grant

Discovery and manipulation of transcription factors to restore long term stem cell repopulation in aged bone-marrow

Organization BRIGHAM AND WOMEN'S HOSPITALLocation BOSTON, UNITED STATESPosted 4 Aug 2022Deadline 30 Apr 2027
NIHUS FederalResearch GrantFY2026AffectAgeAgingAnimalsAreaAssayBar CodesBasal Transcription FactorBasal transcription factor genesBioassayBiological AssayBiologyBiology of AgingBloodBlood CellsBlood Precursor CellBlood Reticuloendothelial SystemBody TissuesBone MarrowBone Marrow Blood-Deriving CellBone Marrow Blood-Forming CellBone Marrow CellsBone Marrow Reticuloendothelial SystemCell AgingCell BodyCell CycleCell Division CycleCell LineageCell ReprogrammingCell SenescenceCellsCellular AgingCellular Immune FunctionCellular SenescenceChronologyComplexComputer ModelsComputerized ModelsCouplingDataData SetDegenerative DisorderDeteriorationDevelopmentDiseaseDisorderEngineeringEngraftmentEquilibriumEvaluationExpression SignatureEyeEyeballFoundationsGene Expression ProfileGene TranscriptionGeneral Transcription Factor GeneGeneral Transcription FactorsGenesGenetic TranscriptionHSC agingHSC heterogeneityHSC nicheHSC quiescenceHSC regenerationHSC self-renewalHealthHematopoietic Progenitor CellsHematopoietic Stem Cell heterogeneityHematopoietic stem cellsHeterogeneityHigh Throughput AssayHumanIn SituIn VitroIndividualInflammationInflammatoryInjuryInterventionLibrariesLymphoidMeasurementMethodsMiceMice MammalsModelingModern ManModificationMolecularMolecular FingerprintingMolecular ProfilingMurineMusMuscleMuscle TissueMyelogenousMyeloidNon-Polyadenylated RNAOutcomeOutputPeripheral Blood CellPhenotypePhysiologicPhysiologicalPhysiologyPopulationProgenitor CellsRNARNA ExpressionRNA Gene ProductsRecoveryRejuvenationReplicative SenescenceResolutionRibonucleic AcidSingle cell seqSkinTestingTissuesTrainingTranscriptionTranscription Factor Proto-OncogeneTranscription factor genesTransplantationValidationViralWhole Organismage associatedage associated alterationsage associated changesage associated diseaseage associated disorderage associated effectsage associated impairmentage clockage correlatedage correlated alterationsage correlated changesage dependentage dependent alterationsage dependent changesage dependent diseaseage dependent disorderage dependent impairmentage effectage induced alterationsage induced changesage linkedage relatedage related alterationsage related changesage related effectsage related human diseaseage reversalage specificage specific alterationsage specific changesage-related diseaseage-related disorderage-related impairmentagedaged boneaged miceaged mouseagesaging associatedaging associated alterationsaging associated changesaging associated diseaseaging associated disordersaging biological markeraging biomarkeraging clocksaging correlated alterationsaging correlated changesaging dependent alterationsaging dependent changesaging effectaging induced alterationsaging induced changesaging markeraging processaging relatedaging related alterationsaging related changesaging related diseaseaging related disordersaging reversalaging specific alterationsaging specific changesalleviate age relatedalleviate agingalterations with ageameliorating agingbalancebalance functionbarcodeblood cell progenitorblood progenitorblood stem cellblood stem cell heterogeneityblood stem cell nicheblood stem cell quiescenceblood stem cell regenerationblood stem cell self-renewalblood-forming stem cellbone agingc mycc-myc Genescell engineeringcell regenerationcell transductioncell typecellular engineeringcellular regenerationcellular reprogrammingcellular transductionchanges with ageclock measuring biological ageclock measuring biological agingclock of biological agingcmyccomputational modelingcomputational modelscomputer based modelscomputer based predictioncomputerized modelingcounter age relatedcounter agingcounteract age relatedcounteract agingdegenerative conditiondegenerative diseasedevelopmentaldisease associated with agingdisease of agingdisorder of agingdisorders associated with agingdisorders related to agingelderly micegene expression patterngene expression signatureglobal gene expressionglobal transcription profilehematopoietic progenitorhematopoietic progenitor cell self-renewalhematopoietic progenitor nichehematopoietic stem cell aginghematopoietic stem cell nichehematopoietic stem cell quiescencehematopoietic stem cell regenerationhematopoietic stem cell self-renewalhematopoietic stem progenitor cellhemopoietic progenitorhemopoietic stem cellheterogeneity within hematopoietic stem cellsheterogeneous blood stem cellsheterogeneous hematopoietic stem cellshigh definitionhigh throughput screeninghigh-resolutionimmune functionimpact of ageimprovedin vivoinfluence of ageinjuriesinjury and repairinjury responseinsightirradiationmolecular profilemolecular signaturemuscle fiber repairmuscle repairmuscle tissue repairmuscularmuscular repairnew drug treatmentsnew drugsnew pharmacological therapeuticnew therapeutic approachnew therapeutic interventionnew therapeutic strategiesnew therapeuticsnew therapynew therapy approachesnew treatment approachnew treatment strategynext generation therapeuticsnovelnovel drug treatmentsnovel drugsnovel pharmaco-therapeuticnovel pharmacological therapeuticnovel therapeutic approachnovel therapeutic interventionnovel therapeutic strategiesnovel therapeuticsnovel therapynovel therapy approachold miceoverexpressoverexpressionpost-transplantpost-transplantationposttransplantposttransplantationpredictive modelingprogenitor agingprogenitor cell agingprogenitor cell nicheprogenitor cell poolprogenitor cell populationprogenitor nicheprogenitor poolprogenitor populationprogramsregeneration of blood stem cellsregeneration potentialregenerative potentialrejuvenating interventionrejuvenation approachrejuvenation strategiesrejuvenation therapyrejuvenation treatmentreplicative agingrepurposingresolutionsresponse to injuryrestorationreverse agereverse agingreverse aging effectsreversible agingscRNA sequencingscRNA-seqscreeningscreeningsself - renewal in hematopoietic stem cellsself-renewself-renewalsenescent cellsexsingle cell RNA-seqsingle cell RNAseqsingle cell expression profilingsingle cell next generation sequencingsingle cell sequencingsingle cell transcriptomic profilingsingle-cell RNA sequencingsmall moleculestem and progenitor cell nichestem and progenitor cell populationstem cell agingstem cell nichestem cell poolstem cell populationstem cellstherapeutic candidatetherapeutic rejuvenationtooltool developmenttranscription factortranscriptional profiletranscriptional signaturetranscriptometranscriptomicstransduced cellstransplantv-myc Avian Myelocytomatosis Viral Oncogene Cellular Homologvalidations
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Full Description

