grant

Role Of Retinoid Oxidoreductase Complex In Controlling The Embryonic Development

Organization UNIVERSITY OF ALABAMA AT BIRMINGHAMLocation BIRMINGHAM, UNITED STATESPosted 1 Jun 2023Deadline 31 Mar 2027
NIHUS FederalResearch GrantFY202511-cis retinol dehydrogenaseATRAAddressAll-Trans-RetinolAnabolismAnti-Infective vitaminAntixerophthalmic vitaminAttenuatedAutomobile DrivingAutoregulationAxerophthalAxerophtholAxerophtholumBackBasal Transcription FactorBasal transcription factor genesBindingBiosterolBrachydanio rerioBrachydanio rerio ProteinsBuffersCausalityCell BodyCell Communication and SignalingCell SignalingCellsCoenzyme IIComplexCytoplasmDNA mutationDanio rerioDanio rerio ProteinsDataDefectDehydrogenasesDevelopmentDevelopmental ProcessDietary intakeDiseaseDisorderDorsumEctopic ExpressionEmbryoEmbryo DevelopmentEmbryogenesisEmbryonicEmbryonic DevelopmentEnsureEnvironmentEnzymatic BiochemistryEnzyme GeneEnzymesEnzymologyEpigeneticEpigenetic ChangeEpigenetic MechanismEpigenetic ProcessEtiologyExerciseFRETFertilizationFluorescence Resonance Energy TransferFoundationsFutureFörster Resonance Energy TransferGene TranscriptionGeneral Transcription Factor GeneGeneral Transcription FactorsGenerationsGenesGenetic ChangeGenetic TranscriptionGenetic defectGenetic mutationHOX geneHomeo Box GenesHomeobox Family GeneHomeobox GenesHomeodoamin GeneHomeostasisHomeotic GenesHumanIn VitroIndividualIntracellular Communication and SignalingKnock-inLard-FactorLigandsModelingModern ManMolecular InteractionMonitorMutationNAD phosphateNAD(H) phosphateNADHNADH phosphateNADPNADPHNicotinamide-Adenine Dinucleotide PhosphateNuclearOleovitamin AOphthalaminOrthologOrthologous GeneOutputOxidoreductaseOxidoreductase GenePathway interactionsPatternPhysiologicPhysiologicalPhysiological HomeostasisProcessPropertyProteinsPublishingRNA ExpressionReceptor ProteinRecyclingReductasesRegulationRetinaldehydeRetineneRetinoic AcidRetinoic Acid AgentRetinoic Acid BindingRetinoic Acid ReceptorRetinoic Acid and DerivativesRetinoidsRetinol dehydrogenaseRoleSignal TransductionSignal Transduction SystemsSignalingTestingTrans Vitamin A AcidTranscriptionTranscription Factor Proto-OncogeneTranscription factor genesTretinoinTretinoinumTriphosphopyridine NucleotideVisualizationVitamin AVitamin A AcidVitamin A AlcoholVitamin A AldehydeWorkZebra DanioZebra Danio ProteinsZebra FishZebra Fish ProteinsZebrafishZebrafish Proteinsall-trans-Retinoic Acidall-trans-Vitamin A acidanimal tissueattenuateattenuatesbiological signal transductionbiosynthesiscausationdevelopmentaldisease causationdrivingepigeneticallyfertilizationsgenome editinggenome mutationgenomic editingin vivoknockinknockout genemalformationmosaicnoveloxidationp32 retinol dehydrogenasepathwaypreventpreventingprogenitorreceptorresponseretinolself-renewself-renewalsensorsmall moleculesocial rolespatial and temporalspatial temporalspatiotemporaltrans-Retinoic Acidtranscription factor
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Full Description

ABSTRACT
All-trans-retinoic acid (RA) is the main physiologically active derivative of vitamin A, which serves as a ligand

for nuclear transcription factors, RA receptors. During development, RA is produced in a quickly changing

spatiotemporal pattern to control the expression of precise sets of genes at different developmental stages.

Critical RA-sensitive processes during development are RA-concentration dependent, which underscores the

importance of the precise control over RA synthesis in a strictly defined and rapidly regulated manner.

Biosynthesis of RA includes reversible rate-limiting oxidation of retinol to all-trans-retinaldehyde, followed by

irreversible oxidation of all-trans-retinaldehyde to RA. Multiple studies examined the roles of the enzymes

catalyzing the oxidation of retinaldehyde and degradation of RA in establishing the dynamic pattern of RA

concentration. However, the mechanism regulating the upstream rate-limiting step, which supplies the immediate

RA precursor, retinaldehyde, in a precise spatiotemporal pattern remains unknown. It has been established that

two proteins, retinol dehydrogenase 10 (RDH10) and short-chain dehydrogenase/reductase 3 (DHRS3), are

critical for the control of retinaldehyde levels during development. We have recently discovered that DHRS3

binds to RDH10 and upon binding reduces the output of retinaldehyde by RDH10 by recycling retinaldehyde

back to retinol. As a result, the formation of the bifunctional retinoid oxidoreductase complex (ROC) that consists

of an oxidative RDH10 and reductive DHRS3 attenuates the RA biosynthesis. Whether this mechanism works

in vivo and whether ROC exists in animal tissues is unknown, but if proven to be true, this finding will have a

paradigm-shifting effect on our understanding of the mechanisms that regulate embryogenesis through vitamin

A. The major hypothesis driving this proposal is that ROC represents a previously unrecognized universally

conserved mechanism that can both provide the RA synthesis with robustness (Aim 1) and enable the dynamic

changes in RA spatiotemporal pattern by regulating the levels of RA precursor (Aim 2). The hypothesis will be

tested using a zebrafish embryogenesis model to take advantage of external fertilization and transparency of

zebrafish for intra-vital visualization of RA synthesis and formation of the complex.

Successful completion of these studies will advance the field at the conceptual level by demonstrating a

mechanistically novel model of producing strictly controlled spatiotemporal gradients of small molecules. These

findings will lay the foundation for a better understanding of the mechanisms of congenital diseases associated

with dysregulation of RA homeostasis.

Grant Number: 5R01GM141546-03
NIH Institute/Center: NIH

Principal Investigator: Olga Beliaeva

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