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Host manipulation by the Mycobacterium tuberculosis phosphatase PtpB

Host manipulation by the Mycobacterium tuberculosis phosphatase PtpB
结核分枝杆菌磷酸酶 PtpB 的宿主操纵
批准号:
8229910
负责人:
Christoph Grundner
金额:
$32.14万
依托单位国家:
美国
项目类别:
财政年份:
2012
资助国家:
美国
项目状态:
已结题
起止时间:
2012-02-13 至 2014-01-31

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中文摘要
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英文摘要
DESCRIPTION (provided by applicant): Bacterial virulence factors directly mediate host-pathogen interactions, thus providing tools to probe virulence mechanisms and to identify key host immune functions. Mycobacterium tuberculosis (Mtb) is able to survive intracellularly through extensive manipulation of the host. Mtb produces two secreted virulence factor phosphatases, PtpA and PtpB. PtpB is essential for the survival of Mtb in the host, but its molecular functions are unknown. We now show that PtpB is not a protein tyrosine phosphatase as previously assumed, but has strong similarity to lipid phosphatases, offering novel experimental routes to define PtpB substrate(s) and function. To understand how PtpB mediates Mtb survival in an infected host, we will identify the host substrates of PtpB by substrate trapping, as well as lipidomics and transcriptomics using genetic and chemical PtpB knockouts. Combining these global approaches, we will broadly capture PtpB's effect on the cell and identify PtpB-dependent changes in host lipids. Together, these studies offer a new route towards the understanding of Mtb host manipulation through the essential virulence factor PtpB. Because PtpB is emerging as a novel therapeutic target, these studies will also provide the framework for advancing drug leads. PUBLIC HEALTH RELEVANCE: Mycobacterium tuberculosis, the causative agent of tuberculosis, alters the host response to infection. The immune system is compromised by Mtb on many levels, leading to defects in efficient clearance of Mtb from infected cells. This project aims at identifying molecular mechanisms underlying host manipulation of the Mtb virulence factor PtpB. A better understanding of these virulence mechanisms is the basis for the development of better tuberculosis therapeutics.
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Functional exploration of a deep Mycobacterium tuberculosis phosphoproteome
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Direct activation of TGFbeta by an Mtb virulence factor to suppress CD4 T-cell responses
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