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活的红细胞内疟原虫的旋转盘共聚焦显微镜检查。2. 耐药疟疾中液泡体积调节的改变。

Spinning disk confocal microscopy of live, intraerythrocytic malarial parasites. 2. Altered vacuolar volume regulation in drug resistant malaria.

作者信息

Gligorijevic Bojana, Bennett Tyler, McAllister Ryan, Urbach Jeffrey S, Roepe Paul D

机构信息

Department of Chemistry, Program in Tumor Biology, Lombardi Cancer Center, Georgetown University, 37 and O Streets, Washington, DC 20057, USA.

出版信息

Biochemistry. 2006 Oct 17;45(41):12411-23. doi: 10.1021/bi0610348.

Abstract

In the previous paper [Gligorijevic, B., et al. (2006) Biochemistry 45, pp 12400-12410], we reported on a customized Nipkow spinning disk confocal microscopy (SDCM) system and its initial application to DIC imaging of hemozoin within live, synchronized, intraerythrocytic Plasmodium falciparum malarial parasites. In this paper, we probe the biogenesis as well as the volume and pH regulation of the parasite digestive vacuole (DV), using the fluorescence imaging capabilities of the system. Several previous reports have suggested that mutant PfCRT protein, which causes chloroquine resistance (CQR) in P. falciparum, also causes increased acidification of the DV. Since pH and volume regulation are often linked, we wondered whether DV volume differences might be associated with CQR. Using fast acquisition of SDCM z stacks for synchronized parasites with OGd internalized into the DV, followed by iterative deconvolution using experimental point spread functions, we quantify the volume of the DV for live, intraerythrocytic HB3 (CQS), Dd2 (CQR via drug selection), GCO3 (CQS), and GCO3/C3(Dd2) (CQR via transfection with mutant pfcrt) malarial parasites as they develop within the human red blood cell. We find that relative to both CQS strains, both CQR strains show significantly increased DV volume as the organelle forms upon entry into the trophozoite stage of development and that this persists until the trophozoite-schizont boundary. A more acidic DV pH is found for CQR parasites as soon as the organelle forms and persists throughout the trophozoite stage. We probe DV volume and pH changes upon ATP depletion, hypo- and hypertonic shock, and rapid withdrawal of perfusate chloride. Taken together, these data suggest that the PfCRT mutations that cause CQR also lead to altered DV volume regulation.

摘要

在之前的论文[Gligorijevic, B., 等人 (2006) 《生物化学》45卷,第12400 - 12410页]中,我们报道了一种定制的尼普科夫旋转盘共聚焦显微镜(SDCM)系统及其在对活的、同步化的、红细胞内恶性疟原虫疟色素进行微分干涉差(DIC)成像中的初步应用。在本文中,我们利用该系统的荧光成像能力,探究疟原虫消化泡(DV)的生物发生以及其体积和pH调节。之前的一些报道表明,在恶性疟原虫中导致氯喹抗性(CQR)的突变型PfCRT蛋白,也会导致DV的酸化增强。由于pH和体积调节通常相互关联,我们想知道DV体积差异是否可能与CQR有关。通过对内化到DV中的OGd的同步化疟原虫快速采集SDCM z轴堆叠图像,随后使用实验点扩散函数进行迭代去卷积,我们对活的、红细胞内的HB3(氯喹敏感,CQS)、Dd2(通过药物筛选获得CQR)、GCO3(CQS)以及GCO3/C3(Dd2)(通过转染突变型pfcrt获得CQR)疟原虫在人红细胞内发育过程中的DV体积进行了量化。我们发现,相对于两种CQS菌株,两种CQR菌株在进入滋养体发育阶段细胞器形成时,DV体积均显著增加,且这种情况一直持续到滋养体 - 裂殖体边界。一旦细胞器形成,CQR疟原虫的DV pH就会更酸,并在整个滋养体阶段持续。我们探究了ATP耗竭、低渗和高渗休克以及灌注液氯化物快速撤离时DV体积和pH的变化。综合这些数据表明,导致CQR的PfCRT突变也会导致DV体积调节改变。

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