Junqueira Alves Chrystian, Hannah Theodore, Sadia Sita, Kolsteeg Christy, Dixon Angela, Wiener Robert J, Nguyen Ha, Tipping Murray J, Ladeira Júlia Silva, Franklin Paula Fernandes da Costa, Dutra de Nigro Nathália de Paula, Dias Rodrigo Alves, Zabala Capriles Priscila V, Rodrigues Furtado de Mendonça José P, Slesinger Paul, Costa Kevin, Zou Hongyan, Friedel Roland H
bioRxiv. 2024 Jan 2:2024.01.02.573660. doi: 10.1101/2024.01.02.573660.
Glioblastoma (GBM) is a malignant brain tumor with uncontrolled invasive growth. Here, we demonstrate how GBM cells usurp guidance receptor Plexin-B2 to gain biomechanical plasticity for polarized migration through confined space. Using live-cell imaging to track GBM cells negotiating microchannels, we reveal active endocytosis at cell front and filamentous actin assembly at rear to propel GBM cells through constrictions. These two processes are interconnected and governed by Plexin-B2 that orchestrates cortical actin and membrane tension, shown by biomechanical assays. Molecular dynamics simulations predict that balanced membrane and actin tension are required for optimal migratory velocity and consistency. Furthermore, Plexin-B2 mechanosensitive function requires a bendable extracellular ring structure and affects membrane internalization, permeability, phospholipid composition, as well as inner membrane surface charge. Together, our studies unveil a key element of membrane tension and mechanoelectrical coupling via Plexin-B2 that enables GBM cells to adapt to physical constraints and achieve polarized confined migration.
胶质母细胞瘤(GBM)是一种具有不受控制的侵袭性生长的恶性脑肿瘤。在此,我们展示了GBM细胞如何利用导向受体丛蛋白B2(Plexin - B2)获得生物力学可塑性,以通过狭窄空间进行极化迁移。利用活细胞成像技术追踪GBM细胞在微通道中的穿行情况,我们发现细胞前端存在活跃的内吞作用,后端存在丝状肌动蛋白组装,从而推动GBM细胞通过狭窄处。这两个过程相互关联,并由Plexin - B2调控,生物力学分析表明Plexin - B2可协调皮质肌动蛋白和膜张力。分子动力学模拟预测,平衡的膜张力和肌动蛋白张力对于最佳迁移速度和一致性是必需的。此外,Plexin - B2的机械敏感功能需要一个可弯曲的细胞外环结构,并影响膜内化、通透性、磷脂组成以及内膜表面电荷。总之,我们的研究揭示了通过Plexin - B2实现膜张力和机电耦合的关键要素,这使GBM细胞能够适应物理限制并实现极化的受限迁移。