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Schneider-Warme, F.

Publications and source records attributed to Schneider-Warme, F..

6 recordsLinked to original sources

Channelrhodopsin Ion Selectivity Determines Mechanisms and Efficacy of Optogenetic Defibrillation in Human Atria and Ventricles

Optogenetic defibrillation uses light-gated ion channels to terminate cardiac arrhythmias through targeted illumination. Previous studies assessed the feasibility of using either cation (e.g. ChR2) or anion (e.g. GtACR1) non-selective channels, both of which depolarise resting cardiomyocytes upon photoactivation. In contrast, recently identified light-gated K+-channels (e.g. WiChR) suppress cardiomyocyte activity while maintaining the membrane potential near its resting state. Here, we use biophysically detailed simulations to compare the defibrillation potential of ChR2, GtACR1, and WiChR. Single-cell simulations show that activation of ChR2 and GtACR1 markedly increase diastolic intracellular Ca2+ concentration (by 42.6% and 52.6%, respectively), whereas WiChR induces only minimal changes (4.0% increase), suggesting a lower pro-arrhythmogenic risk. WiChR activation, however, slightly increases intracellular Na+ levels (by 15.1% compared to 0.1% and 3.4% for ChR2 and GtACR), consistent with the residual Na+ permeability of all currently available K+-selective channelrhodopsins. Simulations of human ventricles and atria demonstrate that GtACR1 most effectively terminates re-entrant arrhythmias at low light intensities, while WiChR achieves comparable efficacy at light levels [≥]5 mW/mm2. Complementary tissue-scale simulations reveal that defibrillation is either based on depolarisation within the excitable gap, followed by fast Na+ channel inactivation (depolarising variants ChR2 and GtACR1), or based on a reduction in membrane resistance supporting arrhythmia termination at sufficiently high light levels (large-conductance ion channels GtACR1 and WiChR). Overall, our findings identify channelrhodopsin ion selectivity as a key determinant of both arrhythmia termination success and mechanisms underlying defibrillation. Key points summaryO_LIWe use computational simulations to compare non-selective cation (ChR2), anion (GtACR1), and K+-selective channelrhodopsins (WiChR) for optogenetic termination of re-entrant arrhythmia. C_LIO_LISingle-cardiomyocyte simulations suggest that ChR2 and GtACR1 activation can cause progressive accumulation of intracellular Ca2+, which is minimised when using WiChR. C_LIO_LISimulations of human left ventricles and atria indicate that GtACR1 is most effective in terminating re-entrant arrhythmia at low light intensities, while WiChR becomes similarly effective at higher intensities. C_LIO_LITissue-scale simulations indicate distinct defibrillation mechanisms: Excitable gap extinction by de-novo action potential initiation followed by inactivation of fast Na+ channels for depolarising channelrhodopsins (ChR2, GtACR1), and reduction in membrane resistance for the large-conductance channels (GtACR1, WiChR), effectively clamping the membrane potential at each channels reversal potential at high light levels. C_LI

physiology↗

Enhanced iPSC-Cardiomyocyte Maturation via Combined 3D-Culture and Metabolic Cues

Human induced pluripotent stem cell-derived cardiomyocytes (iPSC-CM) have become an invaluable tool for disease modelling and drug testing. However, while many etiologies of heart failure involve defects in excitation-contraction coupling, mitochondrial energetics or both, iPSC-CM are limited by the developmental immaturity of these processes. Here, we report a combinatorial strategy to enhance the maturation of human iPSC-CM by integrating three-dimensional (3D) spheroid culture conditions with a defined hormone- and fatty acid-enriched maturation medium (MM). A comprehensive analysis of structural, electrophysiological and Ca2+ handling parameters was performed to evaluate cellular and functional maturation. The iPSC-CM generated under these conditions (3D_MM) exhibit many phenotypic characteristics that resemble those of isolated adult human CM, including (i) a rod-shaped morphology, (ii) cardiac ultrastructural features such as aligned myofilaments, unidirectional organized sarcomeres, and the presence of transverse (t)-tubules, (iii) refined action potential (AP) parameters and Ca2+ handling, and (iv) {beta}-adrenergic responsiveness and a positive force-frequency relationship. Compared with long-term (LT) monolayer cultures of 90 days or the individual cues (3D or MM alone), the 3D_MM protocol achieves mostly superior or at the least non-inferior maturation effects. This systematic investigation further demonstrates that while 3D culturing or MM alone improved specific aspects of maturation, only their synergistic combination produced a comprehensive enhancement of key CM processes, such as excitation-contraction coupling and mitochondrial energetics.

