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本文引用的文献

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Laser scanning cytometer-based assays for measuring host cell attachment and invasion by the human pathogen Toxoplasma gondii.基于激光扫描细胞仪的检测方法,用于测量人类病原体刚地弓形虫对宿主细胞的附着和侵袭。
Cytometry A. 2006 Jan;69(1):13-9. doi: 10.1002/cyto.a.20202.
2
The opportunistic pathogen Toxoplasma gondii deploys a diverse legion of invasion and survival proteins.机会性致病原刚地弓形虫会部署多种入侵和生存蛋白。
J Biol Chem. 2005 Oct 7;280(40):34233-44. doi: 10.1074/jbc.M504160200. Epub 2005 Jul 7.
3
Conditional expression of Toxoplasma gondii apical membrane antigen-1 (TgAMA1) demonstrates that TgAMA1 plays a critical role in host cell invasion.弓形虫顶膜抗原1(TgAMA1)的条件性表达表明,TgAMA1在宿主细胞入侵中起关键作用。
Mol Biol Cell. 2005 Sep;16(9):4341-9. doi: 10.1091/mbc.e05-04-0281. Epub 2005 Jul 6.
4
Apicomplexan rhomboids have a potential role in microneme protein cleavage during host cell invasion.顶复门菱形蛋白酶在宿主细胞入侵过程中的微线体蛋白切割中可能发挥作用。
Int J Parasitol. 2005 Jun;35(7):747-56. doi: 10.1016/j.ijpara.2005.04.001. Epub 2005 Apr 21.
5
A spatially localized rhomboid protease cleaves cell surface adhesins essential for invasion by Toxoplasma.一种在空间上定位的类菱形蛋白酶可切割对弓形虫入侵至关重要的细胞表面黏附素。
Proc Natl Acad Sci U S A. 2005 Mar 15;102(11):4146-51. doi: 10.1073/pnas.0407918102. Epub 2005 Mar 7.
6
Synchronous invasion of host cells by Toxoplasma gondii.刚地弓形虫对宿主细胞的同步入侵。
Mol Biochem Parasitol. 2004 Aug;136(2):309-11. doi: 10.1016/j.molbiopara.2004.04.004.
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Trans-genera reconstitution and complementation of an adhesion complex in Toxoplasma gondii.弓形虫中黏附复合体的跨属重建与互补
Cell Microbiol. 2004 Aug;6(8):771-82. doi: 10.1111/j.1462-5822.2004.00403.x.
8
Proteomic analysis of cleavage events reveals a dynamic two-step mechanism for proteolysis of a key parasite adhesive complex.对裂解事件的蛋白质组学分析揭示了一种关键寄生虫粘附复合物蛋白水解的动态两步机制。
Mol Cell Proteomics. 2004 Jun;3(6):565-76. doi: 10.1074/mcp.M300123-MCP200. Epub 2004 Feb 24.
9
Rapid invasion of host cells by Toxoplasma requires secretion of the MIC2-M2AP adhesive protein complex.弓形虫对宿主细胞的快速侵袭需要分泌MIC2-M2AP粘附蛋白复合物。
EMBO J. 2003 May 1;22(9):2082-90. doi: 10.1093/emboj/cdg217.
10
Actin filament polymerization regulates gliding motility by apicomplexan parasites.肌动蛋白丝聚合调节顶复门寄生虫的滑行运动。
Mol Biol Cell. 2003 Feb;14(2):396-406. doi: 10.1091/mbc.e02-08-0458.

靶向删除MIC5可增强弓形虫入侵蛋白的修剪蛋白水解作用。

Targeted deletion of MIC5 enhances trimming proteolysis of Toxoplasma invasion proteins.

作者信息

Brydges Susannah D, Zhou Xing Wang, Huynh My-Hang, Harper Jill M, Mital Jeffrey, Adjogble Koku D Z, Däubener Walter, Ward Gary E, Carruthers Vern B

机构信息

W. Harry Feinstone Department of Molecular Microbiology and Immunology, Johns Hopkins Bloomberg School of Public Health, MD 21205, USA.

出版信息

Eukaryot Cell. 2006 Dec;5(12):2174-83. doi: 10.1128/EC.00163-06. Epub 2006 Sep 15.

DOI:10.1128/EC.00163-06
PMID:16980407
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1694808/
Abstract

Limited proteolysis of proteins transiently expressed on the surface of the opportunistic pathogen Toxoplasma gondii accompanies cell invasion and facilitates parasite migration across cell barriers during infection. However, little is known about what factors influence this specialized proteolysis or how these proteolytic events are regulated. Here we show that genetic ablation of the micronemal protein MIC5 enhances the normal proteolytic processing of several micronemal proteins secreted by Toxoplasma tachyzoites. Restoring MIC5 expression by genetic complementation reversed this phenotype, as did treatment with the protease inhibitor ALLN, which was previously shown to block the activity of a hypothetical parasite surface protease called MPP2. We show that, despite its lack of obvious membrane association signals, MIC5 occupies the parasite surface during invasion in the vicinity of the proteins affected by enhanced processing. Proteolysis of other secretory proteins, including GRA1, was also enhanced in MIC5 knockout parasites, indicating that the phenotype is not strictly limited to proteins derived from micronemes. Together, our findings suggest that MIC5 either directly regulates MPP2 activity or it influences MPP2's ability to access substrate cleavage sites on the parasite surface.

摘要

机会性致病原弓形虫表面瞬时表达的蛋白质发生有限蛋白水解,这伴随着细胞入侵,并在感染期间促进寄生虫跨细胞屏障迁移。然而,对于哪些因素影响这种特殊的蛋白水解,或者这些蛋白水解事件是如何调控的,人们知之甚少。在这里,我们表明,微线体蛋白MIC5的基因缺失增强了速殖子分泌的几种微线体蛋白的正常蛋白水解加工。通过基因互补恢复MIC5表达可逆转此表型,用蛋白酶抑制剂ALLN处理也可逆转此表型,ALLN先前已被证明可阻断一种名为MPP2的假定寄生虫表面蛋白酶的活性。我们表明,尽管MIC5缺乏明显的膜结合信号,但在入侵过程中,它在受加工增强影响的蛋白质附近占据寄生虫表面。在MIC5基因敲除的寄生虫中,包括GRA1在内的其他分泌蛋白的蛋白水解也增强,这表明该表型并不严格局限于源自微线体的蛋白质。总之,我们的研究结果表明,MIC5要么直接调节MPP2的活性,要么影响MPP2在寄生虫表面获取底物切割位点的能力。