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Characterisation of a conserved protein acting as key positive regulator in plant innate immunity

Characterisation of a conserved protein acting as key positive regulator in plant innate immunity
植物先天免疫中作为关键正调节因子的保守蛋白的表征
批准号:
BB/F021046/1
负责人:
Cyril Zipfel
金额:
$43.26万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2008
资助国家:
英国
项目状态:
已结题
起止时间:
2008 至 --

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中文摘要
翻译
植物缺乏有颌脊椎动物的适应性免疫机制,因此依靠先天免疫反应进行防御。作为无根生物,它们受到不断变化的环境条件的影响,包括不断的病原体攻击。然而,潜在的病原体必须首先遇到本构存在的屏障,如蜡层或坚硬的细胞壁。如果病原体能够克服这些障碍,它们就会被植物细胞识别。植物缺乏专门识别微生物的循环细胞,如巨噬细胞。相反,每个细胞都能够自主识别病原体并做出反应。此外,系统信号可以在微生物刺激下触发,使naïve组织为即将到来的攻击做好准备。总的来说,植物的先天免疫是非常有效的,大多数植物对大多数微生物都有抗性。这种成功的部分原因是由于所有细胞都编码了惊人的识别特异性。植物最初通过位于细胞表面的模式识别受体(PRRs)感知病原体相关分子模式(PAMPs)来感知微生物。PAMPs是一种保守的、不可或缺的分子,是一类微生物的特征,因此很难突变或删除。它们也被称为微生物相关分子模式(MAMPs),因为它们不仅限于病原微生物。第一级识别被称为pmp触发免疫(PTI)。为了感染寄主植物,病原体已经进化出逃避识别或抑制随后信号传导步骤的策略。在许多情况下,PTI的抑制涉及病原体的毒力效应物的分泌。在植物和病原体之间的动态共同进化中,一些植物进化出了抗性蛋白(R蛋白)来直接或间接识别这些效应物。这种所谓的效应触发免疫(ETI)通常伴随着被称为超敏反应(HR)的局部细胞死亡。反过来,病原体已经进化出能够抑制ETI的效应物,因此宿主和病原体之间的军备竞赛仍在继续。在这个模型中,PTI是植物主动防御的第一个方面,因此可以被认为是植物与微生物相互作用的主要驱动力。我们需要正确地理解PTI不仅是因为它的内在利益,而且因为许多效应靶标将是PTI的组成部分。尽管PTI很重要,但我们对PAMP的感知和信号传导知之甚少。我们利用拟南芥植物模式种来研究PTI。我们已经鉴定出一种在植物、哺乳动物、昆虫和蠕虫中保守的蛋白,作为PAMP反应和细菌抗病的关键调节因子。我们的初步结果表明,这种蛋白质是几种PAMP感知系统所必需的。我们将讨论该蛋白是否直接调节PAMP感知或在PAMP与其受体结合后作用于下游信号传导水平。我们还将确定哪些其他PAMP感知系统依赖于这种蛋白质。最后进行实验,探索该蛋白的分子功能。
英文摘要
Plants lack the adaptive immunity mechanisms of jawed vertebrates, so rely on innate immune responses for their defence. As sessile organisms they are subject to changing environmental conditions including constant pathogen attack. However, would-be pathogens have first to encounter constitutively present barriers such as wax layers or rigid cell walls. If a pathogen can overcome these barriers, they are then subject to recognition by plant cells. Plants lack circulating cells specialized in microbe recognition, such as macrophages. Instead, each cell is able to recognise and respond to pathogens autonomously. In addition, systemic signalling can be triggered in response to microbial stimuli that prepare naïve tissue for imminent attack. Overall, plant innate immunity is very efficient and most plants are resistant to most microbes. Part of this success is due to an amazing spectrum of recognition specificities encodes by all cells. Plants initially sense microbes via perception of pathogen-associated molecular patterns (PAMPs) by pattern-recognition receptors (PRRs) located on the cell surface. PAMPs are conserved, indispensable molecules that are characteristic of a whole class of microbes, therefore are difficult to mutate or delete. They are also referred to as microbe-associated molecular patterns (MAMPs), as they are not limited to pathogenic microbes. This first level of recognition is referred to as PAMP-triggered immunity (PTI). To infect host plants successful pathogens have evolved strategies either to evade recognition, or to suppress the subsequent signalling steps. In many cases, suppression of PTI involves secretion of virulence effectors by the pathogens. In a dynamic co-evolution between plants and pathogens, some plants have evolved resistance proteins (R proteins) to recognise these effectors directly or indirectly. This so-called effector-triggered immunity (ETI) is often accompanied by local cell death known as the hypersensitive response (HR). In turn, pathogens have evolved effectors capable of suppressing ETI, and so the arms-race between host and pathogens continues. In this model, PTI is the first facet of active plant defence and can therefore be considered as the primary driving-force of plant-microbe interactions. We need to understand PTI properly not only because of its intrinsic interest, but because many of the effector targets will be PTI components. Despite the importance of PTI, we still know little about PAMP perception and signalling. We are using the plant model species Arabidopsis thaliana to study PTI. We have identified a protein conserved in plants, but also in mammals, insects and worms, as being a key regulator of PAMP responses and bacterial disease resistance. Our preliminary results indicate that this protein is required for several PAMP perception systems. We will address if this protein directly regulates PAMP perception or acts on the level of downstream signalling following binding of the PAMP to its receptor. We will also determine which other PAMP perception systems are dependent on this protein. Finally, experiments to explore the molecular function of this protein will be performed.
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16-ERACAPS: Signaling complexes in plant immunity and development "SICOPID"
  • 批准号:
    BB/S004734/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $19.26万
  • 财政年份:
    2018
  • 负责人:
    Cyril Zipfel
  • 依托单位:
Signaling to plant immunity responses (PathoNet)
  • 批准号:
    BB/G024944/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $40.39万
  • 财政年份:
    2009
  • 负责人:
    Cyril Zipfel
  • 依托单位:
Pattern recognition receptors: discovery function and application in crops for durable disease control (PRR CROP)
  • 批准号:
    BB/G024936/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $40.14万
  • 财政年份:
    2009
  • 负责人:
    Cyril Zipfel
  • 依托单位:
A functional kinomics approach to dissecting signalling pathways in plant PAMP-triggered immunity
  • 批准号:
    BB/E017134/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $44.09万
  • 财政年份:
    2007
  • 负责人:
    Cyril Zipfel
  • 依托单位:
海外基金