cell biology↗

Spatio-temporal dynamics of the fibrotic niche in cardiac repair

The heart is one of the least regenerative organs in humans, and ischemic heart disease is the leading cause of death worldwide. Understanding the cellular and molecular processes that occur during cardiac wound healing is an essential prerequisite to reducing health burden and improve cardiac function after myocardial tissue damage. By integrating single-cell RNA-sequencing with imaging-based spatial transcriptomics, we reconstructed the spatio-temporal dynamics of the fibrotic niche after ventricular injury in adult mice. Our analysis reveals dynamic regulation of local cell communication niches over time. We identified interactions that regulate cardiac repair, including fibroblast proliferation silencing by Trem2high macrophages that prevents excessive fibrosis. Moreover, we discovered a rare population of dedifferentiating cardiomyocytes during early post-lesion stages, which was sustained by signals from myeloid and lymphoid cells. Culturing non-regenerative mouse cardiomyocytes or human heart tissue with these niche factors reactivated progenitor gene expression and cell cycle activity. In summary, this spatio-temporal cell type atlas provides valuable insights into the heterocellular interactions that control cardiac repair. HighlightsO_LIscRNA-seq and in situ sequencing reveal spatio-temporal dynamics of heart repair C_LIO_LILocal heterocellular communication niches coordinate overall wound response C_LIO_LIFibroblast cell cycle silencing by Trem2high macrophages suppresses excessive fibrosis C_LIO_LICardiomyocyte plasticity is promoted by myeloid and lymphoid cells C_LI

systems biology↗

3D structure of fibroblasts and macrophages in the healthy and cryo-ablated heart

IntroductionCardiac non-myocytes (NM) play important roles in heart development, homeostasis, and lesion repair. To assess the relevance of different NM populations for cardiac (patho)physiology, a quantitative assessment of their abundance and structure in the different heart chambers is an essential prerequisite. We here present an experimental approach to determine the distribution, dimensions, and 3D morphology of fibroblasts (FB) and macrophages (M{Phi}) in healthy and pathologically remodelled hearts. Methods and resultsWe used Cre-loxP recombination to selectively target channelrhopsin-2 (ChR2)-eYFP to either FB or M{Phi} in healthy and cryo-ablated mouse hearts. Hearts were optically cleared using X-CLARITY and membrane-bound eYFP fluorescence was recorded by confocal microscopy. The resulting image stacks were segmented to generate 3D reconstructions of labelled cell populations in near native tissue. In doing so, we show that FB and M{Phi} have similar surface areas, volumes and morphologies, but that FB occupy larger fractional volumes than M{Phi} in all chambers of healthy murine hearts. Furthermore, M{Phi} appear primarily as single cells, whereas FB form extended networks of interconnected cells. In left-ventricular tissue following cryo-ablation, we observed large disordered networks of FB in the scar area with an increased volume occupied by FB both in the scar and remotely. In cryo-ablated ventricles, M{Phi} form comparatively small, but dense networks in the scar without changing their abundance in remote myocardium. ConclusionsOur study assesses the 3D distribution and structure of fluorescently labelled FB and M{Phi} in healthy and lesioned murine hearts. Based on 3D reconstructions of FB and M{Phi} networks, we quantified the surface areas and volumes of individual non-myocytes in the different chambers of the heart and in ventricular scar tissue, thus providing important quantitative data serving as basis for computational modelling of non-myocyte contributions to cardiac structure and physiology.

cell biology↗

Piezo1 stretch-activated channel activity differs between bone marrow-derived and cardiac tissue-resident macrophages

