Primary human trophoblasts and the transfer of viral resistance
Primary human trophoblasts and the transfer of viral resistance
批准号:
8676853
负责人:
Carolyn B Coyne
金额:
$47.02万
依托单位国家:
美国
项目类别:
财政年份:
2012
资助国家:
美国
项目状态:
已结题
起止时间:
2012-09-10 至 2017-05-31
关键词:
Antiviral AgentsApplications GrantsAttenuatedAutophagocytosisBasement membraneBiologyBloodBlood CirculationBlood capillariesCapillary Endothelial CellCellsChorionic villiChromosomes, Human, Pair 19ComplementCongenital AbnormalityCytomegalovirus InfectionsDataDefense MechanismsDevelopmentDiseaseEmbryoEmployee StrikesEndothelial CellsEndotheliumEnvironmentEvaluationExhibitsFetal DeathFetusFunctional disorderGoalsGovernmentHematogenous SpreadHepatitis C virusHepatocyteHomeostasisHumanImmuneImmune systemInfectionInjuryInvestigationLeftLiverMaintenanceMaternal HealthMaternal PhysiologyMaternal-Fetal ExchangeMechanicsMediatingMicroRNAsMicrobeMicroprocessorMolecularMorbidity - disease rateOutcomePathway interactionsPersonsPlacentaPlayPositioning AttributePredispositionPregnancyPregnancy OutcomePregnancy lossPrimatesProcessRNARegulationResearchResistanceRestRoleSignal TransductionSourceTestingTextTherapeuticVertical Disease TransmissionViralVirusVirus Diseasesbasecapillarydesignfetalinnovationinsightmembermortalityneurodevelopmentnovelpathogenpreventresponsetrophoblastviral resistancevirology
中文摘要
描述(由申请人提供):本申请的总体目标是破译人类胎盘滋养细胞抵抗病毒感染和局部和系统地传递抗病毒信号的新机制。微生物从母体宿主到胎盘的血行传播会对发育中的胚胎造成毁灭性的后果。此外,即使没有垂直传播,危害孕产妇健康的病毒病原体也可能危及妊娠结局。胎盘滋养细胞与母体血液直接接触,构成胎儿-胎盘的主要屏障,能够与母体局部和全身环境相连接,包括母体免疫系统的成分和细胞屏障,如微血管内皮。拟议的研究代表了病毒学和胎盘生物学专业知识的协同作用,导致跨学科的追求,将滋养层特异性microrna的功能与抑制病毒复制的独特细胞途径相结合。我们的初步数据表明,人类原代滋养层细胞对多种不相关病毒的感染具有高度抗性,而非滋养层细胞可以通过靶向表达原代滋养层细胞衍生的microrna而具有这种抗性。我们计划确定介导这种作用的特定microRNA,并确定microRNA转运到非滋养层靶细胞的机制,在那里它们刺激自噬作为减弱病毒复制的一种手段。我们将分析滋养层microrna在自噬调节中的作用,并检查可能允许某些病毒逃避这条细胞防线的途径。因此,我们的拨款提案超越了对病毒诱导损伤机制的研究,而是确定了令人兴奋的新分子途径,这些途径可能转移对病毒感染的先天和适应性反应。我们共同确定了一种新的途径,可传播胎盘对病毒病原体的抗性。在破译构成这一途径的潜在机制时,我们不仅可以阐明滋养细胞对病原体耐药的基础,还可以为开发旨在减轻和/或预防病毒感染的创新疗法提供信息,从而减少与感染相关的母婴发病率和死亡率的负担。
英文摘要
DESCRIPTION (provided by applicant): The overarching goal of this application is to decipher novel mechanisms utilized by human placental trophoblasts to resist viral infections and to communicate antiviral signals locally and systemically. Hematogenous spread of microbes from the maternal host to the placenta can have devastating consequences to the developing embryo. Moreover, even in the absence of vertical transmission, viral pathogens that compromise maternal health may jeopardize pregnancy outcome. Located in direct contact with maternal blood, the placental trophoblasts constitute the cardinal feto-placental barrier, and are capable of interfacing with the maternal local and systemic environments, including components of the maternal immune system and cellular barriers such as the microvascular endothelium. The proposed research represents the synergistic interaction of expertise in virology and placental biology, resulting in a transdisciplinary pursuit that integrates the function of trophoblast-specific microRNAs with distinctive cellular pathways that suppress viral replication. Our preliminary data indicate that primary human trophoblasts are highly resistant to infection by a wide range of unrelated viruses, and that non-trophoblastic cells can be endowed with this resistance by targeted expression of primary trophoblasts-derived microRNAs. We plan to identify the specific microRNAs that mediate this effect, and define mechanisms of microRNA transport to non-trophoblastic target cells, where they stimulate autophagy as a means to attenuate viral replication. We will analyze the role of trophoblastic microRNAs in the regulation of autophagy, and examine the pathways that may allow certain viruses to evade this line of cellular defense. Thus, our grant proposal goes beyond investigation of the mechanisms of virus-induced injury, and instead identifies exciting new molecular pathways that may transfer innate and adaptive responses to virus infection. Together, we identified a novel pathway for transmissible placental resistance to viral pathogens. In deciphering the underlying mechanisms that constitute this pathway we may not only illuminate the basis of trophoblast resistance to pathogens, but also inform the development of innovative therapeutics designed to mitigate and/or prevent viral infections, thus reducing the burden of infection related feto-maternal morbidity and mortality.
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