Department of Pharmacy, Ludwig-Maximilians University of Munich, Butenandtstrasse 7, Munich, 81377, Germany.
Cell Biology, Neurobiology and Biophysics, Department of Biology, Utrecht University, Padualaan 8, 3584 CH, Utrecht, Netherlands.
Angew Chem Int Ed Engl. 2022 Mar 1;61(10):e202114614. doi: 10.1002/anie.202114614. Epub 2022 Jan 20.
Optical methods to modulate microtubule dynamics show promise for reaching the micron- and millisecond-scale resolution needed to decrypt the roles of the cytoskeleton in biology. However, optical microtubule stabilisers are under-developed. We introduce "STEpos" as GFP-orthogonal, light-responsive epothilone-based microtubule stabilisers. They use a novel styrylthiazole photoswitch in a design to modulate hydrogen-bonding and steric effects that control epothilone potency. STEpos photocontrol microtubule dynamics and cell division with micron- and second-scale spatiotemporal precision. They substantially improve potency, solubility, and ease-of-use compared to previous optical microtubule stabilisers, and the structure-photoswitching-activity relationship insights in this work will guide future optimisations. The STEpo reagents can contribute greatly to high-precision research in cytoskeleton biophysics, cargo transport, cell motility, cell division, development, and neuroscience.
光学方法来调节微管动力学显示出有希望达到解密细胞骨架在生物学中的作用所需的微米和毫秒级分辨率。然而,光学微管稳定剂还不够发达。我们引入了“STEpos”,它是 GFP 正交、光响应的依托泊苷类微管稳定剂。它们使用一种新型的苯乙烯噻唑光开关,通过调节氢键和空间位阻效应来控制依托泊苷的效力。STEpos 以微米和秒级的时空精度控制微管动力学和细胞分裂。与以前的光学微管稳定剂相比,它们显著提高了效力、溶解度和易用性,本工作中的结构-光开关-活性关系的见解将指导未来的优化。STEpo 试剂可以为细胞骨架生物物理学、货物运输、细胞运动、细胞分裂、发育和神经科学等高精度研究做出巨大贡献。