Microbial Pattern Recognition by the Social Amoeba Dictyostelium discoideum - Mod
Microbial Pattern Recognition by the Social Amoeba Dictyostelium discoideum - Mod
批准号:
7778494
负责人:
Michelle Lynn Dykstra Snyder
金额:
$19.45万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-03-10 至 2014-08-31
关键词:
AllergicAmoeba genusAnimal ModelAnimalsAttentionAutoimmune DiseasesB-LymphocytesBacteriaBacterial InfectionsBiological ModelsCell WallCellsChemotaxisDetectionDevelopmentDictyostelium discoideumDiseaseDrosophila genusEnzymesEukaryotic CellEvolutionExcisionFamilyGenesGenomeGrowthHandHomologous GeneHomologous ProteinHypersensitivityImmuneImmune responseImmune systemImmunityIndividualInterleukin-1 ReceptorsInvadedKnock-outLifeLife Cycle StagesLipopolysaccharidesLymphocyteMammalsMediatingMemoryMicrobeModelingMolecularMonitorMutagenesisNatural ImmunityNutrientNutritionalOrganismPathway interactionsPatternPattern RecognitionPattern recognition receptorPeptidoglycanPhagocytosisPlayProcessProteinsRegulationRelative (related person)RoleScreening procedureSeminalSentinelSignal PathwaySignaling ProteinSoilSourceStarvationStudy modelsSurfaceSystemT memory cellTechniquesTechnologyTestingTherapeuticToll-like receptorsTomatoesVaccinesVirusWorkXiphosuraYeastsarmbasedesignfungusgenetic analysisinsightkillingslong term memorymembermicrobialmutantnovelnovel therapeuticsoverexpressionpathogenpublic health relevancereceptorresponsescavenger receptorsocialtooltranscription factoryeast two hybrid system
中文摘要
描述(由申请人提供):先天免疫细胞作为抵御致病病原体的第一道防线,在检测到广泛的细菌、病毒和真菌上保守的微生物结构模式时产生反应。有效的先天性应答使个体摆脱大量的入侵病原体,并且对于B和T淋巴细胞记忆应答的最佳刺激也显得至关重要。另一方面,过度活跃的先天反应与过敏性和自身免疫性疾病相关。因此,对先天免疫反应和这些反应背后的微生物模式识别机制的基本理解对于开发感染性和自身免疫性疾病的新疗法至关重要。此外,对记忆淋巴细胞的先天免疫刺激的了解可以帮助开发有效的疫苗。 先天免疫系统用来检测病原体的微生物模式识别机制似乎是高度保守的,因此,对果蝇等简单动物的免疫研究导致了许多微生物模式识别机制的发现和表征,特别是Toll样受体。先天免疫系统识别微生物的分子基础的研究将通过使用具有强大的遗传分析工具的简单真核细胞系统来促进。在这里,我们建议探索的可能性,社会阿米巴使用相同类型的微生物模式识别机制来检测细菌猎物和防御细菌病原体的哺乳动物先天免疫细胞,从而提供这样一个模型。的确,D。discoideum已被证明是研究哺乳动物免疫细胞趋化反应的有用模型,并且在这些进化多样性细胞中介导趋化性的信号通路中的相似性是显著的。 有证据表明D. discoideum使用保守的模式识别机制。它的基因组编码与已知模式识别分子同源的蛋白质,对其中一些蛋白质的分析表明它们在细菌识别中起作用。此外,我们的初步结果表明,D.盘状突菌在检测到特定的微生物模式时启动细胞反应。为了验证我们的假设,微生物模式识别机制是保守的D。discoideum,我们计划1)进一步分析D. discoideum对细菌模式的反应,2)使用敲除和过表达技术来表征D. discoideum蛋白同源已知的模式识别分子,和3)采用突变体筛选和酵母双杂交技术,以确定新的D.参与细菌识别的discoideum蛋白。 我们的研究结果将为进一步研究D.盘状突考虑到微生物模式识别机制在各种物种中的保守性,我们的发现也应该让我们深入了解哺乳动物先天免疫系统中的模式识别。
公共卫生相关性:先天免疫应答对于快速有效地去除大多数病原体和刺激T和B淋巴细胞的有效长期记忆应答都是至关重要的。相反,过度活跃的先天反应与过敏性和自身免疫性疾病有关。更好地理解先天免疫系统识别微生物的分子机制,可以调节感染性和自身免疫性疾病和过敏症中的先天免疫反应。对先天免疫系统刺激长期记忆反应的深入了解也应该允许设计更有效的疫苗策略。我们在这里的建议,使用社会阿米巴Dictyosteelium discoideum作为模型系统,研究先天免疫中的微生物模式识别的分子机制,应该深入了解可能是保守的哺乳动物免疫系统的机制,并可能告知新的治疗感染性和自身免疫性疾病的发展。
英文摘要
DESCRIPTION (provided by applicant): Innate immune cells, which act as a first line of defense against disease-causing pathogens, mount responses upon detection of microbial structural patterns conserved on a wide array of bacteria, viruses and fungi. Effective innate responses rid an individual of a vast number of invading pathogens and also appear vital for optimal stimulation of B and T lymphocyte memory responses. On the other hand, overactive innate responses are correlated with allergic and autoimmune diseases. Thus, a basic understanding of innate immune responses and the microbial pattern recognition machinery underlying these responses is crucial to development of new therapies for infectious and autoimmune diseases. In addition, insights into innate immune stimulation of memory lymphocytes can assist in development of effective vaccines. The microbial pattern recognition machinery used by innate immune systems to detect pathogens appears highly conserved, and for this reason, the study of immunity