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Genetic analysis of innate immunity using C. elegans

Genetic analysis of innate immunity using C. elegans
使用秀丽隐杆线虫进行先天免疫的遗传分析
批准号:
8462761
负责人:
Alejandro Aballay
金额:
$3.4万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2004
资助国家:
美国
项目状态:
已结题
起止时间:
2004-09-30 至 2013-08-31

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中文摘要
翻译
描述(由申请人提供):本提案描述了旨在阐明神经系统调节先天免疫以应对病原体感染的机制的实验。我们在秀丽隐杆线虫中的工作导致了对在感染不同病原体时表现出异常反应的突变体的鉴定。分析这些C。elegans突变体在免疫反应中的缺陷正在阐明各种相互作用和交叉的遗传途径的作用,这些遗传途径涉及在包括人类在内的物种中高度保守的免疫反应。本实验室的最新研究表明,C. elegans是由表达NPR-1的神经元调节的,NPR-1是与哺乳动物神经肽Y受体相关的G蛋白偶联受体。我们的研究已经证明,涉及NPR-1的神经回路的功能,以抑制先天免疫反应。免疫抑制功能需要由tax-2和tax-4以及可溶性鸟苷酸环化酶GCY-35编码的环GMP门控离子通道。此外,我们发现npr-1和gcy-35表达的感觉神经元积极抑制非神经元组织的免疫反应。对因npr-1突变而改变神经功能的动物进行的全基因组微阵列分析显示,作为先天免疫反应标志物的基因富集,包括由保守的PMK-1/p38丝裂原活化蛋白激酶信号通路调节的基因。该方案将利用C. elegans模型,以阐明神经系统在调节针对细菌病原体的先天免疫中的作用。我们假设G蛋白偶联受体(GPCRs)可能参与神经回路,从病原体或感染部位接收输入,并整合它们以协调适当的先天免疫反应。有三个具体目标:1)鉴定表达调节先天免疫的GPCR的神经元。2)解剖调节先天免疫的神经回路。3)神经免疫通讯信号的识别和表征。拟议的研究将作为一个路线图,以了解神经和免疫系统通过双向信号进行通信的机制。鉴于神经通讯和先天免疫反应的保守性,我们希望我们的工作将导致更好地了解后生动物神经和先天免疫系统相互影响的机制。公共卫生相关性:我们计划继续我们的研究,以澄清神经系统在调节先天免疫反应对细菌病原体的作用。更好地理解神经免疫通讯可能会导致涉及先天免疫系统缺陷的疾病的新治疗靶点。
英文摘要
Description (provided by applicant): This proposal describes experiments designed to elucidate the mechanism by which the nervous system regulates innate immunity in response to pathogen infection. Our work in Caenorhabditis elegans has led to the identification of mutants that exhibit aberrant responses when infected with different pathogens. Analysis of these C. elegans mutants deficient in immune responses is clarifying the roles of a variety of interacting and intersecting genetic pathways involved in immune responses highly conserved across species, including humans. The latest studies from our laboratory indicate that innate immunity in C. elegans is regulated by neurons expressing NPR-1, which is a G-protein-coupled receptor related to mammalian neuropeptide Y receptors. Our studies have demonstrated that a neural circuit involving NPR-1 functions to suppress innate immune responses. The immune inhibitory function requires a cyclic GMP-gated ion channel encoded by tax-2 and tax-4 as well as the soluble guanylate cyclase GCY-35. Furthermore, we showed that npr-1- and gcy-35-expressing sensory neurons actively suppress immune responses of non-neuronal tissues. A full-genome microarray analysis on animals with altered neural function due to mutation in npr-1 showed enrichment in genes that are markers of innate immune responses, including those regulated by a conserved PMK-1/p38 mitogen-activated protein kinase signaling pathway. This proposal will continue our studies utilizing a C. elegans model to clarify the role of the nervous system in the regulation of innate immunity against bacterial pathogens. We hypothesize that G-protein coupled receptors (GPCRs) may participate in neural circuits that receive inputs from either pathogens or infected sites and integrate them to coordinate appropriate innate immune responses. There are three specific aims: 1) Identification of neurons expressing GPCRs that regulate innate immunity. 2) Dissection of the neural circuit that regulates innate immunity. 3) Identification and characterization of signals involved in neural- immune communications. The proposed studies will serve as a roadmap to understand the mechanisms by which the nervous and immune systems communicate through bidirectional signals. Given the conserved nature of neural communications and innate immune responses, we expect our work will lead to a better understanding of the mechanisms by which the metazoan nervous and innate immune systems influence each other. PUBLIC HEALTH RELEVANCE: We plan to continue our studies to clarify the role of the nervous system in the regulation of innate immune responses against bacterial pathogens. A better understanding of the neural-immune communication could lead to new therapeutic targets for diseases involving a deficient innate immune system.
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Mechanism of innate immune activation by intestinal distension
Mechanism of innate immune activation by intestinal distension
Mechanism of innate immune activation by intestinal distension
C. elegans to study organismal control of recovery from bacterial infections
  • 批准号:
    9027974
  • 项目类别:
  • 资助金额:
    $39.46万
  • 财政年份:
    2015
  • 负责人:
    Alejandro Aballay
  • 依托单位:
海外基金