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使用新开发的荧光探针,对自主分泌酶(ENPP2)抑制剂进行筛选和基于 X 射线晶体结构的优化。

Screening and X-ray crystal structure-based optimization of autotaxin (ENPP2) inhibitors, using a newly developed fluorescence probe.

机构信息

Graduate School of Pharmaceutical Sciences, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-0033, Japan.

出版信息

ACS Chem Biol. 2013 Aug 16;8(8):1713-21. doi: 10.1021/cb400150c. Epub 2013 Jun 3.

DOI:10.1021/cb400150c
PMID:23688339
Abstract

Autotaxin (ATX), also known as ectonucleotide pyrophosphatase/phosphodiesterase 2 (ENPP2), was originally identified as a tumor cell autocrine motility factor and was found to be identical to plasma lysophospholipase D, which is the predominant contributor to lysophosphatidic acid (LPA) production from lysophospholipids. ATX is therefore considered to regulate the physiological and pathological roles of LPA, including angiogenesis, lymphocyte trafficking, tissue fibrosis, and cancer cell invasion and metastasis. Thus, it is a potential therapeutic target. Here, we first developed a sensitive and specific ATX fluorescence probe, TG-mTMP, and used it to screen ATX inhibitors in a large chemical library. This probe, which is superior to previously available probes FS-3 and CPF4 in terms of sensitivity or specificity, enabled us to identify several novel ATX inhibitor scaffolds. We solved the crystal structures of ATX complexes with the hit compounds at high resolution (1.75-1.95 Å) and used this information to guide optimization of the structure of a selected inhibitor. The optimized compounds, 3BoA and its derivatives, exhibited potent ATX-inhibitory activity both in vitro and in vivo. These inhibitors are expected to be useful tools to understand the roles of ATX in vitro and in vivo and may also be candidate anti-ATX therapeutic agents.

摘要

自分泌运动因子(Autotaxin,ATX),又称外核苷酸焦磷酸酶/磷酸二酯酶 2(Ectonucleotide Pyrophosphatase/Phosphodiesterase 2,ENPP2),最初被鉴定为肿瘤细胞自分泌运动因子,后来被发现与血浆溶血磷脂酶 D 相同,后者是溶血磷脂产生溶血磷脂酸(Lysophosphatidic acid,LPA)的主要贡献者。因此,ATX 被认为调节 LPA 的生理和病理作用,包括血管生成、淋巴细胞迁移、组织纤维化以及癌细胞侵袭和转移。因此,它是一个有潜力的治疗靶点。在这里,我们首先开发了一种灵敏和特异的 ATX 荧光探针 TG-mTMP,并利用它在大型化学文库中筛选 ATX 抑制剂。该探针在灵敏度或特异性方面优于先前可用的 FS-3 和 CPF4 探针,使我们能够鉴定出几种新型 ATX 抑制剂骨架。我们以高分辨率(1.75-1.95 Å)解析了 ATX 与命中化合物的复合物晶体结构,并利用这些信息指导对所选抑制剂结构的优化。优化后的化合物 3BoA 及其衍生物在体外和体内均表现出很强的 ATX 抑制活性。这些抑制剂有望成为在体外和体内理解 ATX 作用的有用工具,也可能成为候选的抗 ATX 治疗药物。

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