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首页> 外文期刊>Journal of Molecular Biology >CRYSTAL STRUCTURES OF A SCHISTOSOMAL DRUG AND VACCINE TARGET - GLUTATHIONE S-TRANSFERASE FROM SCHISTOSOMA JAPONICA AND ITS COMPLEX WITH THE LEADING ANTISCHISTOSOMAL DRUG PRAZIQUANTEL
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CRYSTAL STRUCTURES OF A SCHISTOSOMAL DRUG AND VACCINE TARGET - GLUTATHIONE S-TRANSFERASE FROM SCHISTOSOMA JAPONICA AND ITS COMPLEX WITH THE LEADING ANTISCHISTOSOMAL DRUG PRAZIQUANTEL

机译:日本血吸虫的血吸虫和疫苗靶标-谷胱甘肽S-转移酶的晶体结构及其与主要的抗血吸虫药物吡喹酮的络合物

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摘要

Glutathione S-transferase (GST), an essential detoxification enzyme in parasitic helminths, is a major vaccine target and an attractive drug target against schistosomiasis and other helminthic diseases. Crystal structures of the 26 kDa GST from the helminth Schistosoma japonica (SjGST) have been determined for the unligated enzyme (resolution = 2.4 Angstrom, R-factor = 19.7%) and for the enzyme bound to the leading antischistosomal drug praziquantel (resolution = 2.6 Angstrom, R-factor = 21.2%). The protein, recombinantly expressed using the Pharamacia PGEX-3X vector for production of GST fusion proteins, contains all 218 residues of SjGST and an additional 13 residues at the C terminus. The structure of unligated SjGST shows that the glutathione binding site pre-exists unchanged in the ligand-free enzyme and is conserved between parasitic and the mammalian class mu enzymes. At therapeutic concentrations the leading antischistosomal drug praziquantel (PZQ) binds one drug per enzyme homodimer in the dimer interface groove adjoining the two catalytic sites. This establishes a protein target for PZQ, identifies the GST non-substrate ligand transport site, and implicates PZQ in steric inhibition of SjGST catalytic and transport for large ligands. Thus, increased expression or mutagenesis of SjGST by the parasite may confer resistance to PZQ. Differences in the xenobiotic binding region between parasitic and mammalian GSTs reveal a distinct substrate repertoire for SjGST and, together with the newly identified PZQ binding site, provide the basis for design of novel antischistosomal drugs. Due to the widespread use expression systems based on SjGST fusions, the atomic structure of SjGST should also provide an important tool for phasing fusion protein structures by molecular replacement. [References: 28]
机译:谷胱甘肽S-转移酶(GST)是寄生虫蠕虫中必不可少的排毒酶,是主要的疫苗靶标,也是针对血吸虫病和其他蠕虫病的诱人药物靶标。已确定来自未感染的日本血吸虫(SjGST)的26 kDa GST的晶体结构(分辨率= 2.4埃,R因子= 19.7%)以及与主要抗血吸虫药物吡喹酮结合的酶的晶体结构(分辨率= 2.6埃,R因子= 21.2%。使用Pharamacia PGEX-3X载体重组表达的蛋白,可生产GST融合蛋白,该蛋白在SjGST处包含所有218个残基,在C端还包含13个残基。未连接的SjGST的结构表明,谷胱甘肽结合位点在无配体的酶中预先存在不变,并且在寄生和哺乳动物类mu酶之间是保守的。在治疗浓度下,领先的抗血吸虫药物吡喹酮(PZQ)在与两个催化位点相邻的二聚体界面凹槽中与一种酶同二聚体结合一种药物。这确定了PZQ的蛋白质靶标,确定了GST非底物的配体转运位点,并暗示了PZQ在空间抑制SjGST催化和转运大型配体方面。因此,寄生虫增加了SjGST的表达或诱变可能赋予对PZQ的抗性。寄生虫和哺乳动物GST之间异种生物结合区域的差异揭示了SjGST的独特底物库,并与新近鉴定的PZQ结合位点一起,为设计新型抗血吸虫病药物提供了基础。由于基于SjGST融合的表达系统得到了广泛使用,SjGST的原子结构也应提供一个重要的工具,以通过分子置换来定相融合蛋白的结构。 [参考:28]

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