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Calamaio, S.

Publications and source records attributed to Calamaio, S..

3 recordsLinked to original sources

Exploring light chain cardiotoxicity in AL amyloidosis: Impact on hiPSC-derived Cardiomyocyte Activity

AimsImmunoglobulin light chain (AL) amyloidosis is a protein misfolding disease characterized by the systemic deposition of amyloid fibrils derived from monoclonal light chains (LCs). Cardiac involvement is the major determinant of prognosis and mortality, and beyond fibril accumulation, soluble cardiotoxic LCs play a critical role in disease progression. While current in vivo models like C. elegans and murine systems have demonstrated LC toxicity, they lack human relevance or fail to capture soluble LC-induced cardiotoxicity. This study aimed to characterize the electrophysiological effects of cardiotoxic LCs on a human-relevant model using human-induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs). Methods and ResultsTwo amyloidogenic cardiotoxic LCs (H3 and H6) from AL patients and one non-cardiotoxic LC (M10) from a multiple myeloma patient were biophysically characterized and tested in hiPSC-CMs at clinically relevant concentrations. Electrophysiological recordings revealed that H3 and H6 significantly reduced spontaneous action potential (AP) firing frequency and maximal upstroke velocity (dV/dt) in hiPSC-CMs, indicating impaired excitability. H6 also shortened AP duration. H3 exposure led to a [~]40% reduction in peak sodium current density and altered inactivation kinetics of the L-type calcium current, without affecting major pacemaker or repolarizing potassium (IKr or IKs) currents. In contrast, M10 had no effect on any measured parameter, validating the models ability to discriminate toxic from non-toxic LCs. ConclusionThis study demonstrates that hiPSC-CMs provide a clinically relevant human model to investigate LC-induced cardiotoxicity. Cardiotoxic LCs exert distinct but converging electrophysiological impairments, including disruption of sodium and L-type calcium currents, contributing to reduced excitability and altered AP morphology. These findings provide mechanistic insights into AL amyloidosis-related cardiac dysfunction and establish a foundation for future therapeutic screening targeting soluble LC toxicity in a human context.

pathology↗

Lysosomal calcium signalling contributes to the acute α-adrenergic response via calcium-stimulated adenylyl cyclase 1 and 8

Inositol trisphosphate (IP3), a calcium (Ca2+)-mobilizing second messenger, releases Ca2+ from the sarcoplasmic reticulum (SR) via IP3 receptors and modulates adenylyl cyclase (AC) activity in atrial myocytes. Lysosomes participate in Ca2+ homeostasis by mobilising Ca2+ in response to Nicotinic Acid Adenine Dinucleotide Phosphate (NAADP). We postulate that both downstream activation of Ca2+ sensitive AC (AC1 and AC8) and lysosomal Ca2+ signalling in response to IP3R activation contribute to atrial myocyte function and pacemaking. Ectopic application of phenylephrine (PE) increased chronotropy and inotropy and this response was reduced in the presence of NAADP pathway inhibitors (BZ-194 and SAN4825) and Bafilomycin A1. PE increased cyclic adenosine 3-5 monophosphate (cAMP) activity in neonatal rat atrial myocytes (NRAMs) and this was inhibited by NAADP pathway inhibitors. This inhibition was not observed in neonatal rat ventricular myocytes (NRVMs), revealing specificity of this response to NRAMs. We investigated expression of AC1 and AC8 as a possible explanation to these observations. Genetic perturbation of AC1 and AC8 by double-knockout of Adcy1 and Adcy8 in a mouse model showed a decrease in positive chronotropic and inotropic response upon cumulative dose of PE in atrial tissue, reduced PE stimulated amplitude of Ca2+ transient in isolated atrial myocytes and presented decreased cytosolic cAMP levels in response to PE in neonatal atrial myocytes that was not inhibited by NAADP pathway inhibitors. Our data identifies a link between NAADP and -adrenergic signalling pathways in atrial myocytes, highlighting that lysosomal Ca2+ is an important component of -adrenergic stimulation in the cardiac atria and warrants further investigation.

physiology↗

Lysosomal signalling pathways influence heart rhythm, and regulate atrial function

In the heart, endogenous nicotinic acid adenine dinucleotide phosphate (NAADP) triggers lysosomal calcium (Ca2+) release to augment sarcoplasmic reticulum (SR) Ca2+ sequestration, producing larger Ca2+ transients. However, the role of lysosomal Ca2+ signals in pacemaker activity, a distinct Ca2+-operated function of the sinoatrial node (SAN), or in the atrial myocardium has not been investigated. Pharmacological or genetic ablation of the NAADP pathway inhibits the spontaneous beating rate response to beta-adrenergic stimulation in intact SAN. We found intracellular signaling microdomains between lysosomes and neighboring SR or mitochondria in mouse, and goat tissue. The spatial relationship between lysosomes and other Ca2+-handling organelles are altered in goat atrial fibrillation. Furthermore, we demonstrate atrial myocytes produce cAMP in response to lysosomal signaling, adding a novel trigger for cyclic nucleotide signaling. Our findings support the hypothesis that lysosomal Ca2+ signaling contributes to regulation of cardiomyocyte cAMP levels and pacemaker activity.

physiology↗