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Mechanisms of Gene Regulation by EBV EBNA-1 Protein

Mechanisms of Gene Regulation by EBV EBNA-1 Protein
EBV EBNA-1蛋白的基因调控机制
批准号:
7847575
负责人:
JEFFERY T SAMPLE
金额:
$38.78万
依托单位国家:
美国
项目类别:
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-08-01 至 2012-07-31

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中文摘要
翻译
描述(由申请人提供):eb病毒(EBV)是一种非常成功的病原体,能够作为B淋巴细胞内的潜伏感染终生存在,几乎没有明显的疾病。然而,免疫监测的中断,例如艾滋病的后果,仍然是eb病毒相关淋巴瘤发展的重要危险因素,强调了这种潜在致癌疱疹病毒与宿主免疫系统之间存在的高度进化的平衡。这种平衡依赖于EBV潜伏期相关基因表达的选择性下调,在持续感染的建立过程中,最终限制了对维持持久性至关重要的病毒基因的表达,同时排除了那些具有急性转化特性和/或编码EBV特异性t细胞监测识别的显性表位的基因。在向受限潜伏期过渡的过程中,一个关键的过程是启动子开关事件,启动子开关事件使EBV必需的基因组维持蛋白EBNA-1从启动子Qp中独占表达,该启动子Qp可以通过其转录起始位点下游的两个EBNA-1结合位点负向自动调节。我们最近对EBNA-1抑制机制的研究表明,EBNA-1抑制不是通过抑制转录,而是通过抑制pre-mRNA加工。此外,这种自动调节的主要意义最近变得明显起来。尽管EBNA-1早期被认为对宿主免疫监视是“不可见的”,因为它能够抑制细胞蛋白酶体对其的降解,从而阻止与HLA I类分子相关的EBNA-1肽表位的呈现,但随后的研究表明,识别EBNA-1的细胞毒性T细胞不仅存在,而且它们被定向到EBNA-1实际合成过程中产生的肽,而不是通过成熟EBNA-1的降解。因此,对蛋白酶体降解的抵抗是次于ena -1的自动调节表达,作为EBV限制ena -1特异性t细胞杀伤的主要机制。此外,最近描述的ena -1的抗凋亡特性表明它可能具有致瘤潜力。因此,我们假设,EBNA-1的自我调节功能对EBV的持久性及其相关的致病潜力至关重要:它确保足够的EBNA-1维持基因组,同时将EBNA-1合成限制在阈值以下,如果超过阈值,将使潜伏感染的B细胞被EBNA-1特异性细胞毒性T细胞消除,并可能发生致癌转化。我们提出了三个具体目标,以帮助我们实现确定EBNA-1自身调控对EBV生物学,免疫逃避和发病机制的贡献的长期目标:1)阐明ena -1对mrna前加工的影响;2)明确EBNA-1自调节的分子机制;3)阐明EBNA-1自动调节对EBV潜伏期生长和限制程序的贡献。公共卫生相关性:爱泼斯坦-巴尔病毒(EBV)是一种疱疹病毒,在其人类宿主中具有显著的致癌潜力,特别是在因艾滋病而免疫抑制的个体中。通过这项研究,我们希望更好地了解如何预防或治疗EBV感染。具体来说,我们试图阐明EBV关键蛋白EBNA-1调节其自身表达的机制,并确定这种自我调节机制在B淋巴细胞内不同形式的EBV感染中的各自重要性。我们假设EBNA-1的自身调节功能确保其在EBV DNA基因组繁殖中发挥其基本作用所必需的水平上表达,但低于宿主免疫系统检测到的水平,并可能促进恶性肿瘤。
英文摘要
DESCRIPTION (provided by applicant): Epstein-Barr virus (EBV) is an extremely successful pathogen, able to persist lifelong as a latent infection within B lymphocytes with little overt disease. However, a breakdown in immune surveillance, e.g., as a consequence of AIDS, remains a significant risk factor for development of EBV-associated lymphoma, underscoring the highly evolved equilibrium that exists between this potentially oncogenic herpesvirus and the host immune system. This equilibrium is dependent on a selective down-regulation of EBV latency-associated gene expression during establishment of persistent infection that ultimately restricts expression to viral genes critical for maintenance of persistence, while precluding those with acute transforming properties and/or which encode dominant epitopes recognized by the EBV-specific T-cell surveillance. A pivotal process in this transition to restricted latency is a promoter switching event that enables exclusive expression of the essential EBV genome-maintenance protein, EBNA-1, from the promoter Qp, which can be negatively autoregulated through two EBNA-1 binding sites immediately downstream of its transcription start site. Our recent efforts to define the mechanism of EBNA-1 repression revealed that it acts not by inhibition of transcription, as originally believed, but by suppression of pre-mRNA processing. The principal significance of this autoregulation, furthermore, has recently become apparent. Although EBNA-1 was earlier thought to be "invisible" to the host immune surveillance as a consequence of its ability to inhibit in cis its degradation by the cell proteasome, thereby preventing presentation of EBNA-1 peptide epitopes in association with HLA class I molecules, subsequent studies indicated that cytotoxic T cells that recognize EBNA-1 not only exist, but that they are directed towards peptides generated during actual synthesis of EBNA-1, not by the degradation of mature EBNA-1. Thus, resistance to proteasomal degradation is secondary to the autoregulated expression of EBNA-1 as the primary mechanism employed by EBV to restrict EBNA-1-specific T-cell killing. Further, recently described anti-apoptotic properties of EBNA-1 suggest that it may have tumorigenic potential. We hypothesize, therefore, that the autoregulatory function of EBNA-1 is highly critical to EBV persistence and its associated pathogenic potential: it ensures sufficient EBNA-1 for genome maintenance, while limiting EBNA-1 synthesis below a threshold that, if exceeded, would subject latently infected B cells to elimination by EBNA-1-specific cytotoxic T cells, and potentially oncogenic transformation. We propose three specific aims to help us reach our long-term objective of defining the contribution of EBNA-1 autoregulation to EBV biology, immune evasion and pathogenesis: 1) Elucidate the influence of EBNA-1 on pre-mRNA processing; 2) Define the molecular mechanism of EBNA-1 autoregulation; and 3) Elucidate the contributions of EBNA-1 autoregulation to the growth and restricted programs of EBV latency. PUBLIC HEALTH RELEVANCE: Epstein-Barr virus (EBV) is a herpesvirus that has significant potential to cause cancer in its human host, particularly within individuals that become immune suppressed as a consequence of AIDS, for example. Through this research we hope to gain a better understanding of how infection by EBV may be prevented or treated. Specifically, we seek to elucidate the mechanism by which a key EBV protein, EBNA-1, regulates its own expression, and to determine the respective importance of this autoregulatory mechanism in the different forms of EBV infection within B lymphocytes. We hypothesize that the autoregulatory function of EBNA-1 ensures that it is expressed at levels necessary to perform its essential role in propagation of the EBV DNA genome, but below levels that would be detected by the host immune system and that might promote malignancy.
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