课题基金 / 基金详情

HCMV IN AIDS--DISRUPTION OF CELL CYCLE REGULATION

HCMV IN AIDS--DISRUPTION OF CELL CYCLE REGULATION
艾滋病中的 HCMV——细胞周期调节的破坏
批准号:
6146752
负责人:
Eng-Shang Huang
金额:
$28.4万
依托单位国家:
美国
项目类别:
财政年份:
2000
资助国家:
美国
项目状态:
已结题
起止时间:
2000-03-01 至 2005-02-28

项目摘要

项目成果

Eng-Shang Huang的其他基金

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中文摘要
翻译
人巨细胞病毒(HCMV)感染是艾滋病患者中最重要的机会性感染之一,并被认为是HIV-1疾病进展的辅助因素。流行病学证据已确定HCMV是涉及细胞异常生长的疾病(如再狭窄和宫颈癌)的可能因素或辅助因素。尽管抗逆转录病毒疗法最近取得了进展,但艾滋病毒相关恶性肿瘤的发病率并没有下降,例如浸润性宫颈癌。由于许多体外研究证明了HCMV的致癌潜力,以及它在人类恶性组织和艾滋病患者中的普遍存在,本研究将进一步探索和描述细胞和病毒因素之间的相互作用,这些因素可能导致宿主DNA复制机制的激活,并可能导致不受控制的细胞增殖,特别是在半许可或非生产性HCMV感染中。将特别关注阐明HCMV即早(IE)蛋白IE1-72如何与细胞p107和p53蛋白相互作用,激活参与DNA复制的宿主基因,同时阻止细胞凋亡反应的激活。我们的工作假设是:(a)感染后,IE1-72与P107及其相关的E2F和cyclin/cdk复合物相互作用,分别激活E2F响应启动子和cyclin/cdk激酶,诱导与细胞增殖相关基因的表达;(b) IE1-72也可以通过与p53的相互作用阻止p53激活和随后p53介导的细胞凋亡。为了支持这些假设,我们提出了以下具体目标:(1)进一步表征IE1-72和P107之间的相互作用。将构建IE1- 72中具有点突变或缺失突变的蛋白质和病毒的缺失和点突变体,并利用它们进入相互作用所需的结构域。(2)描述IE1-72结合p107-E2F复合物导致p107介导的转录抑制功能减轻的机制。我们将研究IE1-72结合后p107-cyclin/cdk复合物的解离和/或激活,以确定这是否会减轻p107介导的生长抑制。(3)通过构建表达IE1-72的细胞系和缺乏p53的细胞系,了解p53与IE1-72相互作用的后果,并研究IE1-72对tgf - β 1和p53信号转导通路的影响。我们将研究每种蛋白上相互作用所必需的结构域以及这种相互作用在防止细胞凋亡中的作用。我们将研究IE1-72和p53相互作用对p53应答基因如p21和mdm2的功能意义,以确定IE1-72的表达是否也具有转录抑制作用。这些研究为我们提供了HCMV在细胞周期畸变和潜在的肿瘤发生中的作用的更清晰的图像。
英文摘要
Human cytomegalovirus (HCMV) infection is one of the most important opportunistic infections in patients with AIDS, and has been implicated as a cofactor in the progression of HIV-1 disease. Epidemiological evidence has identified HCMV as a possible factor or cofactor in diseases involving abnormal cell growth like restenosis and cervical carcinoma. Despite the recent advance in antiretroviral therapy, the incidence of HIV-associated malignancies has not decreased, such as invasive cervical cancer. Because of the oncogenic potential of HCMV as demonstrated by many in vitro studies and its ubiquity in human malignant tissues and patients with AIDS, this study will explore further and delineate the interactions between cellular and viral factors that may lead to the activation of host DNA replication machinery and, potentially, uncontrolled cellular proliferation, particularly in semi-permissive or nonproductive HCMV infection. Specific attention will be devoted to elucidating how the HCMV immediate-early (IE) protein, IE1-72, interacts with the cellular p107 and p53 proteins to activate host genes involved in DNA replication, while preventing the activation of the cellular apoptotic response. Our working hypotheses are: (a) that upon infection IE1-72 interacts with P107 and its associated E2F and cyclin/cdk complexes to activate E2F responsive promoters and cyclin/cdk kinase, respectively, to induce expression of genes associated with cellular proliferation; and (b) that IE1-72 also acts to prevent p53 activation and subsequent p53-mediated apoptosis via its interaction with p53. To support these hypotheses, we propose the following specific aims: (l) To further characterize the interactions between IE1-72 and P107. Deletion and point mutants of both proteins and viruses with point or deletion mutation in IE1- 72 will be constructed and used to access the domains necessary for interaction. (2) To describe the mechanism by which IE1-72 binding to the p107-E2F complex results in the alleviation of p107-mediated transcriptional repression function. The dissociation and/or activation of the p107-cyclin/cdk complexes following IE1-72 binding will be examined to determine if this leads to the alleviation of the p107-mediated growth suppression. (3) To understand the consequences of the interaction between p53 and IE1-72, and to study the effect of IE1-72 on the TGF-beta1 and p53 signal transduction pathways through the use of cell lines constitutively expressing IE1-72 and cell lines lacking p53. The domains on each protein necessary for interaction and the role this interaction plays in the preventing cellular apoptosis will be studied. The functional significance of the IE1-72 and p53 interaction on p53-responsive genes like p21 and mdm2 will be investigated to determine whether IE1-72 expression also has a transcriptionally repressive effect. These studies should provide us with a clearer picture of HCMV's role in cell cycle aberrations and, potentially, oncogenesis.
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HCMV DYSREGULATES ENDOTHELIAL CELL FUNCTIONS
HCMV IN AIDS--DISRUPTION OF CELL CYCLE REGULATION
HCMV IN AIDS--DISRUPTION OF CELL CYCLE REGULATION
HCMV IN AIDS--DISRUPTION OF CELL CYCLE REGULATION