in simple animals such as Drosophila has led to the discovery and characterization of many microbial pattern recognition mechanisms, notably the Toll-like receptors. The study of the molecular basis of the innate immune system's recognition of microbes would be facilitated by the use of a simple eukaryotic cell system with powerful tools for genetic analysis. Here we propose to explore the possibility that the social amoeba uses the same types of microbial pattern recognition machinery to detect bacterial prey and defend against bacterial pathogens as do mammalian innate immune cells and would thus provide such a model. Indeed, D. discoideum has proven to be a useful model for the study of chemotactic responses by mammalian immune cells, and the parallels in the signaling pathways that mediate chemotaxis in these evolutionary diverse cells are remarkable. Several lines of evidence suggest that D. discoideum uses conserved pattern recognition mechanisms. Its genome encodes for proteins homologous to known pattern recognition molecules, and analysis of some of these proteins has indicated a role in bacterial recognition. In addition, our preliminary results show that D. discoideum initiates cellular responses upon detection of particular microbial patterns. To test our hypothesis that microbial pattern recognition machinery is conserved in D. discoideum we plan to 1) further analyze D. discoideum responses to bacterial patterns, 2) use knockout and overexpression technologies to characterize D. discoideum proteins homologous to known pattern recognition molecules, and 3) employ mutant screening and yeast-two-hybrid techniques to identify new D. discoideum proteins involved in bacterial recognition. The results from our studies should allow further characterization of microbial pattern recognition in D. discoideum. Given the conservation of microbial pattern recognition mechanisms among a wide array of species, our findings should also give insight into pattern recognition in mammalian innate immune systems.
PUBLIC HEALTH RELEVANCE: Innate immune responses are critical both for the quick and efficient removal of most pathogens and for the stimulation of effective long-term memory responses from T and B lymphocytes. Conversely, overactive innate responses are associated with allergic and autoimmune diseases. A greater understanding of the molecular mechanisms underlying microbial recognition by innate immune systems could allow for the regulation of innate immune responses in infectious and autoimmune diseases and allergies. Insights into the stimulation of long-term memory responses by innate immune systems should also allow for design of more effective vaccine strategies. Our proposal here to use the social amoeba Dictyostelium discoideum as a model system to study the molecular mechanisms underlying microbial pattern recognition in innate immunity should lend insight into mechanisms that may be conserved in mammalian immune systems and may inform development of new therapeutics for infectious and autoimmune diseases.
期刊论文(1)
专著(0)
科研奖励(0)
会议论文
Lipopolysaccharide enhances bactericidal activity in Dictyostelium discoideum cells.
脂多糖增强盘基网柄菌细胞的杀菌活性。
DOI:
10.1016/j.dci.2011.03.018
发表时间:
2011
期刊:
Developmental and comparative immunology
影响因子:
2.9
作者:
[Walk,Alexander, Callahan,Jennifer, Srisawangvong,Pat, Leuschner,Jessica, Samaroo,Dave, Cassilly,Daniel, Snyder,MichelleLD]
通讯作者:
Snyder,MichelleLD
Development of a Dictyostelium Discoideum Model for Genomic and Transcriptomic Analysis of Conserved Interactions with Enteric Pathogens
-
批准号:8983397
-
项目类别:
-
资助金额:$6.2万
-
财政年份:2015
-
负责人:Michelle Lynn Dykstra Snyder
-
依托单位: