Noninvasive Protection Against Retinopathy of Prematurity
Noninvasive Protection Against Retinopathy of Prematurity
批准号:
10206148
负责人:
James Daniel Akula
金额:
$42.92万
依托单位国家:
美国
项目类别:
财政年份:
2019
资助国家:
美国
项目状态:
已结题
起止时间:
2019-09-30 至 2023-10-02
关键词:
AcuteAdoptedAdultAgeAirAngiographyAnisometropiaAstigmatismAttenuatedBiochemicalBiologicalBiometryBlindnessBlood VesselsBlood capillariesCardiopulmonaryCaringChildChildhoodClinical ResearchClinical TrialsCombined Modality TherapyContrast SensitivityDarknessDataDevelopmentDevelopmental CourseDiseaseEventEyeFlowmetryFunctional disorderGenus HippocampusGoalsGrowthGrowth FactorHistologyHumanHypoxiaImageIndividualInfantInterruptionInterventionKnowledgeLasersLeadLengthLightLight AdaptationsLinkLongitudinal StudiesMaintenanceMapsMeasuresMediator of activation proteinMetabolicMetabolismModelingMolecularMonitorMorphologyMyopiaNeural RetinaNeuronal DysfunctionNeuronsOphthalmoscopyOptical Coherence TomographyOutcomeOxygenPathogenesisPathologic NeovascularizationPatient CarePatternPeripheralPharmacologyPhotoreceptorsPhototransductionPlant RootsPremature BirthPremature InfantProceduresRattusRefractive ErrorsRegimenRegulationResearchRetinaRetinal DetachmentRetinal DiseasesRetinopathy of PrematurityRiskRodScanningSeriesSeveritiesSignal PathwayStructureSupplementationSystemTestingTranslationsVascular Endothelial Growth FactorsVascular blood supplyVascularizationVisual impairmentadaptive opticsangiogenesisbaseblindchoroidal circulationclinically significantcomorbiditydesigneffective interventionhigh riskimprovedinfancyinnovationmindfulnessmonocularneovascularizationneurogenesisneurovascularnoveloutcome predictionpreventrelating to nervous systemresponseretina blood vessel structureretinal neuronretinal rodssensortreatment trialvascular abnormalityvisual cyclevisual threshold
中文摘要
在我们正在进行的关于儿童失明的主要眼部原因的研究中,视网膜病变
英文摘要
In our ongoing research into the leading ocular cause of childhood blindness, retinopathy of
prematurity (ROP), we have documented many highly prevalent, clinically significant sequelae that
persist long after the preterm ages at which ROP is active. These include short axial length, high
myopia, anisometropia and, perhaps most critically, persistent retinal dysfunction. Although these
outcomes are common, even in eyes in which the ROP was mild (the vast majority), the mechanisms
that cause and link them remain poorly understood. We will examine these mechanisms. Our
observations in both human ROP subjects and rat models strongly suggest that abnormalities of the
neural retina, of the vasculature, and of refractive development, are biologically related
comorbidities, and that retinal neurons, especially rod photoreceptors, instigate the chain of
events that results in all these sequelae. Therefore, we will use the oxygen-induced retinopathy
'ROP rat" model to test our novel hypothesis that persistent neurovascular dysfunction is the basis
of poor ROP outcomes years after active disease has resolved. To facilitate ready translation to
our clinical research and patient care, we will make use of complementary, innovative procedures to
study the function and structure of the neural retina and its vascular supply, and associations
with altered refractive development, in individual, living eyes. Our pioneering approach will
permit longitudinal study from vaso-obliteration through active ROP to maturity. This will enable
individualized developmental growth curves to be derived and quantitative measures of each
feature (vascular, neural, refractive) to be evaluated for their ability to predict outcomes in
other features, suggesting cause-and-effect relationships. In cross-sectional tests at the same
timepoints, studies of biochemical signaling pathways in subsets of rats will investigate the
molecular bases of the shared neural, vascular, and refractive patterning mechanisms. Then,
mindful that (1) ROP has its onset at preterm ages when the outer segments of the
energy-demanding rods first appear, (2) the severity of rod dysfunction at a young age predicts vascular
outcomes but not vice versa, (3) administration of a visual cycle modulator that lowers metabolic
demands of rods protects the immature retinal neurons and improves vascular outcomes, (4) neural
and vascular development is under cooperative molecular control, (5) the retina is a major
controller of eye growth and refractive development, and
(6) photoreceptors use less energy in the light because light suppresses the circulating current,
we will attempt to beneficially regulate ambient light to the benefit of all these
sequelae-vascular, neural, and refractive-using a series of dark and light exposures designed with
reference to the developmental course of the photoreceptors. Light regulation is safe, economical,
suitable as monotherapy or combination-therapy with other treatments, and applicable even to mild
ROP that does not currently qualify for any intervention, and thus readily translatable. The new
knowledge generated herein will, we hope, lead to game-changing approaches to understanding and
treating-nay, preventing!-the most common sequelae of ROP.
期刊论文(1)
专著(0)
科研奖励(0)
会议论文
The relation of the multifocal electroretinographic response to macular layer volume.
多焦视网膜电图反应与黄斑层体积的关系。
DOI:
10.1007/s10633-022-09873-z
发表时间:
2022
期刊:
Documenta ophthalmologica. Advances in ophthalmology
影响因子:
--
作者:
[Fonseca,MarianaI, Nouck-A-Nwal,Alexandra, Ambrosio,Lucia, Altschwager,Pablo, Hansen,RonaldM, Fulton,AnneB, Akula,JamesD]
通讯作者:
Akula,JamesD
Noninvasive Protection Against Retinopathy of Prematurity
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批准号:10019555
-
项目类别:
-
资助金额:$44.25万
-
财政年份:2019
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负责人:James Daniel Akula
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依托单位:
Downregulation of Rod Metabolism in Retinopathy of Prematurity
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批准号:7829672
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项目类别:
-
资助金额:$40.24万
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财政年份:2009
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负责人:James Daniel Akula
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依托单位:
Downregulation of Rod Metabolism in Retinopathy of Prematurity
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批准号:7936163
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项目类别:
-
资助金额:$38.77万
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财政年份:2009
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负责人:James Daniel Akula
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依托单位:
海外基金