Rahikainen Rolle, Vester Susan K, Turkki Paula, Janosko Chasity P, Deiters Alexander, Hytönen Vesa P, Howarth Mark
Faculty of Medicine and Health Technology, Tampere University, Arvo Ylpön katu 34, 33520, Tampere, Finland and Fimlab Laboratories, Biokatu 4, 33520, Tampere, Finland.
Department of Biochemistry, University of Oxford, South Parks Road, Oxford, OX1 3QU, UK.
bioRxiv. 2023 Jul 22:2023.07.21.549850. doi: 10.1101/2023.07.21.549850.
Light is well established for control of bond breakage, but not for control of specific bond formation in complex environments. We previously engineered diffusion-limited reactivity of SpyTag003 peptide with its protein partner SpyCatcher003 through spontaneous transamidation. This system enables precise and irreversible assembly of biological building blocks, with applications from biomaterials to vaccines. Here, we establish a system for rapid control of this amide bond formation with visible light. We have generated a caged SpyCatcher003, which allows light triggering of covalent bond formation to SpyTag003 in mammalian cells. Photocaging is achieved through site-specific incorporation of an unnatural coumarin-lysine at the reactive site of SpyCatcher003. We showed uniform specific reaction in cell lysate upon light activation. We then used the spatiotemporal precision of a 405 nm confocal laser for uncaging in seconds, probing the earliest events in mechanotransduction by talin, the key force sensor between the cytoskeleton and extracellular matrix. Reconstituting talin induced rapid biphasic extension of lamellipodia, revealing the kinetics of talin-regulated cell spreading and polarization. Thereafter we determined the hierarchy of recruitment of key components for cell adhesion. Precise control over site-specific protein reaction with visible light creates diverse opportunities for cell biology and nanoassembly.
光在控制键断裂方面已得到充分证实,但在复杂环境中控制特定键的形成方面却并非如此。我们之前通过自发转酰胺作用设计了SpyTag003肽与其蛋白伴侣SpyCatcher003的扩散限制反应性。该系统能够实现生物构建模块的精确且不可逆组装,其应用涵盖生物材料到疫苗等领域。在此,我们建立了一个利用可见光快速控制这种酰胺键形成的系统。我们生成了一种笼蔽型SpyCatcher003,它能使哺乳动物细胞中与SpyTag003的共价键形成受光触发。通过在SpyCatcher003的反应位点特异性掺入非天然香豆素 - 赖氨酸实现光笼蔽。我们展示了光激活后细胞裂解物中均匀的特异性反应。然后我们利用405 nm共聚焦激光的时空精度在数秒内实现解笼蔽,探究了细胞骨架与细胞外基质之间的关键力传感器——踝蛋白在机械转导过程中的最早事件。重构踝蛋白诱导片状伪足快速双相延伸,揭示了踝蛋白调节细胞铺展和极化的动力学过程。此后我们确定了细胞黏附关键组分募集的层级关系。利用可见光对位点特异性蛋白反应进行精确控制为细胞生物学和纳米组装创造了多样的机会。