Genetic Mechanisms Of Susceptibility To Ozone-induced Pulmonary Inflammation
Genetic Mechanisms Of Susceptibility To Ozone-induced Pulmonary Inflammation
批准号:
8929770
负责人:
STEVEN R KLEEBERGER
金额:
$52.26万
依托单位国家:
美国
项目类别:
财政年份:
--
资助国家:
美国
项目状态:
未结题
起止时间:
至
关键词:
AcuteAdolescenceAdultAgeAir PollutantsAir PollutionAlabamaAnatomyAnimalsAntioxidantsAttenuatedBiochemicalBreathingBronchoalveolar LavageBronchoalveolar Lavage FluidC3H/HeJ MouseCX3CL1 geneCandidate Disease GeneCell DeathCell Differentiation processCell Surface ReceptorsCellsChildChromosomes, Human, Pair 11Chromosomes, Human, Pair 17Clinical TrialsCollaborationsCoupledCytokine GeneDevelopmentEdemaEnvironmental PollutantsEnvironmental air flowEnzyme-Linked Immunosorbent AssayEpithelialEtanerceptEventExposure toFGF1 geneFutureGene ExpressionGene Expression ProfilingGenerationsGenesGeneticGenetic PolymorphismGenetic Predisposition to DiseaseGenotypeGoalsGrowth and Development functionHomologous GeneHourHumanHyperplasiaIL17 geneIL8 geneImmuneImmune responseImmune systemInbred MouseInbreedingIndividualInfantInfiltrationInflammationInflammatoryInflammatory ResponseInjuryInvestigationKnockout MiceLeadLipidsLungLung InflammationMAP Kinase GeneMHC Class II GenesMacaca mulattaMannose Binding LectinMannose-Binding LectinsMediatingMessenger RNAMethylationMinorModelingMolecular ProfilingMonkeysMucin-2 Staining MethodMucous body substanceMusNatural ImmunityOligonucleotidesOxidative StressOzonePatternPermeabilityPhasePneumoniaPopulationPredispositionPrimatesProteinsQuantitative Trait LociRNAReceptor CellRegimenRegulationRelative (related person)ResearchResearch PersonnelResponse ElementsReverse Transcriptase Polymerase Chain ReactionRiskRoleSamplingSiteSusceptibility GeneSystemTNF geneTerminal BronchioleTestingTissuesToxic effectTranscriptUniversitiesVisualWestern BlottingWild Type Mouseair filterairway inflammationbasebronchial mucuscomplement pathwaydata miningdesigngene inductiongenome wide association studyhuman CXCL5 proteinhuman subjectimmune functionin vivoinhibitor/antagonistinjured airwayinjury and repairinsightlung developmentlung injurylung tumorigenesismouse modelneutrophilnonhuman primatenotch proteinnoveloxidationpositional cloningpulmonary functionresponsetranscription factortranscriptomics
中文摘要
我们最近进行了研究,以减少Inf2的大小,以确定是否出现其他候选基因,并确定Tnf, Lta, Hsp70和MHC II类基因是臭氧(O3)诱导的气道炎症易感性的重要决定因素。正在进行的研究正在调查Notch3和Notch4(也位于Inf2)在o3诱导炎症中的作用。Notch受体是在细胞发育和免疫细胞分化过程中起重要作用的细胞表面受体。为了测试这些基因在模型中的作用,将野生型(B6129SF1, WT)、Notch3 (Notch3-/-)和Notch4 (Notch4-/-)敲除小鼠连续暴露于0.3 ppm的O3或过滤空气中6-48小时。暴露后,立即使用蛋白质浓度(肺通透性的标志)和支气管肺泡灌洗液(BALF)中的炎症细胞来评估气道炎症和损伤。O3显著增加了所有基因型的BALF蛋白,但Notch3-/-的浓度高于WT(24,48小时),Notch4-/-小鼠的浓度高于Notch3-/-(24,48小时)。与WT相比,Notch3-/-和Notch4-/-小鼠中BALF中性粒细胞的平均数量更高(24,48小时)。在所有基因型中,O3(24小时)后全肺Tnf的表达均显著增加,与WT相比,Notch3-/-和Notch4-/-的表达更高。与WT相比,Tnf抑制剂依那西普预处理显著减弱了O3诱导的Notch3-/-和Notch4-/-中增强的BALF中性粒细胞。O3诱导的其他Inf2基因的转录表达在基因型之间没有差异。然后,我们使用mRNA转录组学分析进一步研究Notch3/4的作用。统计和可视化数据挖掘方法鉴定了WT和KO小鼠之间的差异表达基因,如Gbp1, Cntn1和O3后的Ccl7, Il33。结果与Notch3和Notch4是o3诱导气道炎症易感基因的假设一致。此外,结果表明Notch3、Notch4和Tnf之间存在重要的相互作用。这些新发现表明Notch受体可以防止先天免疫对O3的炎症反应。
英文摘要
We recently performed studies to reduce the size of Inf2 to determine whether additional candidate genes emerged, and identified Tnf, Lta, Hsp70, and MHC class II genes as important determinants of susceptibility to ozone (O3)-induced airway inflammation. Ongoing studies are investigating the roles of Notch3 and Notch4, also located in Inf2, in O3-induced inflammation. Notch receptors are cell surface receptors important in development and immune cell differentiation. To test the roles of these genes in the model, wild type (B6129SF1, WT), Notch3 (Notch3-/-) and Notch4 (Notch4-/-) knockout mice were exposed to 0.3 ppm O3 or filtered air continuously for 6-48 hr. Immediately after exposure, airway inflammation and injury was assessed using protein concentration (a marker of lung permeability) and inflammatory cells in bronchoalveolar lavage fluid (BALF). O3 significantly increased BALF protein in all genotypes, but greater concentrations were found in Notch3-/- compared to WT (24, 48 hr), and concentrations were greater in Notch4-/- mice compared to Notch3-/- (24, 48 hr). Greater mean numbers of BALF neutrophils were found in Notch3-/- and Notch4-/- mice compared to WT (24, 48 hr). Expression of whole lung Tnf was significantly increased after O3 (24 hr) in all genotypes, and was greater in Notch3-/- and Notch4-/- compared to WT. Pre-treatment with the TNF inhibitor etanercept significantly attenuated the enhanced O3-induced BALF neutrophils in Notch3-/- and Notch4-/- relative to WT. O3-induced transcript expression of other Inf2 genes was not different between genotypes. We then used mRNA transcriptomics analyses to further investigate the role of Notch3/4. Statistical and visual data mining approaches identified differentially expressed genes basally e.g. Gbp1, Cntn1 and after O3 e.g. Ccl7, Il33 between WT and KO mice. Results are consistent with the hypothesis that Notch3 and Notch4 are susceptibility genes for O3-induced airway inflammation. Furthermore, results suggest an important interaction between Notch3, Notch4, and Tnf. These novel findings suggest Notch receptors protect against the innate immune inflammatory response to O3.
