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A thiocyanopalladation/carbocyclization transformation identified through enzymatic screening: stereocontrolled tandem C–SCN and C–C bond formation

机译:通过酶促筛选鉴定出的硫氰化合/碳环化转化:立体控制的串联C–SCN和C–C键形成

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摘要

Herein we describe a formal thiocyanopalladation/carbocyclization transformation and its parametrization and optimization using a new elevated temperature plate-based version of our visual colorimetric enzymatic screening method for reaction discovery. The carbocyclization step leads to C–SCN bond formation in tandem with C–C bond construction and is highly stereoselective, showing nearly absolute 1,2-anti-stereoinduction (5 examples) for substrates bearing allylic substitution, and nearly absolute 1,3-syn-stereoinduction (16 examples) for substrates bearing propargylic substitution. Based upon these high levels of stereoinduction, the dependence of the 1,2-stereoinduction upon cyclization substrate geometry, and the generally high preference for the transoid vinyl thiocyanate alkene geometry, a mechanistic model is proposed, involving (i) Pd(ii)-enyne coordination, (ii) thiocyanopalladation, (iii) migratory insertion and (iv) β-elimination. Examples of transition metal-mediated C–SCN bond formation that proceed smoothly on unactivated substrates and allow for preservation of the SCN moiety are lacking. Yet, the thiocyanate functionality is of great value for biophysical chemistry (vibrational Stark effect) and medicinal chemistry (S,N-heterocycle construction). The title transformation accommodates C-, O-, N- and S-bridged substrates (6 examples), thereby providing the corresponding carbocyclic or heterocyclic scaffolds. The reaction is also shown to be compatible with a significant range of substituents, varying in steric and electronic demand, including a wide range of substituted aromatics, fused bicyclic and heterocyclic systems, and even biaryl systems. Combination of this new transformation with asymmetric allylation and Grubbs ring-closing metathesis provides for a streamlined enantio- and diastereoselective entry into the oxabicyclo[3.2.1]octyl core of the natural products massarilactone and annuionone A, as also evidenced by low temperature X-ray crystal structure determination. Utilizing this bicyclic scaffold, we demonstrate the versatility of the thiocyanate moiety for structural diversification post-cyclization. Thus, the bridging vinyl thiocyanate moiety is smoothly elaborated into a range of derivative functionalities utilizing transformations that cleave the S–CN bond, add the elements of RS-CN across a π-system and exploit the SCN moiety as a cycloaddition partner (7 diverse examples). Among the new functionalities thereby generated are thiotetrazole and sulfonyl tetrazole heterocycles that serve as carboxylate and phosphate surrogates, respectively, highlighting the potential of this approach for future applications in medicinal chemistry or chemical biology.
机译:在这里,我们描述了一种正式的硫氰基缩合/碳环化转化及其参数化和优化方法,它使用了一种新的基于高温板的可视比色酶促筛选方法进行反应发现。碳环化步骤导致C–SCN键与C–C键结构串联形成,并且具有很高的立体选择性,对带有烯丙基取代基团的底物显示几乎绝对的1,2-抗立体诱导(5个例子),并且几乎绝对的1,3-用于带有炔丙基取代的底物的syn-stereoinduction(16个实例)。基于这些高水平的立体诱导,1,2-立体诱导对环化底物几何形状的依赖性以及通常高度偏爱反式乙烯基硫氰酸酯烯的几何形状,提出了一种机理模型,涉及(i)Pd(ii)-烯键配位;(ii)氰基氰化物,(iii)迁移插入和(iv)β-消除。缺乏在未活化的底物上平稳进行并允许保留SCN部分的过渡金属介导的C-SCN键形成的例子。然而,硫氰酸盐官能团对于生物物理化学(振动斯塔克效应)和药物化学(S,N-杂环结构)具有重要价值。标题转换可容纳C,O,N和S桥底物(6个示例),从而提供相应的碳环或杂环支架。还显示该反应与很大范围的取代基相容,这些取代基的空间和电子需求变化,包括各种各样的取代的芳族化合物,稠合的双环和杂环体系,甚至联芳基体系。这种新的转化与不对称烯丙基化和Grubbs闭环易位相结合,可以使对映体和非对映体选择性地进入天然产物Massarilactone和Anionionone A的氧杂环[3.2.1]辛基核中,这也由低温X-射线晶体结构测定。利用这种双环支架,我们证明了硫氰酸酯部分在环化后结构多样化中的多功能性。因此,利用裂解S-CN键的转化,将π-系统上的RS-CN元素添加到π系统并利用SCN部分作为环加成伙伴,将桥连的硫氰酸乙烯基酯部分顺利地精加工为一系列衍生功能。例子)。由此产生的新功能中,分别是用作羧酸盐和磷酸盐替代物的硫代四唑和磺酰基四唑杂环,凸显了该方法在药物化学或化学生物学中的未来应用潜力。

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