Laboratory of Chemical Biology, Department of Biomedical Engineering, and, Institute for Complex Molecular Systems, Eindhoven University of Technology, Den Dolech 2, 5612, AZ, Eindhoven, The Netherlands.
Chembiochem. 2018 Dec 4;19(23):2490-2494. doi: 10.1002/cbic.201800521. Epub 2018 Nov 5.
Caspase-8 constructs featuring an N-terminal FGG sequence allow for selective twofold recognition by cucurbit[8]uril, which leads to an increase of the enzymatic activity in a cucurbit[8]uril dose-dependent manner. This supramolecular switching has enabled for the first time the study of the same caspase-8 in its two extreme states; as full monomer and as cucurbit[8]uril induced dimer. A mutated, fully monomeric caspase-8 (D384A), which is enzymatically inactive towards its natural substrate caspase-3, could be fully reactivated upon addition of cucurbit[8]uril. In its monomeric state caspase-8 (D384A) still processes a small synthetic substrate, but not the natural caspase-3 substrate, highlighting the close interplay between protein dimerization and active site rearrangement for substrate selectivity. The ability to switch the caspase-8 activity by a supramolecular system thus provides a flexible approach to studying the activity of a protein at different oligomerization states.
具有 N 端 FGG 序列的胱冬酶-8 结构可选择性地被瓜环识别,这导致酶活性在瓜环剂量依赖性方式下增加。这种超分子开关首次实现了对同一种胱冬酶-8 两种极端状态的研究;作为完整的单体和瓜环诱导的二聚体。一种突变的、完全单体的胱冬酶-8(D384A),对其天然底物胱冬酶-3没有酶活性,在加入瓜环后可以完全重新激活。在单体状态下,胱冬酶-8(D384A)仍然处理一种小的合成底物,但不是天然的胱冬酶-3 底物,这突出了蛋白二聚化和活性位点重排之间的紧密相互作用对于底物选择性的重要性。通过超分子系统切换胱冬酶-8 活性的能力为研究不同寡聚状态下蛋白质的活性提供了一种灵活的方法。