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人β1,4-半乳糖基转移酶新型抑制剂的合理设计、合成与表征

Rational design, synthesis, and characterization of novel inhibitors for human beta1,4-galactosyltransferase.

作者信息

Takaya Kenji, Nagahori Noriko, Kurogochi Masaki, Furuike Tetsuya, Miura Nobuaki, Monde Kenji, Lee Yuan Chuan, Nishimura Shin-Ichiro

机构信息

Division of Biological Sciences, Frontier Research Center for Post-Genome Science and Technology, Graduate School of Science, Hokkaido University, N-21, W-11, Sapporo 001-0021, Japan.

出版信息

J Med Chem. 2005 Sep 22;48(19):6054-65. doi: 10.1021/jm0504297.

Abstract

An affinity labeling reagent, uridine 5'-(6-amino-{2-[(7-bromomethyl-2-naphthyl)methoxycarbonylmethoxy]ethoxy}acetyl-6-deoxy-alpha-D-galactopyranosyl) diphosphate (1a), was designed on the basis of 3D docking simulation and synthesized to investigate the functional role of Trp310 residue located in the small loop near the active site of human recombinant galactosyltransferase (betaGalT-1). Mass spectrometric analysis revealed that the Trp310 residue of betaGalT1 can be selectively modified with the naphthylmethyl group of compound 1a at the C-3 position of the indole ring. This result motivated us to synthesize novel uridine-5'-diphosphogalactose (UDP-Gal) analogues as candidates for mechanism-based inhibitors for betaGalT-1. We found that uridine 5'-(6-O-[10-(2-naphthyl)-3,6,9-trioxadecanyl]-alpha-d-galactopyranosyl) diphosphate (2) is the strongest inhibitor (K(i) = 1.86 microM) against UDP-Gal (Km = 4.91 microM) among compounds reported previously. A cold spray ionization time-of-flight mass spectrometry study demonstrated that the complex of this inhibitor and betaGalT-1 cannot interact with an acceptor substrate in the presence of Mn2+.

摘要

基于三维对接模拟设计并合成了一种亲和标记试剂,尿苷5'-(6-氨基-{2-[(7-溴甲基-2-萘基)甲氧基羰基甲氧基]乙氧基}乙酰基-6-脱氧-α-D-吡喃半乳糖基)二磷酸酯(1a),以研究位于人重组半乳糖基转移酶(βGalT-1)活性位点附近小环中的Trp310残基的功能作用。质谱分析表明,βGalT1的Trp310残基可在吲哚环的C-3位被化合物1a的萘甲基选择性修饰。这一结果促使我们合成新型尿苷-5'-二磷酸半乳糖(UDP-Gal)类似物,作为βGalT-1基于机制的抑制剂候选物。我们发现,尿苷5'-(6-O-[10-(2-萘基)-3,6,9-三氧杂癸基]-α-D-吡喃半乳糖基)二磷酸酯(2)是先前报道的化合物中对UDP-Gal(Km = 4.91 microM)最强的抑制剂(K(i) = 1.86 microM)。冷喷雾电离飞行时间质谱研究表明,在存在Mn2+的情况下,该抑制剂与βGalT-1的复合物不能与受体底物相互作用。

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