Gao Ya, Tillu Vikas A, Wu Yeping, Rae James, Hall Thomas E, Chen Kai-En, Weeratunga Saroja, Guo Qian, Livingstone Emma, Tham Wai-Hong, Parton Robert G, Collins Brett M
Institute for Molecular Bioscience, The University of Queensland, St. Lucia, Queensland 4067, Australia.
Infectious Diseases and Immune Defence Division, The Walter and Eliza Hall Institute of Medical Research, Parkville, Victoria 3052, Australia.
J Cell Sci. 2025 Apr 15;138(8). doi: 10.1242/jcs.263756. Epub 2025 Apr 28.
Caveolae are abundant plasma membrane structures that regulate signalling, membrane homeostasis and mechanoprotection. Their formation is driven by caveolins and cavins and their coordinated interactions with lipids. Here, we developed nanobodies against the trimeric HR1 coiled-coil domain of Cavin1. We identified specific nanobodies that do not perturb Cavin1 membrane binding and localise to caveolae when expressed in cells. The crystal structure of a nanobody-Cavin 1 HR1 complex reveals a symmetric 3:3 architecture as validated by mutagenesis. In this structure, the C-terminal half of the HR1 domain is disordered, suggesting that the nanobody stabilises an open conformation of Cavin1, which has previously been identified as important for membrane interactions. A phosphomimic mutation in a threonine-serine pair proximal to this region reveals selective regulation of Cavin2 and Cavin3 association. These studies provide new insights into cavin domains required for assembly of multiprotein caveolar assemblies and describe new nanobody tools for structural and functional studies of caveolae.
小窝是丰富的质膜结构,可调节信号传导、膜稳态和机械保护。它们的形成由小窝蛋白和小窝结合蛋白以及它们与脂质的协同相互作用驱动。在这里,我们开发了针对小窝结合蛋白1三聚体HR1卷曲螺旋结构域的纳米抗体。我们鉴定出了特异性纳米抗体,这些纳米抗体不会干扰小窝结合蛋白1与膜的结合,并且在细胞中表达时会定位于小窝。纳米抗体-小窝结合蛋白1 HR1复合物的晶体结构揭示了一种对称的3:3结构,经诱变验证。在该结构中,HR1结构域的C端一半是无序的,这表明纳米抗体稳定了小窝结合蛋白1的开放构象,该构象先前已被确定对膜相互作用很重要。该区域附近的苏氨酸-丝氨酸对中的磷酸模拟突变揭示了对小窝结合蛋白2和小窝结合蛋白3缔合的选择性调节。这些研究为多蛋白小窝组装所需的小窝结合蛋白结构域提供了新见解,并描述了用于小窝结构和功能研究的新纳米抗体工具。