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Regulation and Role in Pathogenesis of Megaplasmid-encoded Virulence Factors of Shiga Toxin producing Escherichia coli

Regulation and Role in Pathogenesis of Megaplasmid-encoded Virulence Factors of Shiga Toxin producing Escherichia coli
产志贺毒素大肠杆菌巨质粒编码毒力因子的调控及其在发病机制中的作用
批准号:
29979265
负责人:
Dr. Sylvia Herold
金额:
$0.0万
依托单位国家:
德国
项目类别:
Research Fellowships
财政年份:
2006
资助国家:
德国
项目状态:
已结题
起止时间:
2005-12-31 至 2008-12-31

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中文摘要
翻译
产生志贺毒素的大肠杆菌(STEC)可引起人类严重的胃肠道感染,从而可能导致致命的全身并发症,如溶血性尿毒综合征(HUS)。长期以来,产志贺毒素(Stx)的产生一直被认为是产志贺毒素(Stx)的直接原因。然而,越来越多的证据表明,产志异大肠杆菌菌株引起严重疾病的能力各不相同。虽然特定菌株产生的Stx的数量或亚型明显起作用,但编码在染色体致病性岛(PAI)或巨质粒上的推定辅助毒力因子也很重要。该项目是一个正在进行的大型研究项目的一部分,旨在确定产志贺毒素大肠杆菌的毒力因素特征,并确定新型疫苗和药物的靶点。它将集中于产志毒素大肠杆菌巨质粒编码的因子,特别是那些来自缺乏肠细胞消失位点(LEE)的菌株的因子。lee阴性STEC巨质粒比O157:H7等lee阳性菌株的巨质粒大得多(160比92 kb),并编码许多独特的蛋白质,其在发病机制中的作用尚不清楚。这里描述的项目的主要目的是确定这些巨质粒基因中的哪些是在模仿体内发生的条件下表达的。这将使我们能够针对单个基因进行诱变,从而可以在动物模型中评估它们对发病机制的贡献。
英文摘要
Shiga toxin producing Escherichia coli (STEC) cause serious gastrointestinal infections in humans, which can lead to potentially fatal systemic complications, such as the haemolytic uraemic syndrome (HUS). The pathology of STEC disease has long been considered to be directly attributable to the production of Shiga toxin (Stx). However, there is increasing evidence that STEC strains vary in their capacity to cause serious disease. Although the amount or subtype of Stx produced by a given strain clearly plays a role, putative accessory virulence factors encoded on chromosomal pathogenicity islands (PAI) or megaplasmids are also important. This project is part of a large on-going research program aimed at characterizing virulence factors of STEC and identifying targets for novel vaccines and drugs. It will focus on factors encoded by the STEC megaplasmids, particularly those from strains that lack the locus of enterocyte effacement (LEE). LEE-negative STEC megaplasmids are much larger than those from LEE-positive strains such as O157:H7 (160 vs 92 kb), and encode a number of unique proteins whose role in pathogenesis is unknown. The principal aim of project described here is to identify which of these megaplasmid genes are expressed under conditions that mimic those which occur in vivo. This will enable us to target individual genes for mutagenesis, such that their contribution to pathogenesis can be assessed in animal models.
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