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Newborn iron deficiency

Newborn iron deficiency
新生儿缺铁
批准号:
10217214
负责人:
Michael K. Georgieff
金额:
$37.73万
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:
2018-08-13 至 2023-07-31
关键词:
AccountingActive SitesAcuteAddressAdultAffectAnemiaAnxietyAreaBehaviorBehavioralBiochemicalBiogenesisBrainCell Culture TechniquesCellsChildChronicCitric Acid CycleClinicalClinical TrialsDataDendritesDendritic SpinesDeveloped CountriesDevelopmentDietDominant-Negative MutationEducationElectron TransportElectrophysiology (science)Energy MetabolismEnzymesErythrocytesEventExhibitsFunctional disorderGenerationsGeneticGlycolysisGoalsHealthHippocampus (Brain)HumanImpairmentIn VitroIncidenceInfantInterventionIronLeadLearningLifeLife StyleLiverLong-Term EffectsLongevityMalariaMalnutritionMeasuresMemoryMemory impairmentMental DepressionMental disordersMetabolicMetabolic dysfunctionMetabolismMitochondriaMolecularMorphologyMusNeonatalNervous System PhysiologyNeurocognitiveNeurocognitive DeficitNeurologic DeficitNeuronsNewborn InfantNutrientNutritionalOccupationsOrganOutcome MeasureOxidative PhosphorylationOxygen ConsumptionPancreasPharmacologyPopulationPregnancyPregnant WomenPreventive therapyProcessProductionPublic HealthPublishingReactive Oxygen SpeciesRecommendationRecoveryResearchRiskRoleSkeletal MuscleSocietiesStructural defectStructureStructure of beta Cell of isletSynapsesTestingTimeTranslatingVertebral columnautism spectrum disordercell motilitycognitive performancecostcritical perioddensitydietaryearly childhoodelectron energyexperimental studyfetalimprovedin vitro Modelin vivoinfancyinsightiron deficiencymemory encodingmetabolic ratemitochondrial dysfunctionmitochondrial metabolismmouse modelneonatal brainneonatal miceneonateneuronal metabolismnutritionpostnatalpreventrecruitresponsesynaptogenesistherapy design

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中文摘要
翻译
据估计,缺铁影响着20亿人,尤其是孕妇及其婴儿。ID对早期大脑发育有害,并导致儿童学习和记忆缺陷。从公共健康的角度来看,更令人不安的是,无论是未经治疗还是接受治疗的人群,学习和记忆障碍都会持续到成年。婴儿期铁治疗后脑损伤持续存在,表明单靠铁治疗不足以完全恢复,或者铁治疗本身可能有害。这些早期ID的长期影响是社会的真正成本,因为他们失去了教育和就业潜力。胎儿/新生儿的大脑是高度代谢的,占全身耗氧量的60%。海马体是新生儿大脑中代谢率最高的区域之一。铁为电子传递和能量产生所需的酶提供催化成分。在小鼠中,早期海马神经元ID会降低神经元能量代谢,包括氧化磷酸化和糖酵解,减缓线粒体向生长中的树突/棘的活性位点募集,增加活性氧(ROS),截断树突和突触的发育。这些发现一直持续到成年,尽管铁元素补充。发育性ID如何导致长期神经元结构缺陷的细胞机制以及这些是否可以预防或治疗尚不清楚。我们将测试早期海马能量代谢重编程的总体假设,这是对胎儿/新生儿ID的潜在适应性反应,长期来看会变得不适应,并导致先前ID的成年海马结构异常。在目的1中,我们将利用一种独特的慢性新生儿海马神经元ID体外模型来测试治疗方法,以解决在发育过程中被ID破坏的基本能量过程,以防止神经元结构缺陷。为此,我们将在铁充足和缺铁的新生儿海马神经元培养中,从遗传、营养或药理学上操纵特定的代谢功能。线粒体耗氧率和细胞糖酵解率,线粒体向生长的树突/棘的活性位点的招募和ROS将被测量。由此产生的树突复杂性和脊柱密度/形态将被评估为结果指标。Aim 2将Aim 1的体外研究结果转化为体内小鼠模型,以测试给新生小鼠的治疗方法可以预防成年后线粒体功能、树突结构和神经认知行为的永久性异常。我们独特的非贫血,海马神经元特异性显性/阴性TfR-1小鼠模型为评估翻译效果提供了完美的平台。这一建议具有重要意义,因为它首次定义了由早期生命ID诱导的神经元能量代谢的特异性缺陷是如何独立于贫血导致线粒体代谢的长期异常和神经功能缺陷的。它测试了机械和经验派生的治疗方法来预防它们。
英文摘要
Iron deficiency (ID) affects an estimated 2 billion people, especially pregnant women and their infants. ID is harmful to early-life brain development and causes learning and memory deficits in children. More troubling from a public health perspective is that the learning and memory impairments persist into adulthood in both untreated as well as treated populations. Persistence of brain impairment following iron treatment in infancy implies that iron therapy alone is not sufficient for full recovery or that iron therapy itself may be harmful. These long-term