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鉴定具有营养依赖性细胞毒性的富马酸水合酶抑制剂。

Identification of fumarate hydratase inhibitors with nutrient-dependent cytotoxicity.

作者信息

Takeuchi Toshifumi, Schumacker Paul T, Kozmin Sergey A

机构信息

Department of Chemistry, University of Chicago , Chicago, Illinois 60637, United States.

出版信息

J Am Chem Soc. 2015 Jan 21;137(2):564-7. doi: 10.1021/ja5101257. Epub 2015 Jan 5.

Abstract

Development of cell-permeable small molecules that target enzymes involved in energy metabolism remains important yet challenging. We describe here the discovery of a new class of compounds with a nutrient-dependent cytotoxicity profile that arises from pharmacological inhibition of fumarate hydratase (also known as fumarase). This finding was enabled by a high-throughput screen of a diverse chemical library in a panel of human cancer cell lines cultured under different growth conditions, followed by subsequent structure-activity optimization and target identification. While the highest cytotoxicity was observed under low glucose concentrations, the antiproliferative activities and inhibition of oxygen consumption rates in cells were distinctly different from those displayed by typical inhibitors of mitochondrial oxidative phosphorylation. The use of a photoaffinity labeling strategy identified fumarate hydratase as the principal pharmacological target. Final biochemical studies confirmed dose-dependent, competitive inhibition of this enzyme in vitro, which was fully consistent with the initially observed growth inhibitory activity. Our work demonstrates how the phenotypic observations combined with a successful target identification strategy can yield a useful class of pharmacological inhibitors of an enzyme involved in the operation of tricarboxylic acid cycle.

摘要

开发针对参与能量代谢的酶的细胞渗透性小分子仍然很重要,但也具有挑战性。我们在此描述了一类新化合物的发现,这类化合物具有营养依赖性细胞毒性特征,其源于对富马酸水合酶(也称为富马酸酶)的药理学抑制。这一发现得益于在不同生长条件下培养的一组人类癌细胞系中对多样化化学文库进行的高通量筛选,随后进行了结构 - 活性优化和靶点鉴定。虽然在低葡萄糖浓度下观察到最高的细胞毒性,但细胞中的抗增殖活性和氧消耗率抑制与典型的线粒体氧化磷酸化抑制剂所表现出的明显不同。使用光亲和标记策略确定富马酸水合酶为主要药理学靶点。最终的生化研究证实了该酶在体外的剂量依赖性竞争性抑制,这与最初观察到的生长抑制活性完全一致。我们的工作展示了表型观察与成功的靶点鉴定策略相结合如何能够产生一类有用的参与三羧酸循环运作的酶的药理学抑制剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8d12/4308746/4785d098fe0d/ja-2014-101257_0001.jpg

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