Ambattu Lizebona A, Del Rosal Blanca, Conn Charlotte E, Yeo Leslie Y
Micro/Nanophysics Research Laboratory, School of Engineering, RMIT University, Melbourne, VIC, Australia.
School of Science, RMIT University, Melbourne, VIC, Australia.
Biophys J. 2025 Jan 7;124(1):25-39. doi: 10.1016/j.bpj.2024.10.007. Epub 2024 Oct 16.
We elucidate the mechanism underpinning a recently discovered phenomenon in which cells respond to MHz-order mechanostimuli. Deformations induced along the plasma membrane under these external mechanical cues are observed to decrease the membrane tension, which, in turn, drives transient and reversible remodeling of its lipid structure. In particular, the increase and consequent coalescence of ordered lipid microdomains leads to closer proximity to mechanosensitive ion channels-Piezo1, in particular-that, due to crowding, results in their activation to mobilize influx of calcium (Ca) ions into the cell. It is the modulation of this second messenger that is responsible for the downstream signaling and cell fates that ensue. In addition, we show that such spatiotemporal control over the membrane microdomains in cells-without necessitating biochemical factors-facilitates aggregation and association of intrinsically disordered tau proteins in neuroblastoma cells, and their transformation to pathological conditions implicated in neurodegenerative diseases, thereby paving the way for the development of therapeutic intervention strategies.
我们阐明了一种最近发现的现象背后的机制,即细胞对兆赫兹级机械刺激做出反应。在这些外部机械信号作用下,沿质膜诱导的变形被观察到会降低膜张力,这反过来又驱动其脂质结构的瞬时和可逆重塑。特别是,有序脂质微区的增加及其随后的聚结导致与机械敏感离子通道(特别是Piezo1)更接近,由于拥挤,导致这些通道被激活,从而促使钙离子流入细胞。正是这种第二信使的调节负责随后的下游信号传导和细胞命运。此外,我们表明,在细胞中对膜微区进行这种时空控制(无需生化因子)有助于神经母细胞瘤细胞中内在无序的tau蛋白聚集和缔合,并将其转化为与神经退行性疾病相关的病理状态,从而为治疗干预策略的开发铺平道路。