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◆ Frontiers in pharmacology2026-01-01

Potassium channels as an ionic checkpoint in tumor immunity.

Huanle Wang, Yinan Zhang, Sufen Jiang, Xiaojiang Li, Yixin Zheng, Yukun Wang, Yue Xu, Cong Xia, Yan Yan

原始摘要(英文原文)· Original abstract
Potassium (K+) channels sustain immune-cell activation by coupling K+ flux to membrane potential, Ca2+ signaling, migration, and metabolic adaptation. In solid tumors, however, extracellular K+ accumulation, adenosine, hypoxia, acidosis, oxidative stress, and lipid stress can disrupt ionic homeostasis and channel function. Here, we define an ionic checkpoint as a context-dependent regulatory state in which K+ gradients, channel gating and trafficking, membrane potential, and subcellular channel localization determine whether immune cells cross the electrophysiological thresholds required for Ca2+ signaling and effector function. We synthesize evidence across adaptive and innate immunity, emphasizing Kv1.3 and KCa3.1 in T- and natural killer-cell responses and dendritic-cell migration, and Kir and K2P channels in myeloid and NK-cell programs. We further examine plasma-membrane-mitochondrial channel crosstalk, redox regulation, and spatial and temporal heterogeneity in the tumor immune microenvironment. Because the same channel may support lymphocyte function while sustaining tumor-cell survival or immunosuppressive myeloid states, neither universal activation nor universal inhibition is appropriate. Direct channel targeting is constrained by cell and organelle selectivity, whereas upstream tumor-microenvironment-directed strategies, particularly adenosine-axis interventions, are clinically more advanced but have not yet established direct restoration of K+ channel-supported immune function. Translation will require functional and spatial biomarkers, precision patient stratification, and cell- or organelle-selective delivery.
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Potassium channels as an ionic checkpoint in tumor immunity. — 科研速览 Science Skim