Microbiota-dependent regulation of primitive hematopoieses
Microbiota-dependent regulation of primitive hematopoieses
批准号:
10515636
负责人:
Megan T Baldridge
金额:
$45.09万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-11-07 至 2023-10-31
关键词:
Adverse effectsAffectAgonistAnemiaAnimalsAntibiotic TherapyAntibioticsAreaBacteriaBacterial InfectionsBloodBone MarrowBone Marrow SuppressionCellsCephalosporinsChimera organismClostridiumCollaborationsComplicationCritical PathwaysDataDefectDistalFLT3 ligandFutureGene Expression ProfileGenesGerm-FreeGrowthHematologyHematopoiesisHematopoieticHematopoietic stem cellsHomeostasisIL7 geneImmuneImmune Cell SuppressionImmune systemImmunologic FactorsIndividualInfectionInnate Immune SystemInterferon Type IInterferonsIntestinesKnockout MiceLigandsLinkLong-Term EffectsMaintenanceMarrowMediatingMedicineMolecularMusNeutropeniaPancytopeniaPathway interactionsPatientsPenicillinsPhenocopyPhosphorylationPhysiologicalPreventiveProductionPublishingRecombinant InterferonRecombinantsRegulationReportingRiskRoleSTAT1 geneSignal PathwaySignal TransductionSpleenSystemTestingTherapeuticTissuesTrimethoprim-SulfamethoxazoleUniversitiesWashingtonWorkbone cellcell typecollegecombatcommensal bacteriaconditional knockoutcytokinedysbiosisexperimental studygut bacteriagut microbiomegut microbiotaimmunoregulationinsightinterferon alpha receptormedical schoolsmetabolomicsmicrobiomemicrobiotamouse modelnovelnovel therapeutic interventionpreventreceptorresponseside effectsmall moleculetranscription factortransmission process
中文摘要
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英文摘要
PROJECT SUMMARY/ABSTRACT
Bone marrow suppression is a common adverse effect of long-term antibiotic administration, which can
in turn leave patients at substantial risk for future infections. Depletion of commensal intestinal bacteria has
recently been uncovered as the proximal cause of antibiotic-mediated bone marrow suppression, implicating the
microbiome in maintenance of normal hematopoiesis. Commensal bacteria, acting via type I interferon and
STAT1, a major transcription factor downstream of interferon signaling, are necessary to promote the normal
function of hematopoietic progenitors in the bone marrow. However, because commensal bacteria in the gut are
stimulating effects in the distal compartment of the bone marrow, the cell type(s) mediating these responses are
unknown. Further, the sufficiency of type I interferon signaling to maintain hematopoiesis, or which commensal
bacterial signaling pathways interact with this pathway to drive hematopoiesis, are unknown.
Using a murine model of antibiotic-mediated bone marrow suppression to explore these critical questions,
this proposal aims to interrogate the pathways and mechanisms underlying the microbiome’s effects on
hematopoiesis. Studies will identify in which tissue and cell type(s) type I interferon and STAT1 signaling are
required to promote hematopoiesis, specifically by analyzing STAT1 phosphorylation in different tissues,
generating bone marrow chimeras, and testing conditional knock-out mice. The sufficiency of type I interferon
signaling to maintain hematopoiesis will be determined by characterizing the potential of recombinant interferons
or interferon-stimulatory bacterial products to rescue hematopoiesis in antibiotic-treated mice. Finally, this
proposal will interrogate interactions between STAT1 and signaling through NOD1, a bacterial product receptor,
because both have been implicated in microbiome-mediated hematopoietic regulation. Experiments will define
whether these immune factors act in the same pathway, and identify novel factors linking the microbiota with
cytokines and metabolites in the bone marrow niche.
These rigorous studies build upon both published and preliminary data to clarify the mechanisms
underlying the regulation of hematopoiesis by the commensal microbiome. Successful completion of these aims
will serve as a critical basis for future studies to develop preventive and therapeutic approaches to combat
antibiotic-associated bone marrow suppression. This work is a close collaboration between Dr. Megan Baldridge,
expert in the effects on the commensal microbiome on the innate immune system, at Washington University
School of Medicine and Dr. Katherine King, expert in immunologic regulation of primitive hematopoiesis, at
Baylor College of Medicine, and leverages these complementary areas of expertise to explore the novel field of
microbiome-mediated hematopoietic regulation.
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DOI:
10.1016/j.isci.2023.106059
发表时间:
2023-02-17
期刊:
ISCIENCE
影响因子:
5.8
作者:
[Le, Duy T., Florez, Marcus A., Kus, Pawel, Tran, Brandon T., Kain, Bailee, Zhu, Yingmin, Christensen, Kurt, Jain, Antrix, Malovannaya, Anna, King, Katherine Y.]
通讯作者:
King, Katherine Y.
DOI:
10.1038/s41564-023-01334-w
发表时间:
2023-03
期刊:
NATURE MICROBIOLOGY
影响因子:
28.3
作者:
[Li, Yuhao, Baldridge, Megan T.]
通讯作者:
Baldridge, Megan T.
DOI:
10.1016/j.exphem.2021.02.002
发表时间:
2021-04
期刊:
Experimental hematology
影响因子:
2.6
作者:
[Demerdash Y, Kain B, Essers MAG, King KY]
通讯作者:
King KY
DOI:
10.1016/j.tim.2022.01.007
发表时间:
2022-08
期刊:
TRENDS IN MICROBIOLOGY
影响因子:
15.9
作者:
[Wirusanti, Nurul I., Baldridge, Megan T., Harris, Vanessa C.]
通讯作者:
Harris, Vanessa C.
DOI:
10.1016/j.stem.2022.05.006
发表时间:
2022-06-02
期刊:
CELL STEM CELL
影响因子:
23.9
作者:
[Florez, Marcus A., Tran, Brandon T., Wathan, Trisha K., DeGregori, James, Pietras, Eric M., King, Katherine Y.]
通讯作者:
King, Katherine Y.
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Microbiota-dependent regulation of primitive hematopoieses
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Microbiota-dependent regulation of primitive hematopoieses
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Impact of the Intestinal Microbiome on HIV/SIV Vaccines
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Role of CD300 Family in Norovirus Tropism, Persistence, and Immunity
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LRG-47: a critical regulator of host defense and hematopoietic stem cell function
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海外基金