Department of Chemistry, University of Nebraska , Lincoln, Nebraska 68588, United States.
Department of Pharmacology, Yong Loo Lin School of Medicine, National University of Singapore , Singapore 117597.
ACS Cent Sci. 2016 Apr 27;2(4):242-52. doi: 10.1021/acscentsci.6b00019. Epub 2016 Mar 9.
The gaseous neuromodulator H2S is associated with neuronal cell death pursuant to cerebral ischemia. As cystathionine β-synthase (CBS) is the primary mediator of H2S biogenesis in the brain, it has emerged as a potential target for the treatment of stroke. Herein, a "zipped" approach by alkene cross-metathesis into CBS inhibitor candidate synthesis is demonstrated. The inhibitors are modeled after the pseudo-C 2-symmetric CBS product (l,l)-cystathionine. The "zipped" concept means only half of the inhibitor needs be constructed; the two halves are then fused by olefin cross-metathesis. Inhibitor design is also mechanism-based, exploiting the favorable kinetics associated with hydrazine-imine interchange as opposed to the usual imine-imine interchange. It is demonstrated that the most potent "zipped" inhibitor 6S reduces H2S production in SH-SY5Y cells overexpressing CBS, thereby reducing cell death. Most importantly, CBS inhibitor 6S dramatically reduces infarct volume (1 h post-stroke treatment; ∼70% reduction) in a rat transient middle cerebral artery occlusion model for ischemia.
气态神经递质 H2S 与脑缺血后的神经元细胞死亡有关。由于半胱氨酸β-合酶(CBS)是脑中 H2S 生物合成的主要介质,因此它已成为治疗中风的潜在靶点。本文展示了一种通过烯烃交叉复分解进入 CBS 抑制剂候选物合成的“拉链”方法。抑制剂是以伪 C2 对称 CBS 产物(l,l)-半胱氨酸为模型设计的。“拉链”的概念意味着只需要构建抑制剂的一半;然后通过烯烃交叉复分解将两半融合在一起。抑制剂设计也是基于机制的,利用与肼-亚胺交换相关的有利动力学,而不是通常的亚胺-亚胺交换。结果表明,最有效的“拉链”抑制剂 6S 可减少 CBS 过表达的 SH-SY5Y 细胞中 H2S 的产生,从而减少细胞死亡。最重要的是,CBS 抑制剂 6S 在大鼠短暂性大脑中动脉闭塞缺血模型中可显著减少梗塞体积(中风后 1 小时治疗;约 70%减少)。