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DNA双链断裂和端粒在布氏锥虫抗原变异中发挥重要作用。

DNA double-strand breaks and telomeres play important roles in trypanosoma brucei antigenic variation.

作者信息

Li Bibo

机构信息

Center for Gene Regulation in Health and Disease, Department of Biological, Geological, and Environmental Sciences, Cleveland State University, Cleveland, Ohio, USA; The Rockefeller University, New York, New York, USA; Department of Molecular Genetics, Cleveland Clinic Lerner Research Institute, Cleveland, Ohio, USA; Case Comprehensive Cancer Center, Case Western Reserve University, Cleveland, Ohio, USA

出版信息

Eukaryot Cell. 2015 Mar;14(3):196-205. doi: 10.1128/EC.00207-14. Epub 2015 Jan 9.

Abstract

Human-infecting microbial pathogens all face a serious problem of elimination by the host immune response. Antigenic variation is an effective immune evasion mechanism where the pathogen regularly switches its major surface antigen. In many cases, the major surface antigen is encoded by genes from the same gene family, and its expression is strictly monoallelic. Among pathogens that undergo antigenic variation, Trypanosoma brucei (a kinetoplastid), which causes human African trypanosomiasis, Plasmodium falciparum (an apicomplexan), which causes malaria, Pneumocystis jirovecii (a fungus), which causes pneumonia, and Borrelia burgdorferi (a bacterium), which causes Lyme disease, also express their major surface antigens from loci next to the telomere. Except for Plasmodium, DNA recombination-mediated gene conversion is a major pathway for surface antigen switching in these pathogens. In the last decade, more sophisticated molecular and genetic tools have been developed in T. brucei, and our knowledge of functions of DNA recombination in antigenic variation has been greatly advanced. VSG is the major surface antigen in T. brucei. In subtelomeric VSG expression sites (ESs), VSG genes invariably are flanked by a long stretch of upstream 70-bp repeats. Recent studies have shown that DNA double-strand breaks (DSBs), particularly those in 70-bp repeats in the active ES, are a natural potent trigger for antigenic variation in T. brucei. In addition, telomere proteins can influence VSG switching by reducing the DSB amount at subtelomeric regions. These findings will be summarized and their implications will be discussed in this review.

摘要

感染人类的微生物病原体都面临着被宿主免疫反应清除的严重问题。抗原变异是一种有效的免疫逃避机制,病原体通过这种机制定期更换其主要表面抗原。在许多情况下,主要表面抗原由同一基因家族的基因编码,并且其表达严格为单等位基因。在经历抗原变异的病原体中,导致人类非洲锥虫病的布氏锥虫(一种动基体)、导致疟疾的恶性疟原虫(一种顶复体)、导致肺炎的耶氏肺孢子菌(一种真菌)以及导致莱姆病的伯氏疏螺旋体(一种细菌),也从端粒附近的基因座表达其主要表面抗原。除了疟原虫外,DNA重组介导的基因转换是这些病原体表面抗原转换的主要途径。在过去十年中,布氏锥虫中开发了更复杂的分子和遗传工具,我们对抗抗原变异中DNA重组功能的认识有了很大进展。VSG是布氏锥虫的主要表面抗原。在亚端粒VSG表达位点(ESs)中,VSG基因总是侧翼有一段很长的上游70bp重复序列。最近的研究表明,DNA双链断裂(DSBs),特别是活跃ES中70bp重复序列中的那些,是布氏锥虫抗原变异的天然强效触发因素。此外,端粒蛋白可以通过减少亚端粒区域的DSB数量来影响VSG转换。这些发现将在本综述中进行总结并讨论其意义。

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本文引用的文献

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