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MYST opportunities for Toxoplasma drug development

MYST opportunities for Toxoplasma drug development
MYST 弓形虫药物开发机会
批准号:
7706859
负责人:
William J Sullivan
金额:
$18.96万
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:
2009-07-17 至 2011-06-30

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中文摘要
翻译
描述(由申请人提供):顶复虫门的致病性真核生物包括一些最臭名昭著的原生动物寄生虫,如疟原虫(疟疾),隐孢子虫(腹泻病)和弓形虫(弓形虫脑炎)。后两种寄生虫最近被列入NIAID关注的B类病原体生物防御观察名单,但长期以来一直是艾滋病和其他免疫抑制患者的严重机会性感染。由于毒副作用,弓形虫病的标准治疗是有限的,这强调了发现新的药物靶点的必要性。表观遗传修饰,如组蛋白乙酰化,已经被证实是一种新的药物靶点,但我们对这些过程知之甚少。我们一直致力于通过对弓形虫寄生虫中组蛋白乙酰转移酶(HATs)的表征来弥补这一缺陷。MYST家族中的HATs在多亚基复合物中起作用,优先使组蛋白H4乙酰化,并且通常对生存至关重要。我们最近克隆并鉴定了弓形虫中的两种MYST hat (TgMYST-A和-B),并分别生成了特异性抗体。我们已经发现,MYST HAT在寄生虫中的活性水平对寄生虫的生长至关重要。此外,其他物种的MYST HAT复合物的许多保守成分并不存在于弓形虫基因组中。简而言之,我们的初步数据表明,我们在弓形虫中发现的两个MYST HAT可能是必需的,并且可能在由独特的寄生虫特异性蛋白质组成的HAT复合物中起作用。因此,我们假设TgMYST-A和-B形成的HAT复合物对弓形虫的生存至关重要。本R21的主要目的是通过以下方法来解决这一假设:1)通过产生TgMYST- a和-B的条件敲除来评估TgMYST HAT对寄生虫生理的影响,并评估对寄生虫生存能力的影响;2)使用生化策略纯化TgMYST- a和-B相关蛋白来鉴定每个TgMYST HAT复合物的成分。该R21产生的试剂和数据有望促进发现治疗弓形虫病和潜在的其他顶复体感染的新药物靶点。它们也将具有很大的价值,可以填补我们对hat介导的寄生虫基因调控知识的空白,并实现从药理学上利用这一重要过程的长期目标。公共卫生相关性:研究针对刚地弓形虫的新药和药物靶点符合公共卫生的利益。刚地弓形虫是一种寄生虫,可导致艾滋病和其他免疫抑制患者的先天性出生缺陷和机会性感染。弓形虫也被NIAID列为与生物防御研究相关的B类病原体。我们建议研究参与寄生虫基因调控的酶复合物,并确定它们是否有希望成为药物开发的目标。
英文摘要
DESCRIPTION (provided by applicant): Pathogenic eukaryotes in the phylum Apicomplexa include some of the most notorious protozoan parasites, such as Plasmodium (malaria), Cryptosporidium (diarrheal disease), and Toxoplasma (toxoplasmic encephalitis). The latter two parasites have recently been added to the NIAID watch list of Category B pathogens of interest for Biodefense, but have long been serious opportunistic infections in AIDS and other immunosuppressed patients. The standard treatment for toxoplasmosis is limiting due to toxic adverse effects, underscoring the need for new drug target discovery. Epigenetic modifications such as histone acetylation have previously been validated as a novel drug target in apicomplexan parasites, but we understand very little about these processes. We have been working to remedy this deficiency through the characterization of the histone acetyltransferases (HATs) in the Toxoplasma parasite. HATs in the MYST family function in multi-subunit complexes, preferentially acetylate histone H4, and are generally essential for viability. We have recently cloned and characterized two MYST HATs in Toxoplasma (TgMYST-A and -B) and generated specific antibody to each. We have discovered that the level of MYST HAT activity in the parasite is critical for parasite growth. Additionally, many of the well conserved components of MYST HAT complexes in other species are not present in the Toxoplasma genome. In short, our preliminary data suggests that the two MYST HATs we have identified in Toxoplasma may be essential and are likely to operate in HAT complexes composed of unique parasite-specific proteins. Therefore, we hypothesize that TgMYST-A and -B form HAT complexes that are essential for Toxoplasma viability. The main objective of this R21 is to address this hypothesis by 1) Evaluating the impact of TgMYST HATs on parasite physiology by generating conditional knockouts for TgMYST-A and -B and assessing the consequences on parasite viability, and 2) Identifying components of each TgMYST HAT complex using biochemical strategies to purify proteins associating with TgMYST-A and -B. The reagents and data generated from this R21 promise to facilitate the discovery of new drug targets for treatment of toxoplasmosis and potentially other apicomplexan infections. They will also have great value as tools to fill the gaps in our knowledge of HAT-mediated gene regulation in parasites with the long term goal of exploiting this vital process pharmacologically. PUBLIC HEALTH RELEVANCE: It is in the interest of public health to investigate novel drugs and drug targets against Toxoplasma gondii, a parasite that causes congenital birth defects and opportunistic infection in AIDS and other immunosuppressed patients. Toxoplasma is also listed by NIAID as a category B pathogen relevant to Biodefense research. We propose to examine enzyme complexes that are involved in parasite gene regulation and determine if they are promising targets for drug development.
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Regulation of cyst formation in the AIDS opportunistic pathogen Toxoplasma
Regulation of cyst formation in the AIDS opportunistic pathogen Toxoplasma
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