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生成一个突变体寄生虫,以推动疟原虫耐药组的发现。

Generation of a mutator parasite to drive resistome discovery in Plasmodium falciparum.

机构信息

Wellcome Sanger Institute, Wellcome Genome Campus, Hinxton, UK.

Calibr, Division of the Scripps Research Institute, La Jolla, CA, USA.

出版信息

Nat Commun. 2023 May 27;14(1):3059. doi: 10.1038/s41467-023-38774-1.

Abstract

In vitro evolution of drug resistance is a powerful approach for identifying antimalarial targets, however, key obstacles to eliciting resistance are the parasite inoculum size and mutation rate. Here we sought to increase parasite genetic diversity to potentiate resistance selections by editing catalytic residues of Plasmodium falciparum DNA polymerase δ. Mutation accumulation assays reveal a ~5-8 fold elevation in the mutation rate, with an increase of 13-28 fold in drug-pressured lines. Upon challenge with the spiroindolone PfATP4-inhibitor KAE609, high-level resistance is obtained more rapidly and at lower inocula than wild-type parasites. Selections also yield mutants with resistance to an "irresistible" compound, MMV665794 that failed to yield resistance with other strains. We validate mutations in a previously uncharacterised gene, PF3D7_1359900, which we term quinoxaline resistance protein (QRP1), as causal for resistance to MMV665794 and a panel of quinoxaline analogues. The increased genetic repertoire available to this "mutator" parasite can be leveraged to drive P. falciparum resistome discovery.

摘要

体外耐药进化是鉴定抗疟靶点的有力方法,然而,引发耐药性的关键障碍是寄生虫接种物大小和突变率。在这里,我们试图通过编辑恶性疟原虫 DNA 聚合酶 δ 的催化残基来增加寄生虫遗传多样性,以增强耐药性选择。突变积累测定显示突变率提高了约 5-8 倍,药物压力下的系增加了 13-28 倍。用螺环吲哚啉 PfATP4 抑制剂 KAE609 进行挑战时,与野生型寄生虫相比,获得高水平耐药性的速度更快,接种物更少。选择还产生了对“不可阻挡”化合物 MMV665794 的耐药突变体,而其他菌株未能产生耐药性。我们验证了一个以前未被描述的基因 PF3D7_1359900 中的突变,我们称之为喹喔啉耐药蛋白(QRP1),是对 MMV665794 和一系列喹喔啉类似物产生耐药性的原因。这种“诱变剂”寄生虫可利用的增加的遗传库可以用来推动恶性疟原虫耐药组的发现。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1c6a/10224993/e80115a9a904/41467_2023_38774_Fig1_HTML.jpg

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