压电1
离子通道
生物物理学
细胞生物学
钾通道
上皮钠通道
细胞
机械转化
化学
细胞膜
膜电位
钠通道
上皮
离子运输机
频道(广播)
门控
细胞迁移
氯离子通道
伸展激活离子通道
生物
膜片钳
张力(地质)
钠
细胞分裂
膜
肌动蛋白
细胞培养
水运
电压门控钾通道
瞬时受体电位通道
内皮干细胞
作者
Saranne J. Mitchell,Carlos Pardo-Pastor,Anastassia Tchoumakova,Thomas A. Zangle,Jody Rosenblatt
出处
期刊:Nature
[Nature Portfolio]
日期:2025-09-10
卷期号:646 (8087): 1187-1194
被引量:2
标识
DOI:10.1038/s41586-025-09514-w
摘要
Epithelial cells work collectively to provide a protective barrier, yet they turn over rapidly through cell division and death. If the numbers of dividing and dying cells do not match, the barrier can vanish, or tumours can form. Mechanical forces through the stretch-activated ion channel Piezo1 link both of the processes; stretch promotes cell division, whereas crowding triggers live cells to extrude and then die1,2. However, it was not clear what selects a given crowded cell for extrusion. Here we show that the crowded cells with the least energy and membrane potential are selected for extrusion. Crowding triggers sodium (Na+) entry through the epithelial Na+ channel (ENaC), which depolarizes cells. While those with sufficient energy repolarize, those with limited ATP remain depolarized, which, in turn, triggers water egress through the voltage-gated potassium (K+) channels Kv1.1 and Kv1.2 and the chloride (Cl-) channel SWELL1. Transient water loss causes cell shrinkage, amplifying crowding to activate crowding-induced live cell extrusion. Thus, our findings suggest that ENaC acts as a tension sensor that probes for cells with the least energy to extrude and die, possibly damping inadvertent crowding activation of Piezo1 in background cells. We reveal crowding-sensing mechanisms upstream of Piezo1 that highlight water regulation and ion channels as key regulators of epithelial cell turnover.
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