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疟原虫裂殖生殖,即寄生虫在血液阶段的细胞周期的一个时序。

Plasmodium schizogony, a chronology of the parasite's cell cycle in the blood stage.

机构信息

Center for Infectious Diseases, Heidelberg University Hospital, Heidelberg, Germany.

出版信息

PLoS Pathog. 2023 Mar 2;19(3):e1011157. doi: 10.1371/journal.ppat.1011157. eCollection 2023 Mar.

Abstract

Malaria remains a significant threat to global health, and despite concerted efforts to curb the disease, malaria-related morbidity and mortality increased in recent years. Malaria is caused by unicellular eukaryotes of the genus Plasmodium, and all clinical manifestations occur during asexual proliferation of the parasite inside host erythrocytes. In the blood stage, Plasmodium proliferates through an unusual cell cycle mode called schizogony. Contrary to most studied eukaryotes, which divide by binary fission, the parasite undergoes several rounds of DNA replication and nuclear division that are not directly followed by cytokinesis, resulting in multinucleated cells. Moreover, despite sharing a common cytoplasm, these nuclei multiply asynchronously. Schizogony challenges our current models of cell cycle regulation and, at the same time, offers targets for therapeutic interventions. Over the recent years, the adaptation of advanced molecular and cell biological techniques have given us deeper insight how DNA replication, nuclear division, and cytokinesis are coordinated. Here, we review our current understanding of the chronological events that characterize the unusual cell division cycle of P. falciparum in the clinically relevant blood stage of infection.

摘要

疟疾仍然是全球健康的重大威胁,尽管人们已齐心协力遏制该疾病,但近年来与疟疾相关的发病率和死亡率仍在上升。疟疾是由疟原虫属的单细胞真核生物引起的,所有临床表现均发生在寄生虫在宿主红细胞内进行无性繁殖期间。在血液阶段,疟原虫通过一种称为裂殖的特殊细胞周期模式进行繁殖。与大多数经过研究的真核生物不同,后者通过二分裂进行分裂,寄生虫经历了几轮 DNA 复制和核分裂,这些过程并不直接伴随着胞质分裂,导致多核细胞的形成。此外,尽管它们共享一个共同的细胞质,但这些核是异步繁殖的。裂殖对我们当前的细胞周期调控模型提出了挑战,同时也为治疗干预提供了靶点。近年来,先进的分子和细胞生物学技术的应用使我们更深入地了解了 DNA 复制、核分裂和胞质分裂是如何协调的。在这里,我们回顾了目前对疟原虫属寄生虫在临床相关感染血液阶段中异常细胞分裂周期的时间顺序事件的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ffa3/9980825/a14a5c968714/ppat.1011157.g001.jpg

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