Macromolecular Structural Biology Laboratory, Department of Biotechnology, Indian Institute of Technology Hyderabad (IITH), Kandi, Sangareddy 502284, Telangana, India.
Int J Biol Macromol. 2024 Mar;262(Pt 2):130091. doi: 10.1016/j.ijbiomac.2024.130091. Epub 2024 Feb 12.
Besides tryptamine (1) and secologanin (2), non-cognate substrates also undergo a Pictet-Spengler reaction (PSR) catalyzed by strictosidine synthases (STR) with differing catalytic properties. We characterized the bisubstrate binding aspect of catalysis - order, affinity, and cooperativity - with STR orthologs from Rauvolfia serpentina (RsSTR) and Ophiorrhiza pumila (OpSTR) by an isothermal titration calorimetry (ITC) based 'proxy approach' that employed a non-reactive tryptamine analog (m1) to capture its inert ternary complexes with STRs and (2). ITC studies with OpSTR and (2) revealed 'tryptamine-first' cooperative binding with (1) and a simultaneous cooperative binding with (m1). Binding cooperativity among (m1) and (2) towards OpSTR was higher than RsSTR. Crystallographic study of RsSTR-(m1) complex helped to understand the unreactive binding of (m1) in terms of orientation and interactions in the RsSTR pocket. PSR with (m1) was revealed to be energetically unfeasible by the density functional theory (DFT) scans of the first hydrogen abstraction by RsSTR. The effect of pH on the bisubstrate binding to OpSTR was deciphered by molecular dynamics simulations (MDS), which also provided a molecular basis for the stability of complex of OpSTR with (m1) and (2). Therefore, we investigated STRs from a substrate binding perspective to inform drug-design and rational enzyme engineering efforts.
除了色胺(1)和育亨宾(2)外,非同源底物也会在育亨宾合酶(STR)的催化下发生苯并吡喃斯碱合成酶反应(PSR),其具有不同的催化特性。我们通过等温滴定量热法(ITC)的“代理方法”,表征了来自萝芙木(RsSTR)和山梗菜(OpSTR)的 STR 同系物的双底物结合方面的催化作用——顺序、亲和力和协同性,该方法使用非反应性色胺类似物(m1)捕获 STR 与其形成的惰性三元复合物(1)和(2)。ITC 研究表明,OpSTR 与(2)的“色胺优先”协同结合,同时与(m1)也存在协同结合。(m1)和(2)与 OpSTR 的结合协同性高于 RsSTR。RsSTR-(m1)复合物的晶体结构研究有助于理解(m1)在 RsSTR 口袋中的取向和相互作用导致其非反应性结合。密度泛函理论(DFT)扫描表明,RsSTR 首次氢提取的 PSR 是能量不可行的。分子动力学模拟(MDS)阐明了 pH 对 OpSTR 双底物结合的影响,这也为 OpSTR 与(m1)和(2)复合物的稳定性提供了分子基础。因此,我们从底物结合的角度研究 STR,为药物设计和合理的酶工程提供了信息。