首页> 外文OA文献 >Crystal structures of Triosephosphate Isomerases from Taenia solium and Schistosoma mansoni provide insights for vaccine rationale and drug design against helminth parasites
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Crystal structures of Triosephosphate Isomerases from Taenia solium and Schistosoma mansoni provide insights for vaccine rationale and drug design against helminth parasites

机译:来自Taenia Solium和Schistosoma Mansoni的Triosephysphate异构酶的晶体结构为Helminth Parasites提供了疫苗理由和药物设计的见解

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摘要

Triosephosphate isomerases (TPIs) from Taenia solium (TsTPI) and Schistosoma mansoni (SmTPI) are potential vaccine and drug targets against cysticercosis and schistosomiasis, respectively. This is due to the dependence of parasitic helminths on glycolysis and because those proteins elicit an immune response, presumably due to their surface localization. Here we report the crystal structures of TsTPI and SmTPI in complex with 2-phosphoglyceric acid (2-PGA). Both TPIs fold into a dimeric (β-α)8 barrel in which the dimer interface consists of α-helices 2, 3, and 4, and swapping of loop 3. TPIs from parasitic helminths harbor a region of three amino acids knows as the SXD/E insert (S155 to E157 and S157 to D159 in TsTPI and SmTPI, respectively). This insert is located between α5 and β6 and is proposed to be the main TPI epitope. This region is part of a solvent-exposed 310-helix that folds into a hook-like structure. The crystal structures of TsTPI and SmTPI predicted conformational epitopes that could be used for vaccine design. Surprisingly, the epitopes corresponding to the SXD/E inserts are not the ones with the greatest immunological potential. SmTPI, but not TsTPI, habors a sole solvent exposed cysteine (SmTPI-S230) and alterations in this residue decrease catalysis. The latter suggests that thiol-conjugating agents could be used to target SmTPI. In sum, the crystal structures of SmTPI and TsTPI are a blueprint for targeted schistosomiasis and cysticercosis drug and vaccine development.
机译:Taenia棒(TSTPI)和血吸虫曼逊(SMTPI)的Triosephosphate异构酶(TPI)分别是潜在的疫苗和药物靶向患有囊尾蚴病和血吸虫病的药物。这是由于寄生蠕虫对糖酵解的依赖性,因为这些蛋白质引发了免疫应答,可能是由于它们的表面定位。在这里,我们将TSTPI和SMTPI的晶体结构与2-磷甘油(2-PGA)报告。 TPI折叠成二聚体(β-α)8桶,其中二聚体界面由α-螺旋2,3和4组成,以及寄生Helminths的TPI的TPIS三个氨基酸的区域知道SXD / E插入(分别为TSTPI和SMTPI的S155至E157和S157至D159)。该插入件位于α5和β6之间,并被提出为主要TPI表位。该区域是溶剂暴露的310螺旋的一部分,其折叠成钩状结构。 TSTPI和SMTPI的晶体结构可以用于疫苗设计的综合构象表位。令人惊讶的是,对应于SXD / E插入物的表位不是具有最大免疫潜力的表位。 SMTPI,但不是TSTPI,Habors是唯一溶剂暴露的半胱氨酸(SMTPI-S230)和该残留物中的改变降低催化。后者表明硫醇缀合剂可用于靶向SMTPI。总之,SMTPI和TSTPI的晶体结构是针对靶向血吸虫病和囊尾病毒和疫苗发育的蓝图。

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