the repolarization power determined at room temperature is predictive of the repolarization power at physiological temperature for 2 pathogenic hERG variants with different biophysical dysfunctions.

physiology↗

Optical control of cardiac rhythm by in vivo photoactivation of an ERG channel peptide inhibitor

RATIONALECardiac rhythm, conduction and synchronization of electrical activity require the coordinated action of different types of ion channels that differ according to transmural and regional specificities. Classical pharmacology affects these ion channels in a non-regionalized way which explains why treating arrhythmias, that often occur in specific foci, has often limited efficacy in addition to negative side-effects on non-targeted organs. Photopharmacology is an emergent technology that has the potential to counteract all the negative aspects of classical pharmacology by restricting drug activity in a spatio-temporal manner. OBJECTIVEWe tested the potential of photopharmacology in specifically regulating heart activity by using a caged derivative of a natural peptide inhibitor of the ERG channel, BeKm1. The peptide was uncaged and activity monitored in vitro on a cell line expressing the hERG channel, on human cardiomyocytes derived from iPS cells, and ex vivo and in vivo on zebrafish larvae and rat hearts. METHODS AND RESULTSCaged BeKm-1 is inactive and fully active upon uncaging. Uncaging of the peptide on human iPS-derived cardiomyocytes enlarges the action potential duration and triggers arrhythmias. Uncaging also triggers bradycardia and disturbs cardiac conduction within the atria in perfused rat hearts upon illumination. The potency of photopharmacology for cardiac electrical modulation was further validated in zebrafish larvae where illumination of the caged compound induces bradycardia and atrio-ventricular desynchrony. Finally, in anesthetized rats, illumination of the caged peptide in the right atria, containing the sino-atrial node, leads to bradycardia without arrhythmia. CONCLUSIONSThis report demonstrates that photopharmacology, using the caged peptide strategy, can be used for dynamically regulating cardiac electrical activity in vivo and that spatial illumination restriction can dissociate the bradycardic effect from the arrhythmic one. The technology is applicable to all kinds of cardiac ion channels and regions of interest to create arrhythmogenic models or investigate new clinical applications.

pharmacology and toxicology↗

SARS-CoV2 E and 3a proteins are inducers of pannexin currents

Controversial reports have suggested that SARS-CoV E and 3a proteins may be viroporins that conduct currents through the plasma membrane of the infected cells. If true, these proteins would represent accessible targets for the development of new antiviral drugs by using high-throughput patch-clamp techniques. Here we aimed at better characterizing the cell responses induced by E or 3a protein with a particular focus on the ion conductances measured at the cell surface. First, we show that expression of SARS-CoV-2 E or 3a protein in CHO cells gives rise to cells with newly-acquired round shape, tending to detach from the Petri dish. This suggests that cell death is induced upon expression of E or 3a protein. We confirmed this hypothesis by using flow cytometry, in agreement with earlier reports on other cell types. In adhering cells expressing E or 3a protein, whole-cell currents were in fact not different from the control condition indicating that E and 3a proteins are not plasma membrane viroporins. In contrast, recording currents on detached cells uncovered outwardly-rectifying currents, much larger than those observed in control. The current characteristics are reminiscent of what was previously observed in cells expressing SARS-CoV-1 E or 3a proteins. Herein, we illustrate for the first time that carbenoxolone blocks these outward currents suggesting that they are conducted by pannexin channels, mostly likely activated by cell morphology change and/or cell death. Alongside we also demonstrate that truncation of the C-terminal PDZ binding motifs reduces the proportion of dying cells but does not prevent pannexin currents suggesting distinct pathways for cell death and pannexin currents induced by E and 3a proteins. We conclude that SARS-CoV-2 E and 3a proteins are not acting as viroporins expressed at the plasma membrane. Author SummaryA viroporin (or viral porin) is a class of proteins that is encoded by a virus genome. It is named porin because its biological role is to conduct ions through a pore that it created in a lipid membrane such as the one surrounding a human cell. if such viroporin is present at the external membrane of a human cell infected by a virus, it can be an easy target of an antiviral agent which thus does not have to enter the cell to be active. One example of viroporin is the flu M2 protein that is the target of amantadine, an antiviral agent used against flu. In previous studies, two proteins of SARS-CoV viruses, named E protein and 3a protein, have been suggested to be viroporins at the surface of infected human cells, potentially opening a new research avenue against SARS. Here we demonstrate that both proteins are not viroporins at the external membrane but they rather trigger changes in the cell shape and promote cell death. They only indirectly induce the activity of a porin that is encoded by the cell genome, named pannexin.

cell biology↗