Mitochondrial and plastid functions as antimalarial drug targets.

Akhil B Vaidya
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引用次数: 37

Abstract

Malaria parasites possess three genomes: the nuclear chromosomes, the mitochondrial genome, and the plastid genome. Realization that the parasites contain a plastid remnant with its own genome has created much excitement not only from a basic biological point of view but also from the prospects for developing new antimalarial drugs. Both the mitochondrial and the plastid genomes are the smallest examples of their kind known to date. The plastid appears to be derived from an ancestral secondary endosymbiotic event. Interestingly, the main functions usually associated with a mitochondrion and a plastid, i.e. oxidative phosphorylation and photosynthesis, do not appear to be conserved in malaria parasites. Completion of the parasite genome sequence has provided the opportunity to assess functions assigned to these highly derivatized organelles. It is clear that these organelles serve vital functions since interference with their activity is incompatible with parasite growth. A number of antimalarial compounds target functions of either the mitochondrion or the plastid. This review will survey our current understanding of mitochondrial and plastid functions with a view to identify processes that are or have a potential to be targets for antimalarial drugs.

线粒体和质体作为抗疟药物靶点的功能。
疟原虫有三个基因组:核染色体、线粒体基因组和质体基因组。认识到疟原虫含有具有自身基因组的质体残体,不仅从基本生物学的角度来看,而且从开发新的抗疟药物的前景来看,都令人兴奋。线粒体和质体基因组都是迄今为止已知的同类中最小的例子。质体似乎是由一个古老的次生内共生事件产生的。有趣的是,通常与线粒体和质体相关的主要功能,即氧化磷酸化和光合作用,在疟疾寄生虫中似乎并不保守。寄生虫基因组序列的完成为评估这些高度衍生的细胞器的功能提供了机会。很明显,这些细胞器具有重要的功能,因为干扰它们的活性与寄生虫的生长是不相容的。许多抗疟化合物以线粒体或质体的功能为目标。这篇综述将综述我们目前对线粒体和质体功能的理解,以确定哪些过程是或有可能成为抗疟疾药物的靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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