Project Summary
Aging has a complex underlying biology characterized by a progressive loss of cellular and physiological function

and this deterioration is strongly correlated with degenerative disease. In the bone marrow, aging markedly

reduces the capacity of hematopoietic stem cells (HSCs) to self-renew and differentiate into lymphoid lineages,

resulting in hindered immune function and systemic effects on multiple tissues, such as muscle repair after injury.

Bone marrow from young recipients has been shown to rejuvenate aged bone marrow as well as systemically in

other tissues. However, the exact HSC and progenitor cell states as well as other factors that drive the

rejuvenating effects are not well understood. Profiling of HSCs and other bone marrow cell types during aging

and an understanding of the transcription factors (TFs)-that control HSC self-renewal and their changes in activity

during aging could provide new therapeutic approaches with the potential to reverse both blood-specific and

whole-animal effects of aging. TF-based interventions, such as partial reprogramming, have shown promise to

promote stem-cell cycling and regeneration. However, current approaches are limited to a small set of

predetermined TFs, commonly the Yamanaka factors Oct3/4, Sox2, Klf4 and c-Myc, and have only been

demonstrated in a select set of tissues. Furthermore, the diversity of the HSC population, containing both

senescent cells and long-term renewing state (LT-HSC) among other subtypes, makes discovery of master

regulators challenging, and existing approaches do not address this heterogeneity. We hypothesize that high-

resolution single cell RNA sequencing (scRNA-seq) of HSCs from mice of different ages will reveal putative TF

regulators of the aging process, and that these candidates can reprogram aged HSCs towards LT-HSC and

quiescent states capable of niche restoration to reverse age-associated phenotypes. We will profile molecular

signatures of aging in HSCs at single cell resolution and use these data to both develop metrics for aging and

nominate TFs to promote LT-HSC restoration and rejuvenation. We will synthesize selected TFs for pooled

screening allowing for rapid evaluation of their reprogramming effects in vitro and in vivo. Coupling these pooled

perturbations in vivo with scRNA-seq readouts will allow for evaluation of HSC rejuvenation via our aging

signatures and measurement of lymphoid/myeloid skew. Candidate TFs that demonstrate the strongest potential

for rejuvenation of LT-HSCs will be tested individually and in combination for modification of whole-organism

phenotypes, including increased repopulation potential, reduction of inflammatory factors, and improvement of

muscle repair in response to injury. The repurposing of novel TFs regulating HSC rejuvenation as new

therapeutics for aging-associated disease provides a new framework for cellular engineering. This proposal,

coupling transcriptomic readouts and screening for discovery of new regulators of cell states, serves as the

foundation for TF-based interventions for disease, both in aging and in broader human health.

Grant Number: 5R01AG074932-05
NIH Institute/Center: NIH

Principal Investigator: Omar Abudayyeh

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