Suppr超能文献

刚地弓形虫环磷酸腺苷依赖性蛋白激酶亚基3参与速殖子向缓殖子发育的转变。

Toxoplasma gondii Cyclic AMP-Dependent Protein Kinase Subunit 3 Is Involved in the Switch from Tachyzoite to Bradyzoite Development.

作者信息

Sugi Tatsuki, Ma Yan Fen, Tomita Tadakimi, Murakoshi Fumi, Eaton Michael S, Yakubu Rama, Han Bing, Tu Vincent, Kato Kentaro, Kawazu Shin-Ichiro, Gupta Nishith, Suvorova Elena S, White Michael W, Kim Kami, Weiss Louis M

机构信息

Department of Pathology, Albert Einstein College of Medicine, Bronx, New York, USA National Research Center for Protozoan Diseases, Obihiro University of Agriculture and Veterinary Medicine, Obihiro, Hokkaido, Japan.

Department of Pathology, Albert Einstein College of Medicine, Bronx, New York, USA.

出版信息

mBio. 2016 May 31;7(3):e00755-16. doi: 10.1128/mBio.00755-16.

Abstract

UNLABELLED

Toxoplasma gondii is an obligate intracellular apicomplexan parasite that infects warm-blooded vertebrates, including humans. Asexual reproduction in T. gondii allows it to switch between the rapidly replicating tachyzoite and quiescent bradyzoite life cycle stages. A transient cyclic AMP (cAMP) pulse promotes bradyzoite differentiation, whereas a prolonged elevation of cAMP inhibits this process. We investigated the mechanism(s) by which differential modulation of cAMP exerts a bidirectional effect on parasite differentiation. There are three protein kinase A (PKA) catalytic subunits (TgPKAc1 to -3) expressed in T. gondii Unlike TgPKAc1 and TgPKAc2, which are conserved in the phylum Apicomplexa, TgPKAc3 appears evolutionarily divergent and specific to coccidian parasites. TgPKAc1 and TgPKAc2 are distributed in the cytomembranes, whereas TgPKAc3 resides in the cytosol. TgPKAc3 was genetically ablated in a type II cyst-forming strain of T. gondii (PruΔku80Δhxgprt) and in a type I strain (RHΔku80Δhxgprt), which typically does not form cysts. The Δpkac3 mutant exhibited slower growth than the parental and complemented strains, which correlated with a higher basal rate of tachyzoite-to-bradyzoite differentiation. 3-Isobutyl-1-methylxanthine (IBMX) treatment, which elevates cAMP levels, maintained wild-type parasites as tachyzoites under bradyzoite induction culture conditions (pH 8.2/low CO2), whereas the Δpkac3 mutant failed to respond to the treatment. This suggests that TgPKAc3 is the factor responsible for the cAMP-dependent tachyzoite maintenance. In addition, the Δpkac3 mutant had a defect in the production of brain cysts in vivo, suggesting that a substrate of TgPKAc3 is probably involved in the persistence of this parasite in the intermediate host animals.

IMPORTANCE

Toxoplasma gondii is one of the most prevalent eukaryotic parasites in mammals, including humans. Parasites can switch from rapidly replicating tachyzoites responsible for acute infection to slowly replicating bradyzoites that persist as a latent infection. Previous studies have demonstrated that T. gondii cAMP signaling can induce or suppress bradyzoite differentiation, depending on the strength and duration of cAMP signal. Here, we report that TgPKAc3 is responsible for cAMP-dependent tachyzoite maintenance while suppressing differentiation into bradyzoites, revealing one mechanism underlying how this parasite transduces cAMP signals during differentiation.

摘要

未标记

刚地弓形虫是一种专性细胞内顶复门寄生虫,可感染包括人类在内的温血脊椎动物。刚地弓形虫的无性繁殖使其能够在快速复制的速殖子和静止的缓殖子生命周期阶段之间转换。短暂的环磷酸腺苷(cAMP)脉冲促进缓殖子分化,而cAMP的持续升高则抑制这一过程。我们研究了cAMP的差异调节对寄生虫分化产生双向作用的机制。刚地弓形虫中表达三种蛋白激酶A(PKA)催化亚基(TgPKAc1至-3)。与顶复门中保守的TgPKAc1和TgPKAc2不同,TgPKAc3在进化上似乎有差异,且是球虫寄生虫特有的。TgPKAc1和TgPKAc2分布在细胞膜中,而TgPKAc3存在于细胞质中。在刚地弓形虫II型成囊株(PruΔku80Δhxgprt)和I型株(RHΔku80Δhxgprt,通常不形成囊肿)中对TgPKAc3进行基因敲除。Δpkac3突变体的生长速度比亲本株和互补株慢,这与速殖子向缓殖子分化的基础速率较高有关。用3-异丁基-1-甲基黄嘌呤(IBMX)处理可提高cAMP水平,在缓殖子诱导培养条件(pH 8.2/低CO2)下,野生型寄生虫保持为速殖子,而Δpkac3突变体对该处理无反应。这表明TgPKAc3是负责cAMP依赖性速殖子维持的因子。此外,Δpkac3突变体在体内脑囊肿的产生方面存在缺陷,这表明TgPKAc3的一个底物可能参与了该寄生虫在中间宿主动物中的持续存在。

重要性

刚地弓形虫是包括人类在内的哺乳动物中最普遍的真核寄生虫之一。寄生虫可以从负责急性感染的快速复制的速殖子转变为作为潜伏感染持续存在的缓慢复制的缓殖子。先前的研究表明,刚地弓形虫的cAMP信号传导可根据cAMP信号的强度和持续时间诱导或抑制缓殖子分化。在此,我们报告TgPKAc3负责cAMP依赖性速殖子维持,同时抑制向缓殖子的分化,揭示了这种寄生虫在分化过程中如何转导cAMP信号的一种机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0f37/4895117/7318098a29d5/mbo0031628420001.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验