In another study we have tested the hypothesis that the gene mannose binding lectin (MBL), which has a central role in the activation of the complement pathway of innate immunity, is necessary to elicit some of the pro-inflammatory events caused by ozone-mediated activation of the innate immune system. Our in vivo studies have shown, compared to wild type mice (Mbl+/+), there was significantly less neutrophilic infiltration in the lungs of mice with targeted deletion of Mbl (Mbl-/-) exposed to O3 (0.3 ppm) for 72 hours. We also found reduced levels of the neutrophil attractants MIP-2 and LIX at 48 hours post-exposure in Mbl-/- mice compared to Mbl+/+ mice. Microarray analyses have identified basal and post-exposure profiles and expression response profiles that differ between Mbl+/+ and Mbl-/- mice, providing insight to the mechanisms through which MBL modulates the pulmonary response to O3 inhalation. These novel studies are the first to identify a role for MBL in response of the lung to oxidative stress, and should lead to a better understanding of mechanisms of susceptibility.
Children may be more at risk to air pollution than adults due to higher minute ventilation rates and activity levels outdoors, and continued lung development into adolescence. To study the impact of O3 exposure on the developing lung, we have collaborated with Dr. Edward Postlethwait (Univ Alabama, Birmingham) to study O3 effects on gene expression in infant rhesus macaque monkeys that were exposed to a regimen mimicking urban conditions and site and exposure duration samples were obtained for gene expression analysis. Primates were raised in filtered air (FA) and nighttime exposures to 0.5 ppm O3 conducted for 1 cycle (9 d FA followed by 8 hrs/d O3 for 5 d),11 cycles, or FA. Exposures ended at 180 d of age. Immediately post exposure, lungs were microdissected to obtain central axial airways (generation 8-10) and terminal bronchioles devoid of parenchyma, and stored in RNAlater. RNA was pooled to provide a single sample for each experimental group. Gene expression (Agilent rhesus monkey oligo microarrays) was analyzed initially by K-means clustering. Informative patterns were analyzed (Ingenuity) to identify interaction between differentially expressed genes. A number of informative patterns were identified. 1) Genes upregulated in axial and terminal bronchiole tissue after 1 cycle: inflammatory and immune responses (e.g. IL8, TNF). 2) Upregulated genes in axial tissue after 11 cycles: cellular inflammation and hematological system (IL1B, IL17, MAPK). 3) Genes differentially expressed in axial and terminal bronchioles irrespective of O3 exposure: developmental (ACAN, MUC2, CX3CL1) and immune function (IL17RD, FGF1, DAP1). In infant primates, the superimposition of injury and repair on growth and development results in anatomic and exposure specific alterations in gene expression that is likely coupled to the O3-induced structural, inflammatory, and biochemical effects also observed. We are currently investigating methylation patterns in these animals to provide insight to the regulation of the differentially expressed gene transcripts.
The transcription factor Nrf2 protects airways from oxidative stress through antioxidant response element-bearing defense gene induction. We designed a study to determine the role of Nrf2 in airway toxicity caused by inhaled O3 in mice. For this purpose, Nrf2-deficient (Nrf2(-/-)) and wild-type (Nrf2(+/+)) mice received acute and subacute exposures to O3. Lung injury was determined by bronchoalveolar lavage and histopathologic analyses. Oxidation markers and mucus hypersecretion were determined by ELISA, and Nrf2 and its downstream effectors were determined by RT-PCR and/or Western blotting. Acute and sub-acute O3 exposures heightened pulmonary inflammation, edema, and cell death more severely in Nrf2(-/-) mice than in Nrf2(+/+) mice. O3 caused bronchiolar and terminal bronchiolar proliferation in both genotypes of mice, while the intensity of compensatory epithelial proliferation, bronchial mucous cell hyperplasia, and mucus hypersecretion was greater in Nrf2(-/-) mice than in Nrf2(+/+) mice. Relative to Nrf2(+/+), O3 augmented lung protein and lipid oxidation more highly in Nrf2(-/-) mice. Results suggest that Nrf2 deficiency exacerbates oxidative stress and airway injury caused by the environmental pollutant O3.
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GENETIC MECHANISM OF OZONE INDUCED INFLAMMATION
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批准号:6564448
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项目类别:
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资助金额:$10.94万
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财政年份:2001
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负责人:STEVEN R KLEEBERGER
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依托单位:
GENETIC MECHANISM OF OZONE INDUCED INFLAMMATION
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批准号:6410407
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