Department of Pharmacy, Ludwig-Maximilians University of Munich, Butenandtstrasse 7, 81377, Munich, Germany.
Department of Biology, Utrecht University, Padualaan 8, 3584, Utrecht, The Netherlands.
Angew Chem Int Ed Engl. 2021 Oct 25;60(44):23695-23704. doi: 10.1002/anie.202104794. Epub 2021 Oct 1.
We report the first cellular application of the emerging near-quantitative photoswitch pyrrole hemithioindigo, by rationally designing photopharmaceutical PHTub inhibitors of the cytoskeletal protein tubulin. PHTubs allow simultaneous visible-light imaging and photoswitching in live cells, delivering cell-precise photomodulation of microtubule dynamics, and photocontrol over cell cycle progression and cell death. This is the first acute use of a hemithioindigo photopharmaceutical for high-spatiotemporal-resolution biological control in live cells. It additionally demonstrates the utility of near-quantitative photoswitches, by enabling a dark-active design to overcome residual background activity during cellular photopatterning. This work opens up new horizons for high-precision microtubule research using PHTubs and shows the cellular applicability of pyrrole hemithioindigo as a valuable scaffold for photocontrol of a range of other biological targets.
我们报告了新兴的近定量光致变色吡咯并硫靛染料在细胞水平上的首次应用,通过合理设计光药 PHTub 抑制剂来抑制细胞骨架蛋白微管蛋白。PHTub 允许在活细胞中进行同时可见光照相和光开关,实现对微管动力学的细胞精确光调节,以及对细胞周期进程和细胞死亡的光控制。这是首例用于活细胞中高时空分辨率生物控制的半硫靛光药的急性应用。它还通过使暗活性设计克服细胞光图案形成过程中的残留背景活性,展示了近定量光开关的实用性。这项工作为使用 PHTub 进行高精度微管研究开辟了新的前景,并表明吡咯并硫靛作为一种用于控制一系列其他生物靶标的有价值的光控支架,在细胞水平上具有适用性。