Department of Chemistry and Biochemistry, University of California, San Diego, CA, USA.
Nat Chem. 2022 Sep;14(9):1078-1085. doi: 10.1038/s41557-022-00963-8. Epub 2022 Jul 4.
Bioorthogonal cycloaddition reactions between tetrazines and strained dienophiles are widely used for protein, lipid and glycan labelling because of their extremely rapid kinetics. However, controlling this chemistry in the presence of living mammalian cells with a high degree of spatial and temporal precision remains a challenge. Here we demonstrate a versatile approach to light-activated formation of tetrazines from photocaged dihydrotetrazines. Photouncaging, followed by spontaneous transformation to reactive tetrazine, enables live-cell spatiotemporal control of rapid bioorthogonal cycloaddition with dienophiles such as trans-cyclooctenes. Photocaged dihydrotetrazines are stable in conditions that normally degrade tetrazines, enabling efficient early-stage incorporation of bioorthogonal handles into biomolecules such as peptides. Photocaged dihydrotetrazines allow the use of non-toxic light to trigger tetrazine ligations on living mammalian cells. By tagging reactive phospholipids with fluorophores, we demonstrate modification of HeLa cell membranes with single-cell spatial resolution. Finally, we show that photo-triggered therapy is possible by coupling tetrazine photoactivation with strategies that release prodrugs in response to tetrazine ligation.
由于其极快的动力学,四嗪和张力二烯之间的生物正交环加成反应被广泛用于蛋白质、脂质和聚糖标记,因为它们非常快速。然而,在具有高度时空精度的活哺乳动物细胞中控制这种化学仍然是一个挑战。在这里,我们展示了一种从光笼二氢四嗪光解形成四嗪的多功能方法。光解笼后,自发转化为反应性四嗪,使得能够对顺式环辛烯等二烯亲核试剂进行活细胞时空控制的快速生物正交环加成。在通常会降解四嗪的条件下,光笼二氢四嗪稳定,从而能够有效地将生物正交接头早期掺入肽等生物分子中。光笼二氢四嗪允许使用无毒的光在活哺乳动物细胞上触发四嗪连接。通过用荧光团标记反应性磷脂,我们证明了可以用单细胞空间分辨率修饰 HeLa 细胞膜。最后,我们通过将四嗪光激活与响应四嗪连接释放前药的策略相结合,证明了光触发治疗是可能的。