Ion Channels in Cardiac Non-Excitable Cells: From Single-Cell Atlases to Disease
Weixuan Chen, Ashlyn A. Fitzgerald, Brett Bardallis, Anu Priya Bharathi Rajan, Pengfei LiangCardiovascular disease is shaped not only by cardiomyocyte excitability but also by electrophysiological and membrane-signaling programs in cardiac fibroblasts, endothelial cells, mural cells, immune cells, and adipocytes. Recent single-cell RNA sequencing, spatial transcriptomic, and disease-atlas studies have revealed broad expression of ion-channel transcripts across these non-excitable cardiac cell populations. However, transcript detection alone does not establish functional channel activity, cell-state specificity, or therapeutic relevance. This narrative Review therefore focuses on mechanistically supported channel–cell–disease axes rather than providing an exhaustive catalogue of ion channels detected in cardiac non-myocytes. We synthesize evidence for mechanosensitive channels, transient receptor potential channels, calcium-entry pathways, acid-sensing channels, and potassium, sodium, and chloride channels, as well as connexin hemichannels and pannexin channels. We emphasize studies in which omics-based channel nomination is supported by functional validation through electrophysiology, Ca2+ imaging, mechanostimulation, pharmacological intervention, or cell-selective genetic perturbation. Particular attention is given to mechanisms linking mechanical stress, Ca2+ entry, membrane potential, cell-volume regulation, ATP release, immune activation, vascular tone, fibrosis, and metabolic dysfunction. We also identify key evidence gaps where expression-based observations require direct functional testing in human tissues and disease-relevant cardiac models. By distinguishing atlas-level association from causal channel function, this Review provides a framework for prioritizing non-myocyte ion-channel mechanisms as therapeutic targets in cardiovascular diseases.