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首页> 外文期刊>Current Pharmaceutical Design >The Plant-Type Ferredoxin-NADP+ Reductase/Ferredoxin Redox System as a Possible Drug Target Against Apicomplexan Human Parasites
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The Plant-Type Ferredoxin-NADP+ Reductase/Ferredoxin Redox System as a Possible Drug Target Against Apicomplexan Human Parasites

机译:植物型铁氧还蛋白-NADP +还原酶/铁氧还蛋白氧化还原系统可能作为抗蚜虫类人寄生虫的药物靶标

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摘要

Apicomplexa are unicellular, obligate intracellular parasites of great medical importance. They include human pathogens like Plasmodium spp., the causative agent of malaria, and Toxoplasma gondii, an opportunistic parasite of immunosuppressed individuals and a common cause of congenital disease (toxoplasmosis). They alone affect several hundred million people worldwide so that new drugs, especially for plasmodial infections, are urgently needed.nnThis review will focus on a recently emerged, potential drug target, a plant-type redox system consisting of ferredoxin- NADP+ reductase (FNR) and its redox partner, ferredoxin (Fd). Both reside in an unique organelle of these parasites, named apicoplast, which is of algal origin. The apicoplast has been shown to be required for pathogen survival. In addition to other pathways already identified in this compartment, the FNR/Fd redox system represents a promising drug target because homologous proteins are not present in host organisms. Furthermore, a wealth of structural information exists on the closely related plant proteins, which can be exploited for structure-function studies of the apicomplexan protein pair. T. gondii and P. falciparum FNRs have been cloned, and the T. gondii enzyme was shown to be a flavoprotein active as a NADPH-dependent oxidoreductase. Both phylogenetic and biochemical analyses indicate that T. gondii FNR is similar in function to the isoform present in non-photosynthetic plastids whereby electron flow is from NADPH to oxidized Fd. The resulting reduced Fd is then presumably used as a reductant for various target enzymes whose nature is just starting to emerge. Among the likely candidates is the iron-sulfur cluster biosynthesis pathway, which is also located in the apicoplast and dependent on reducing power. Furthermore, lipoic acid synthase and enzymes of the isoprenoid biosynthetic pathway may be other conceivable targets. Since all these metabolic steps are vital for the parasite, blocking electron flow from FNR to Fd by inhibition of either FNR activity or its molecular interaction with Fd should also interfere with these pathways, ultimately killing the parasite. Although the three-dimensional structure of FNR from T. gondii is not yet known, experimental and computational evidence shows that apicomplexan and plant enzymes are very similar in structure. Furthermore, single amino acid changes can have profound effects on the enzyme activity and affinity for Fd. This knowledge may be exploited for the design of inhibitors of protein-protein interaction. On the other hand, specifically tailored NAD(P) analogues or mimetics based on previously described substances might be useful lead compounds for apicomplexan FNR inhibitors.
机译:顶叶复合体是具有重要医学意义的单细胞,专性细胞内寄生虫。它们包括人类病原体,例如疟疾的致病菌疟原虫和弓形体,弓形体是免疫抑制个体的机会性寄生虫,是先天性疾病(弓形体病)的常见病因。仅它们一项就影响了全球数亿人口,因此迫切需要新药,尤其是用于疟原虫感染的新药。本综述将集中于最近出现的潜在药物靶标,即一种由铁氧还蛋白-NADP +还原酶(FNR)组成的植物型氧化还原系统。及其氧化还原伙伴铁氧还蛋白(Fd)。两者都生活在这些寄生虫的独特细胞器中,它们被命名为apicoplast,其起源于藻类。业已证明,病原菌生存需要使用apicoplast。除了在该隔室中已经确定的其他途径外,FNR / Fd氧化还原系统还代表着一种有前途的药物靶标,因为宿主生物中不存在同源蛋白。此外,关于紧密相关的植物蛋白存在大量的结构信息,可用于apicomplexan蛋白对的结构功能研究。已经克隆了弓形虫和恶性疟原虫的FNR,并且表明弓形虫酶是一种黄素蛋白,具有作为NADPH依赖性氧化还原酶的活性。系统发育和生化分析均表明,刚地弓形虫FNR与非光合质体中存在的同工型具有相似的功能,因此电子流从NADPH到氧化的Fd。然后推测得到的还原的Fd可用作各种靶酶的还原剂,这些靶酶的性质才刚刚开始显现。铁-硫团簇生物合成途径是可能的候选者,该途径也位于apicoplast中,并依赖于还原能力。此外,硫辛酸合成酶和类异戊二烯生物合成途径的酶可能是其他可能的靶标。由于所有这些代谢步骤对于寄生虫都是至关重要的,因此通过抑制FNR活性或其与Fd的分子相互作用来阻止电子从FNR流向Fd也应干扰这些途径,最终杀死寄生虫。尽管刚地弓形虫FNR的三维结构尚不清楚,但实验和计算证据表明,apicomplexan和植物酶的结构非常相似。此外,单个氨基酸的变化可以对酶活性和对Fd的亲和力产生深远的影响。可以利用该知识来设计蛋白质-蛋白质相互作用的抑制剂。另一方面,基于先前描述的物质专门定制的NAD(P)类似物或模拟物可能是apicomplexan FNR抑制剂的有用前导化合物。

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