International Centre for Genetic Engineering and Biotechnology, New Delhi 110 067, India.
Biochem J. 2021 Sep 30;478(18):3429-3444. doi: 10.1042/BCJ20200549.
Phospholipid synthesis is crucial for membrane proliferation in malaria parasites during the entire cycle in the host cell. The major phospholipid of parasite membranes, phosphatidylcholine (PC), is mainly synthesized through the Kennedy pathway. The phosphocholine required for this synthetic pathway is generated by phosphorylation of choline derived from the catabolism of the lyso-phosphatidylcholine (LPC) scavenged from the host milieu. Here we have characterized a Plasmodium falciparum lysophospholipase (PfLPL20) which showed enzymatic activity on LPC substrate to generate choline. Using GFP- targeting approach, PfLPL20 was localized in vesicular structures associated with the neutral lipid storage bodies present juxtaposed to the food-vacuole. The C-terminal tagged glmS mediated inducible knock-down of PfLPL20 caused transient hindrance in the parasite development, however, the parasites were able to multiply efficiently, suggesting that PfLPL20 is not essential for the parasite. However, in PfLPL20 depleted parasites, transcript levels of enzyme of SDPM pathway (Serine Decarboxylase-Phosphoethanolamine Methyltransferase) were altered along with up-regulation of phosphocholine and SAM levels; these results show up-regulation of alternate pathway to generate the phosphocholine required for PC synthesis through the Kennedy pathway. Our study highlights the presence of alternate pathways for lipid homeostasis/membrane-biogenesis in the parasite; these data could be useful to design future therapeutic approaches targeting phospholipid metabolism in the parasite.
磷脂合成对于疟原虫在宿主细胞中的整个生命周期中的膜增殖至关重要。寄生虫膜的主要磷脂,磷脂酰胆碱(PC),主要通过 Kennedy 途径合成。该合成途径所需的磷酸胆碱是由来自宿主环境中吞噬的溶血磷脂酰胆碱(LPC)分解产生的胆碱磷酸化生成的。在这里,我们描述了一种疟原虫溶血磷脂酶(PfLPL20),它对 LPC 底物表现出酶活性,可产生胆碱。使用 GFP 靶向方法,PfLPL20 定位于与紧邻食物泡的中性脂质储存体相关的囊泡结构中。C 末端标记的 glmS 介导的 PfLPL20 诱导敲低导致寄生虫发育暂时受阻,但寄生虫能够有效地繁殖,表明 PfLPL20 不是寄生虫所必需的。然而,在 PfLPL20 耗尽的寄生虫中,SDPM 途径(丝氨酸脱羧酶-磷酸乙醇胺甲基转移酶)的酶的转录水平发生改变,同时磷酸胆碱和 SAM 水平上调;这些结果表明,通过 Kennedy 途径合成 PC 所需的磷酸胆碱的替代途径被上调。我们的研究强调了寄生虫中脂质稳态/膜生物发生存在替代途径;这些数据可用于设计针对寄生虫磷脂代谢的未来治疗方法。