Tang Bin, Du Yu, Wang Jun
Department of Gynecology, Affiliated Changzhou Second People's Hospital of Nanjing Medical University, Changzhou, China.
J Mol Recognit. 2025 Mar;38(2):e3111. doi: 10.1002/jmr.3111. Epub 2024 Dec 3.
Transcriptional enhanced associate domain (Tead)-mediated Hippo signaling pathway regulates diverse physiological processes; its dysfunction has been implicated in an increasing number of human gynecological cancers. The transcriptional coactivator with PDZ-binding motif (Taz) binds to and then activates Tead through forming a three-helix bundle (THB) at their complex interface. The THB is defined by a double-helical hairpin from Tead and a single α-helix from Taz, serving as the key interaction hotspot between Tead and Taz. In the present study, the helical hairpin was derived from Tead protein to generate a hairpin segment, which is a 25-mer polypeptide consisting of a longer helical arm-1 and a shorter helical arm-2 as well as a flexible loop linker between them. Dynamics simulation and energetics characterization revealed that the hairpin peptide is intrinsically disordered when splitting from its protein context, thus incurring a large entropy penalty upon binding to Taz α-helix. A disulfide bridge was introduced across the two helical arms of hairpin peptide to obtain a strong binder termed TAZ-hTrap, which can maintain in a considerably structured, native-like conformation in unbound state, and the entropy penalty was minimized by disulfide stapling to effectively improve its affinity toward the α-helix. These computational findings can be further substantiated by circular dichroism and fluorescence polarization at molecular level, and viability assay also observed a potent cytotoxic effect on diverse human gynecological tumors at cellular level. In addition, we further demonstrated that the TAZ-hTrap has a good selectivity for its cognate Taz over other noncognate proteins that share a high conservation with the Taz α-helix.
转录增强关联域(Tead)介导的Hippo信号通路调节多种生理过程;其功能障碍与越来越多的人类妇科癌症有关。含PDZ结合基序的转录共激活因子(Taz)通过在其复合物界面形成三螺旋束(THB)与Tead结合,然后激活Tead。THB由Tead的双螺旋发夹和Taz的单个α螺旋定义,是Tead和Taz之间的关键相互作用热点。在本研究中,螺旋发夹源自Tead蛋白以产生一个发夹片段,它是一个由较长的螺旋臂-1和较短的螺旋臂-2以及它们之间的柔性环连接子组成的25肽。动力学模拟和能量学表征表明,发夹肽从其蛋白质背景中分离时本质上是无序的,因此在与Taz α螺旋结合时会产生很大的熵罚。在发夹肽的两个螺旋臂之间引入二硫键以获得一种强结合剂,称为TAZ-hTrap,它在未结合状态下可以保持相当结构化的、类似天然的构象,并且通过二硫键固定使熵罚最小化,从而有效地提高其对α螺旋的亲和力。这些计算结果可以在分子水平上通过圆二色性和荧光偏振进一步证实,并且细胞活力测定在细胞水平上也观察到对多种人类妇科肿瘤有强大的细胞毒性作用。此外,我们进一步证明,与其他与Taz α螺旋具有高度保守性的非同源蛋白相比,TAZ-hTrap对其同源Taz具有良好的选择性。