A novel Toxoplasma gondii thioredoxin (TgTrx1) is important for parasite fitness and virulence.

IF 3.2 2区 医学 Q1 PARASITOLOGY
Zhi-Wei Zhang, Meng Wang, Ting-Ting Li, Hany M Elsheikha, Xiao-Jing Wu, Li-Xiu Sun, Bao-Quan Fu, Xing-Quan Zhu, Jin-Lei Wang
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Abstract

The protozoan parasite Toxoplasma gondii relies on antioxidant proteins and systems to protect against the host's immune responses and to neutralize free radicals produced by its own metabolism. In this study, we identified and characterized a new thioredoxin protein, TgTrx1, which is mainly found in the cytoplasm of T. gondii tachyzoites and contains a conserved -CXXC- catalytic motif. Using CRISPR-Cas9 gene editing, we disrupted the TgTrx1 gene to generate a knockout strain (RHΔtrx1) and studied the effect of gene loss on various aspects of the infection process. RHΔtrx1 parasites showed a marked reduction in their ability to invade host cells, secrete microneme proteins, replicate intracellularly, egress from host cells, and tolerate oxidative stress. They also displayed abnormal mitochondrial morphology and asynchronous cell division. Transcriptomic analysis revealed significant changes in the expression of genes involved in oxidative stress response and bradyzoite differentiation. Mice injected intraperitoneally with 106 RHΔtrx1 tachyzoites showed no clinical symptoms. However, the immunity induced by these attenuated tachyzoites conferred only partial protection against subsequent acute and chronic T. gondii infections. This limited protective effect is likely related to the parasite's impaired replication, which may lead to rapid clearance by the host immune system and insufficient antigenic stimulation to elicit a fully protective immune response. These findings establish TgTrx1 as a multifunctional redox protein important for T. gondii survival, redox balance, synchronous cell division, and virulence.

一种新的刚地弓形虫硫氧还蛋白(TgTrx1)对寄生虫的适应性和毒力很重要。
原生寄生虫弓形虫依靠抗氧化蛋白和系统来抵御宿主的免疫反应,并中和自身代谢产生的自由基。在本研究中,我们鉴定并表征了一个新的硫氧还蛋白TgTrx1,该蛋白主要存在于弓形虫速殖子的细胞质中,含有一个保守的- cxxc -催化基序。利用CRISPR-Cas9基因编辑,我们破坏了TgTrx1基因,产生了一个敲除菌株(RHΔtrx1),并研究了基因丢失对感染过程各个方面的影响。RHΔtrx1寄生虫入侵宿主细胞、分泌微素、细胞内复制、离开宿主细胞和耐受氧化应激的能力显著降低。线粒体形态异常,细胞分裂不同步。转录组学分析显示,参与氧化应激反应和慢殖子分化的基因表达发生了显著变化。腹腔注射106个RHΔtrx1速殖子小鼠无临床症状。然而,这些减毒速殖子诱导的免疫仅对随后的急性和慢性弓形虫感染提供部分保护。这种有限的保护作用可能与寄生虫的复制受损有关,这可能导致宿主免疫系统快速清除和抗原刺激不足,从而引发完全保护性的免疫反应。这些发现表明TgTrx1是一种多功能氧化还原蛋白,对弓形虫的存活、氧化还原平衡、同步细胞分裂和毒力都很重要。
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
CiteScore
8.40
自引率
2.50%
发文量
76
审稿时长
23 days
期刊介绍: International Journal for Parasitology offers authors the option to sponsor nonsubscriber access to their articles on Elsevier electronic publishing platforms. For more information please view our Sponsored Articles page. The International Journal for Parasitology publishes the results of original research in all aspects of basic and applied parasitology, including all the fields covered by its Specialist Editors, and ranging from parasites and host-parasite relationships of intrinsic biological interest to those of social and economic importance in human and veterinary medicine and agriculture.
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