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首页> 外文期刊>BMC Genomics >Plasmodium falciparum spermidine synthase inhibition results in unique perturbation-specific effects observed on transcript, protein and metabolite levels
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Plasmodium falciparum spermidine synthase inhibition results in unique perturbation-specific effects observed on transcript, protein and metabolite levels

机译:恶性疟原虫亚精胺合酶抑制导致转录,蛋白质和代谢物水平观察到独特的摄动特异性作用

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Background Plasmodium falciparum, the causative agent of severe human malaria, has evolved to become resistant to previously successful antimalarial chemotherapies, most notably chloroquine and the antifolates. The prevalence of resistant strains has necessitated the discovery and development of new chemical entities with novel modes-of-action. Although much effort has been invested in the creation of analogues based on existing drugs and the screening of chemical and natural compound libraries, a crucial shortcoming in current Plasmodial drug discovery efforts remains the lack of an extensive set of novel, validated drug targets. A requirement of these targets (or the pathways in which they function) is that they prove essential for parasite survival. The polyamine biosynthetic pathway, responsible for the metabolism of highly abundant amines crucial for parasite growth, proliferation and differentiation, is currently under investigation as an antimalarial target. Chemotherapeutic strategies targeting this pathway have been successfully utilized for the treatment of Trypanosomes causing West African sleeping sickness. In order to further evaluate polyamine depletion as possible antimalarial intervention, the consequences of inhibiting P. falciparum spermidine synthase (PfSpdSyn) were examined on a morphological, transcriptomic, proteomic and metabolic level. Results Morphological analysis of P. falciparum 3D7 following application of the PfSpdSyn inhibitor cyclohexylamine confirmed that parasite development was completely arrested at the early trophozoite stage. This is in contrast to untreated parasites which progressed to late trophozoites at comparable time points. Global gene expression analyses confirmed a transcriptional arrest in the parasite. Several of the differentially expressed genes mapped to the polyamine biosynthetic and associated metabolic pathways. Differential expression of corresponding parasite proteins involved in polyamine biosynthesis was also observed. Most notably, uridine phosphorylase, adenosine deaminase, lysine decarboxylase (LDC) and S-adenosylmethionine synthetase were differentially expressed at the transcript and/or protein level. Several genes in associated metabolic pathways (purine metabolism and various methyltransferases) were also affected. The specific nature of the perturbation was additionally reflected by changes in polyamine metabolite levels. Conclusions This study details the malaria parasite's response to PfSpdSyn inhibition on the transcriptomic, proteomic and metabolic levels. The results corroborate and significantly expand previous functional genomics studies relating to polyamine depletion in this parasite. Moreover, they confirm the role of transcriptional regulation in P. falciparum, particularly in this pathway. The findings promote this essential pathway as a target for antimalarial chemotherapeutic intervention strategies.
机译:背景技术恶性疟原虫是严重的人类疟疾的病原体,已经进化成对先前成功的抗疟药化学疗法具有抗性,最显着的是氯喹和抗叶酸药。抗药性菌株的流行需要发现和开发具有新作用方式的新化学实体。尽管在基于现有药物的类似物的创建以及化学和天然化合物文库的筛选上投入了大量精力,但目前在Plasmodial药物发现方面的主要缺点仍然是缺乏广泛的,经过验证的新型药物靶标。这些靶标(或它们发挥作用的途径)的要求是证明它们对寄生虫生存至关重要。目前正在研究多胺生物合成途径,该途径对寄生虫的生长,增殖和分化至关重要的高度丰富的胺代谢,目前正在作为抗疟目标。针对该途径的化学治疗策略已成功用于治疗引起西非昏睡病的锥虫病。为了进一步评估多胺的消耗作为可能的抗疟疾干预措施,在形态,转录组,蛋白质组和代谢水平上研究了抑制恶性疟原虫亚精胺合酶(PfSpdSyn)的后果。结果应用PfSpdSyn抑制剂环己胺后对恶性疟原虫3D7的形态学分析证实,寄生虫的发育在滋养体早期被完全阻止。这与未处理的寄生虫相反,该寄生虫在相当的时间点发展为晚滋养体。全球基因表达分析证实了该寄生虫的转录停滞。几个差异表达的基因定位到多胺生物合成和相关的代谢途径。还观察到参与多胺生物合成的相应寄生虫蛋白的差异表达。最值得注意的是,尿苷磷酸化酶,腺苷脱氨酶,赖氨酸脱羧酶(LDC)和S-腺苷甲硫氨酸合成酶在转录本和/或蛋白质水平上差异表达。相关代谢途径中的几个基因(嘌呤代谢和各种甲基转移酶)也受到影响。多胺代谢产物水平的变化另外反映了摄动的特殊性质。结论本研究详细介绍了疟原虫对PfSpdSyn抑制的转录,蛋白质组和代谢水平的反应。该结果证实并大大扩展了先前有关该寄生虫中多胺耗竭的功能基因组学研究。此外,他们证实了转录调节在恶性疟原虫中的作用,特别是在该途径中。这些发现促进了这一必不可少的途径,成为抗疟疾化学疗法干预策略的目标。

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