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类锥体:治疗疟疾的关键靶标。

The apicoplast: a key target to cure malaria.

机构信息

Department of Biochemistry and Molecular Biology, Bio21 Institute of Molecular Science and Biotechnology, University of Melbourne, Parkville, VIC 3010, Australia.

出版信息

Curr Pharm Des. 2012;18(24):3490-504.

Abstract

Malaria is one of the major global health problems. About 500 million humans are infected each year, and 1 million, mostly African children, die from malaria annually. No vaccine is yet in sight, and those drugs that have previously served us well are now losing ground against the disease as parasites become resistant to our best compounds. The need for development of new antimalarials is now more urgent than ever. An exciting avenue for development of new drugs emerged recently when it was discovered that the malaria parasites have a previously unrecognized evolutionary history aligned to plants. These parasites contain a subcellular compartment--the apicoplast--which is homologous to the chloroplast of plants and algae, in which photosynthesis occurs. The malaria chloroplast (apicoplast) has lost photosynthesis but it retains many chloroplast pathways, which are otherwise unique to plants. These pathways obviously do not exist in the human host and there has been considerable excitement about using the apicoplast as a parasite-specific Achilles' Heel. We propose to review the current state of development of novel compounds directed against this emerging target of malaria parasites with emphasis on the chemistry.

摘要

疟疾是全球主要的卫生问题之一。每年约有 5 亿人感染疟疾,其中 100 万人,主要是非洲儿童,每年死于疟疾。目前还没有疫苗,而那些以前对我们很有效的药物,由于寄生虫对我们最好的化合物产生了抗药性,现在正在逐渐失去作用。开发新的抗疟药物的需求比以往任何时候都更加迫切。最近,当人们发现疟原虫与植物具有以前未被认识到的进化历史时,开发新药的一个令人兴奋的途径出现了。这些寄生虫含有一个亚细胞区室——质体,它与植物和藻类的叶绿体同源,光合作用发生在叶绿体中。疟原虫的叶绿体(质体)已经失去了光合作用,但它保留了许多叶绿体途径,这些途径在植物中是独一无二的。这些途径在人类宿主中显然不存在,因此人们对利用质体作为寄生虫特异性阿喀琉斯之踵产生了极大的兴趣。我们建议回顾针对这一新兴疟原虫靶点的新型化合物的开发现状,重点介绍化学方面的内容。

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