Key result
Two-pore domain K(+) channels, which give rise to leak K(+) currents, are regulated by diverse voltage-independent factors and intracellular signaling pathways in various physiological processes.
This review highlights the physiological roles and complex regulatory mechanisms of two-pore domain potassium (K2P) channels.
K2P regulation remains investigational in cardiology; extends mechanistic models but leaves clinical translation open.
Two-pore domain K(+) (K(2P)) channels give rise to leak (also called background) K(+) currents. The well-known role of background K(+) currents is to stabilize the negative resting membrane potential and counterbalance depolarization. However, it has become apparent in the past decade (during the detailed examination of the cloned and corresponding native K(2P) channel types) that this primary hyperpolarizing action is not performed passively. The K(2P) channels are regulated by a wide variety of voltage-independent factors. Basic physicochemical parameters (e.g., pH, temperature, membrane stretch) and also several intracellular signaling pathways substantially and specifically modulate the different members of the six K(2P) channel subfamilies (TWIK, TREK, TASK, TALK, THIK, and TRESK). The deep implication in diverse physiological processes, the circumscribed expression pattern of the different channels, and the interesting pharmacological profile brought the K(2P) channel family into the spotlight. In this review, we focus on the physiological roles of K(2P) channels in the most extensively investigated cell types, with special emphasis on the molecular mechanisms of channel regulation.
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Enyedi et al. (2010) conducted a review in Physiological roles of K(2P) channels. Two-pore domain K(+) channels, which give rise to leak K(+) currents, are regulated by diverse voltage-independent factors and intracellular signaling pathways in various physiological processes.
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