effects of early-life ID are the real cost to society because of lost education and job potential. The fetal/neonatal brain is highly metabolic, accounting for 60% of total body oxygen consumption. The hippocampus has one of the highest regional metabolic rates in the neonatal brain. Iron provides the catalytic component for enzymes required for electron transport and energy production. In mice, early-life hippocampal neuronal ID reduces neuronal energy metabolism including oxidative phosphorylation and glycolysis, slows mitochondrial recruitment to active sites of growing dendrites/spines, increases reactive oxygen species (ROS) and truncates dendrite and synapse development. These findings persist into adulthood despite iron repletion. The cellular mechanisms of how developmental ID causes long-term neuronal structural deficits and whether these can be prevented or treated are unclear. We will test the overall hypothesis that early-life reprogramming of hippocampal energy metabolism, which is a potentially adaptive response to fetal/neonatal ID, becomes maladaptive in the long-term and results in structural abnormalities in the formerly ID adult hippocampus. In Aim 1, we will utilize a unique in vitro model of chronic neonatal hippocampal neuronal ID to test therapies that address fundamental energy processes disrupted by ID during development in order to prevent neuronal structural deficits. To do this, we will genetically, nutritionally or pharmacologically manipulate specific metabolic functions in iron-sufficient and -deficient neonatal hippocampal neuron cultures. Mitochondrial oxygen consumption rate and cellular glycolytic rate, mitochondrial recruitment to active sites of growing dendrites/spines and ROS will be measured in response to the manipulations. Resultant dendrite complexity and spine density/morphology will be assessed as outcome measures. Aim 2 translates Aim 1's in vitro findings to an in vivo mouse model to test which therapies delivered to the neonatal mouse prevent permanent abnormalities in mitochondrial function, dendrite structure and neurocognitive behavior in adulthood. Our unique non-anemic, hippocampal neuron-specific dominant/negative TfR-1 mouse model provides the perfect platform to assess the translational effects. This proposal is highly significant because it defines for the first time how the specific deficits in neuronal energy metabolism induced by early-life ID independent of anemia lead to long-term abnormalities in mitochondrial metabolism and neurological deficits. It tests mechanistically and empirically derived therapies to prevent them.
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17/24 Healthy Brain and Child Development National Consortium
  • 批准号:
    10661762
  • 项目类别:
  • 资助金额:
    $130.13万
  • 财政年份:
    2021
  • 负责人:
    Michael K. Georgieff
  • 依托单位:
17/24 Healthy Brain and Child Development National Consortium
  • 批准号:
    10494131
  • 项目类别:
  • 资助金额:
    $135.94万
  • 财政年份:
    2021
  • 负责人:
    Michael K. Georgieff
  • 依托单位:
17/24 Healthy Brain and Child Development National Consortium
  • 批准号:
    10378274
  • 项目类别:
  • 资助金额:
    $100.1万
  • 财政年份:
    2021
  • 负责人:
    Michael K. Georgieff
  • 依托单位:
Newborn iron deficiency
  • 批准号:
    10447782
  • 项目类别:
  • 资助金额:
    $37.73万
  • 财政年份:
    2018
  • 负责人:
    Michael K. Georgieff
  • 依托单位:
海外基金