Remodeling of the electron transport chain in macrophages by a novel peptide-miRNA axis
Remodeling of the electron transport chain in macrophages by a novel peptide-miRNA axis
批准号:
10560468
负责人:
Megan Lynn Clark
金额:
$3.42万
依托单位国家:
美国
项目类别:
财政年份:
2021
资助国家:
美国
项目状态:
已结题
起止时间:
2021-09-01 至 2023-08-31
关键词:
Anti-Bacterial AgentsAutoimmuneBacterial InfectionsBinding ProteinsCardiolipinsCell DeathCell SurvivalCell physiologyCellsCitrobacterComplexConsumptionDataDiseaseElectron TransportFunctional disorderGastrointestinal tract structureGenerationsGeneticGenetic TranscriptionHomologous ProteinHumanHypoxiaImmuneImmune responseImmune systemImmunityImmunologic Deficiency SyndromesImmunologic SurveillanceIn VitroInduction of ApoptosisInflammasomeInflammatoryInflammatory ResponseInnate Immune ResponseInterleukin-1Interleukin-1 betaInterleukin-18IonsLigandsMalignant NeoplasmsMediatingMessenger RNAMicroRNAsMitochondriaMitochondrial DNAModelingMolecularMouse StrainsMusMyeloid CellsNatural ImmunityOxygen ConsumptionPathway interactionsPatientsPeptidesPlayProductionProtein IsoformsProtein SubunitsRNA ProbesRecurrenceRegulationRoleSalmonellaScientistShapesSignal TransductionStimulusTestingTherapeutic InterventionTrainingTranscriptUp-RegulationVirus DiseasesWorkcell typecomplex IVcytochrome c oxidaseexperimental studyfitnessgastrointestinalimprovedin vivoloss of function mutationmacrophagemitochondrial dysfunctionmitochondrial membraneneoplasticnovelnovel therapeuticspathogenpathogenic bacteriarespiratoryresponseskillstranscriptomicswound healing
中文摘要
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英文摘要
Project Summary/Abstract:
Macrophages are critical innate immune cells which are necessary for anti-pathogen immunity, cancer
immunosurveillance and wound healing. Powering these diverse responses in macrophages is the dynamically
regulated electron transport chain (ETC) within the mitochondria. An important regulator of ETC function is
complex IV (CIV), which is critical for oxygen consumption, ATP generation, and cell survival. Humans with loss-
of-function mutations in CIV subunits present with severe immunodeficiencies characterized by recurrent
bacterial and viral infection, highlighting the importance of CIV in immune responses. Intriguingly, CIV is the only
respiratory complex which remodels its protein subunit composition in response to environmental stimuli, such
as hypoxia, to modulate its function. This is achieved through the upregulation of subunit isoforms which replace
highly homologous core CIV subunits that function to improve cellular fitness. However, whether immune cells
remodel CIV subunit composition during immune responses and whether this remodeling is important for myeloid
cell function is unknown. Since inflammatory responses are powerful external stimuli that result in mitochondrial
reprogramming, I hypothesized that CIV subunit composition is remodeled in macrophages and functions
to regulate inflammatory responses. To this end, I identified a single transcript (AA467197) induced in pro-
inflammatory macrophages which encodes a miRNA (miR-147) and a highly conserved peptide (NMES1) with
striking homology to the CIV subunit NDUFA4. Intriguingly, my preliminary data and recent studies indicate that
NMES1 and miR-147 work in concert to replace the core CIV subunit NDUFA4 with NMES1 in CIV. Strikingly,
while remodeling of CIV subunit composition by NMES1 and miR-147 was dispensable for ATP production, I
showed that this subunit switch played a critical role in regulating inflammatory cell death induced by NLRP3
inflammasome activation, termed pyroptosis. While mitochondrial function is modulated in macrophages during
priming by pro-inflammatory signals such as LPS, it also can be critical in enhancing activation of the NLRP3
inflammasome through the production of ROS, release of mtDNA, externalization of cardiolipin, and regulation
of ion flux in the mitochondria. Thus, our overall hypothesis is that NMES1 and miR-147 remodel CIV subunit
composition in macrophages to increase NLRP3 inflammasome activation in vitro and in vivo. To explore
this hypothesis, I will use macrophages sufficient or deficient in AA467197 to uncover how remodeling of CIV by
NMES1 and miR-147 impacts CIV function to induce pyroptotic cell death. Additionally, I will conditionally delete
AA467197 in relevant cell types and employ bacterial infection models to pinpoint how NMES1 and miR-147
regulate NLRP3 inflammasome activation and anti-bacterial immunity in vivo. Altogether, this proposal will
elucidate the cellular and molecular mechanisms that underlie the impact of CIV remodeling in macrophages on
shaping innate immune responses to bacterial infection.
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Remodeling of the electron transport chain in macrophages by a novel peptide-miRNA axis
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批准号:10312689
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项目类别:
-
资助金额:$3.35万
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财政年份:2021
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负责人:Megan Lynn Clark
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依托单位:
国内基金
海外基金
Autoimmune diseases therapies: variations on the microbiome in rheumatoid arthritis
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批准号:31171277
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项目类别:面上项目
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资助金额:60.0万元
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批准年份:2011
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负责人:Christine Nardini
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依托单位: