A chaperonin complex regulates organelle proteostasis in malaria parasites.

IF 4.9 1区 医学 Q1 MICROBIOLOGY
PLoS Pathogens Pub Date : 2025-07-22 eCollection Date: 2025-07-01 DOI:10.1371/journal.ppat.1013275
Amanda Tissawak, Yarden Rosin, Shirly Katz Galay, Alia Qasem, Michal Shahar, Nirit Trabelsi, Ora Furman-Schueler, Steven M Johnson, Anat Florentin
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Abstract

The apicoplast of Plasmodium parasites serves as a metabolic hub that synthesize essential biomolecules. Like other endosymbiotic organelles, 90% of the apicoplast proteome is encoded by the cell nucleus and transported to the organelle. Evidence suggests that the apicoplast has minimal control over the synthesis of its proteome and therefore it is unclear how organelle proteostasis is regulated. Here, we identified and investigated a large and conserved chaperonin (CPN) complex with a previously unknown function. Using genetic tools, we demonstrated that ablation of the apicoplast CPN60 subunit leads to parasite death due to organellar damage, immediately within its first replication cycle, deviating from the delayed death phenotype commonly observed for apicoplast translation inhibitors. Unlike its close orthologues in other prokaryotic and eukaryotic cells, CPN60 is not upregulated during heat shock (HS) and does not affect HS response in the parasite. Instead, we found that it is directly involved in proteostasis through interaction with the Clp (caseinolytic protease) proteolytic complex. We showed that CPN60 physically binds both the active and inactive forms of the Clp complex, and manipulates its stability. A computational structural model of a possible interaction between these two large complexes suggests a stable interface. Finally, we screened a panel of inhibitors for the bacterial CPN60 orthologue GroEL, to test the potential of chaperonin inhibition as antimalarial. These inhibitors demonstrated an anti-Plasmodium activity that was not restricted to apicoplast function, with additional targets outside of this organelle. Taken together, this work reveals how balanced activities of proteolysis and refolding safeguard the apicoplast proteome, and are essential for organelle biogenesis.

一种伴侣蛋白复合体调节疟疾寄生虫的细胞器蛋白质静止。
疟原虫的顶质体是合成生物分子的代谢中枢。与其他内共生细胞器一样,90%的顶质体蛋白质组由细胞核编码并运输到细胞器。有证据表明,顶质体对其蛋白质组的合成具有最小的控制力,因此尚不清楚细胞器的蛋白质平衡是如何被调节的。在这里,我们鉴定并研究了一个大而保守的伴侣蛋白(CPN)复合物,其功能以前未知。利用遗传工具,我们证明了顶端质体CPN60亚基的消融导致寄生虫在其第一个复制周期内立即因细胞器损伤而死亡,这与顶端质体翻译抑制剂通常观察到的延迟死亡表型不同。与其他原核和真核细胞中的同源基因不同,CPN60在热休克(HS)过程中不上调,也不影响寄生虫的HS反应。相反,我们发现它通过与Clp(酪蛋白溶酶)蛋白水解复合物的相互作用直接参与蛋白质静止。我们发现CPN60物理结合活性和非活性形式的Clp复合物,并操纵其稳定性。这两个大的配合物之间可能的相互作用的计算结构模型表明一个稳定的界面。最后,我们筛选了一组细菌CPN60同源GroEL抑制剂,以测试伴侣蛋白抑制作为抗疟疾药物的潜力。这些抑制剂显示出抗疟原虫活性,并不局限于顶质体功能,在这个细胞器之外还有额外的靶点。综上所述,这项工作揭示了蛋白质水解和重折叠的平衡活动如何保护顶质体蛋白质组,并对细胞器生物发生至关重要。
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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来源期刊
PLoS Pathogens
PLoS Pathogens MICROBIOLOGY-PARASITOLOGY
自引率
3.00%
发文量
598
期刊介绍: Bacteria, fungi, parasites, prions and viruses cause a plethora of diseases that have important medical, agricultural, and economic consequences. Moreover, the study of microbes continues to provide novel insights into such fundamental processes as the molecular basis of cellular and organismal function.
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