Macrophages (M{Phi}) play pivotal roles in tissue homeostasis and repair. Their mechanical environment recently emerged as a key modulator of various cell functions, and M{Phi} mechanosensitivity is likely to be critical for cellular activity in particular in a rhythmically contracting organ such as the heart. M{Phi}, in-vitro-differentiated from bone marrow (M{Phi}BM), form a popular cell model for research. This study explores the activity of stretch-activated ion channels (SAC) in murine M{Phi}BM and compares it to SAC activity in cardiac tissue-resident M{Phi} (M{Phi}TR). Our main findings are: i) M{Phi}BM and M{Phi}TR have stretch-induced currents, indicating expression of functional SAC at their plasma membrane; ii) the current profiles in M{Phi}BM and in M{Phi}TR show characteristics of cation non-selective SAC; iii) unlike in M{Phi}BM, Piezo1 ion channel activity at the plasma membrane of M{Phi}TR is not detectable, neither by assessing electrophysiological activity using the patch clamp technique, nor by measuring cytosolic calcium concentration upon perfusion with Yoda1, a Piezo1 channel agonist. In mature scars after ventricular cryoablation, stretch-induced current characteristics of M{Phi}TR are not significantly different compared to non-injured control tissue, even though scars are expected to contain a mix of pre-existing and circulation-recruited M{Phi}. This suggests that M{Phi} invading injured cardiac tissue either phenoconvert their mechanosensitivity from M{Phi}BM to M{Phi}TR, or that the in vitro differentiation protocols used to obtain M{Phi}BM generate cells that differ from M{Phi} recruited from the circulation during tissue repair in vivo. Further investigations will explore SAC identity in lineage-traced M{Phi} in scar tissue, and compare mechanosensitivity of circulating monocytes with that of M{Phi}BM. Key pointsO_LIM{Phi}BM and M{Phi}TR have stretch-induced currents, indicating expression of functional SAC at their plasma membrane; C_LIO_LIThe current profiles in M{Phi}BM and in M{Phi}TR show characteristics of cation non-selective SAC; C_LIO_LIUnlike in M{Phi}BM, Piezo1 ion channel activity at the plasma membrane of M{Phi}TR is not detectable C_LI

biophysics↗

Age-related structural and functional changes of the intracardiac nervous system

BackgroundAlthough aging is known to be associated with an increased incidence of both atrial and ventricular arrhythmias, there is limited knowledge about how Schwann cells (SC) and the intracardiac nervous system (iCNS) remodel with age. Here we investigate the differences in cardiac SC, parasympathetic nerve fibers, and muscarinic acetylcholine receptor M2 (M2R) expression in young and old mice. Additionally, we examine age-related changes in cardiac responses to sympathomimetic and parasympathomimetic drugs. Methods and ResultsLower SC density, lower SC proliferation and fewer parasympathetic nerve fibers were observed in cardiac and, as a control sciatic nerves from old (20-24 months) compared to young mice (2-3 months). In old mice, CSPG4 was increased in sciatic but not cardiac nerves. Expression of M2R was lower in ventricular myocardium and ventricular conduction system from old mice compared to young mice, while no significant difference was seen in M2R expression in sino-atrial or atrio-ventricular node pacemaker tissue. Heart rate was slower and PQ intervals were longer in Langendorff-perfused hearts from old mice. Ventricular tachycardia and fibrillation were more frequently observed in response to carbachol administration in hearts from old mice versus those from young mice. ConclusionsOn the background of reduced presence of SC and parasympathetic nerve fibers, and of lower M2R expression in ventricular cardiomyocytes and conduction system of aged hearts, the propensity of ventricular arrhythmogenesis upon parasympathomimetic drug application is increased. Whether this is caused by an increase in heterogeneity of iCNS structure and function remains to be elucidated. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=192 HEIGHT=200 SRC="FIGDIR/small/568538v1_ufig1.gif" ALT="Figure 1"> View larger version (53K): org.highwire.dtl.DTLVardef@11dbccdorg.highwire.dtl.DTLVardef@1563d75org.highwire.dtl.DTLVardef@dcda58org.highwire.dtl.DTLVardef@182e598_HPS_FORMAT_FIGEXP M_FIG C_FIG

physiology↗