具有调节生物还原步速的双环硒基硫化物揭示了针对硫氧还蛋白还原酶的探针的限制。

Lukas Zeisel, Lucas Dessen Weissenhorn, Karoline C Scholzen, Andrea Madabeni, Laura Orian, Elias S J Arnér, Oliver Thorn-Seshold
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引用次数: 0

摘要

硫醇型氧化还原酶对二硫化物探针的还原激活是通过一系列连续的、部分可逆的步骤进行的。立体控制元件可以调节这些步骤的反应速率,从而在活细胞中达到底物控制的还原酶化学型的动力学选择性。我们现在使用区域、非立体、模板和ph控制元件来塑造前所未有的双环亚硒基硫化物(SeSP)的反应性,到达选择性靶向哺乳动物硒酶硫氧还蛋白还原酶TrxR1的探针。我们通过一个区域选择的关键步骤,通过顺序的一锅硫引入和硒酰硫形成,阐述了一个不寻常的、不同保护的2,2'-双叠氮嘧啶中间体,在克尺度上通过5个步骤获得了这些密集功能化的顺式或反式1,2-硫代硒烯。通过分析一组区域和非对映异构体自行车在还原活化过程中的部分或完全可逆反应性,我们展示了减缓其还原步骤(添加然后分解)的影响如何通过大大加快随后的激活(环化)速度来补偿,从而使细胞氧化还原处理有效且具有trxr选择性。更广泛地说,这项研究显示了多步级联探针如何利用构象效应和内部非共价相互作用来区分沿着靶标和非靶标反应途径的步骤动力学,从而在复杂的生物环境中实现基于反应的靶标选择性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bicyclic Selenenyl Sulfides with Tuned Bioreductive Step Rates Reveal Constraints for Probes Targeting Thioredoxin Reductase.

The reductive activation of dichalcogenide probes by thiol-type oxidoreductases proceeds through a cascade of consecutive, partly reversible steps. Stereocontrol elements can modulate the reaction rates of these steps to reach substrate-controlled kinetic selectivity for reductase chemotypes in live cells. We now deploy regio-, diastereo-, template-, and pH-control elements to shape the reactivity of unprecedented bicyclic selenenyl sulfides (SeSP), arriving at probes that selectively target the mammalian selenoenzyme thioredoxin reductase TrxR1. We accessed these densely functionalised cis- or trans-fused 1,2-thiaselenanes on gram scale over 5 steps by using a regioselective key step that elaborates an unusual, differentially protected 2,2'-bis-aziridine intermediate through sequential one-pot chalcogen introduction and selenenyl sulfide formation. By profiling a set of regio- and diastereoisomeric bicycles for their partly or fully reversible reactivity during reductive activation, we show how effects that slow their reduction steps (addition then resolution) can compensate by vastly accelerating subsequent activation (cyclisation) speeds, such that cellular processing is effective and TrxR-selective. More broadly, this study shows how multistep cascade probes can leverage conformational effects and internal noncovalent interactions to differentiate step kinetics along their on-target versus off-target reaction pathways, thus achieving reaction-based target selectivity in complex biological settings.

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