Vincent Schulz, PhD
Associate Research Scientist in Pediatrics (Neonatology)Cards
About
Research
Publications
2025
A novel isoform of tensin-1 promotes actin filament assembly for efficient erythroblast enucleation
Ghosh A, Coffin M, Diaz D, Barndt S, Schulz V, Gallagher P, Lo S, Fowler V. A novel isoform of tensin-1 promotes actin filament assembly for efficient erythroblast enucleation. Blood Advances 2025, 9: 6356-6369. PMID: 41052410, PMCID: PMC12753235, DOI: 10.1182/bloodadvances.2025016100.Peer-Reviewed Original ResearchConceptsF-actinFocal adhesionsTensin 1Terminal differentiationRegulation of F-actinActin-binding domainActin filament assemblyF-actin assemblyTranslation start siteN-terminal halfActin regulatory factorsErythroid terminal differentiationErythroid differentiationMolecular regulatory mechanismsSpectrin membrane skeletonTerminal erythroid differentiationSequence comparisonActin filamentsChromatin accessibilityStart siteFilament assemblyMammalian red blood cellsCell polarityProteomic dataErythroid promoterBMI1 regulates human erythroid self-renewal through both gene repression and gene activation
McGrath K, Olsen J, Koniski A, Murphy K, Getman M, An H, Schulz V, Kim A, Zhang B, Carlson T, Papoin J, Blanc L, Kingsley P, Westhoff C, Gallagher P, Chou S, Steiner L, Palis J. BMI1 regulates human erythroid self-renewal through both gene repression and gene activation. Nature Communications 2025, 16: 7619. PMID: 40817093, PMCID: PMC12356964, DOI: 10.1038/s41467-025-62993-3.Peer-Reviewed Original ResearchConceptsSelf-RenewalErythroid precursorsProliferative capacityImmature erythroid precursorsExtensive proliferationCell cycle kineticsGene repressionMechanism of actionGene activationRed blood cellsHuman erythroblastsBMI1 overexpressionBMI1 inhibitionTarget genesClinical useRepressive histone marksRepressive histone modificationsMonoclonal antibodiesCycle kineticsBlood cellsBMI1Regulation of cholesterol homeostasisClinical purposesErythroblastsHistone marks
2024
Phenotypic and genotypic evaluation of bleeding diagnostic dilemmas: Two case studies
Gu S, Butt A, Schulz V, Rinder H, Lee A, Gallagher P, Hwa J, Bona R. Phenotypic and genotypic evaluation of bleeding diagnostic dilemmas: Two case studies. Blood Cells Molecules And Diseases 2024, 110: 102893. PMID: 39260211, DOI: 10.1016/j.bcmd.2024.102893.Peer-Reviewed Original ResearchInherited platelet disordersClinically significant bleedingCases of patientsHeterogeneous group of conditionsGroup of conditionsSignificant bleedingDiagnostic yieldDiagnostic dilemmaPlatelet disordersBleeding disordersEvaluating patientsPatient cohortMolecular pathogenesisMass cytometryHeterogeneous groupPatientsMultimodal approachBleedingImprove patient careDiagnosisDisordersPatient careGenetic sequencesLaboratory testing approachPotential utility
2022
Histone Acetyltransferases p300 and CBP Coordinate Distinct Chromatin Remodeling Programs in Vascular Smooth Muscle Plasticity
Chakraborty R, Ostriker AC, Xie Y, Dave JM, Gamez-Mendez A, Chatterjee P, Abu Y, Valentine J, Lezon-Geyda K, Greif DM, Schulz VP, Gallagher PG, Sessa WC, Hwa J, Martin KA. Histone Acetyltransferases p300 and CBP Coordinate Distinct Chromatin Remodeling Programs in Vascular Smooth Muscle Plasticity. Circulation 2022, 145: 1720-1737. PMID: 35502657, PMCID: PMC12047542, DOI: 10.1161/circulationaha.121.057599.Peer-Reviewed Original ResearchConceptsHistone acetylationContractile genesContractile protein expressionPhenotypic switchingHistone acetyl transferase p300Human intimal hyperplasiaPlatelet-derived growth factor treatmentAcetyl transferase p300Key regulatory mechanismSmooth muscle cell phenotypeP300 expressionP300-dependent acetylationSmooth muscle plasticityDistinct functional interactionsMuscle cell phenotypeProtein expressionIntimal hyperplasiaRole of p300Methylcytosine dioxygenase TET2Chromatin modificationsEpigenetic regulationVSMC phenotypic switchingSpecific histoneCardiovascular diseaseMaster regulator
2013
Whole-exome sequencing identifies a novel somatic mutation in MMP8 associated with a t(1;22)-acute megakaryoblastic leukemia
Kim Y, Schulz VP, Satake N, Gruber TA, Teixeira AM, Halene S, Gallagher PG, Krause DS. Whole-exome sequencing identifies a novel somatic mutation in MMP8 associated with a t(1;22)-acute megakaryoblastic leukemia. Leukemia 2013, 28: 945-948. PMID: 24157583, PMCID: PMC3981934, DOI: 10.1038/leu.2013.314.Commentaries, Editorials and Letters
2012
Pooled Short Hairpin (shRNA) Library Screen Coupled with Next-Generation Sequencing Efficiently Uncover Transcriptional Network in Neural Lineage Development of Human Embryonic Stem Cells (IN8-1.009)
Szekely A, Zhang Y, Reed B, Schulz V, Wang Z, Euskirchen G, Snyder M, Ivanova N, Weissman S. Pooled Short Hairpin (shRNA) Library Screen Coupled with Next-Generation Sequencing Efficiently Uncover Transcriptional Network in Neural Lineage Development of Human Embryonic Stem Cells (IN8-1.009). Neurology 2012, 78: in8-1.009-in8-1.009. DOI: 10.1212/wnl.78.1_meetingabstracts.in8-1.009.Peer-Reviewed Original ResearchPooled Short Hairpin (shRNA) Library Screen Coupled with Next-Generation Sequencing Efficiently Uncover Transcriptional Network in Neural Lineage Development of Human Embryonic Stem Cells (P02.016)
Szekely A, Zhang Y, Reed B, Schulz V, Wang Z, Euskirchen G, Snyder M, Ivanova N, Weissman S. Pooled Short Hairpin (shRNA) Library Screen Coupled with Next-Generation Sequencing Efficiently Uncover Transcriptional Network in Neural Lineage Development of Human Embryonic Stem Cells (P02.016). Neurology 2012, 78: p02.016-p02.016. DOI: 10.1212/wnl.78.1_meetingabstracts.p02.016.Peer-Reviewed Original Research
2006
Allelic dropout in long QT syndrome genetic testing: A possible mechanism underlying false-negative results
Tester D, Cronk L, Carr J, Schulz V, Salisbury B, Judson R, Ackerman M. Allelic dropout in long QT syndrome genetic testing: A possible mechanism underlying false-negative results. Heart Rhythm 2006, 3: 815-821. PMID: 16818214, DOI: 10.1016/j.hrthm.2006.03.016.Peer-Reviewed Original ResearchMeSH KeywordsAdolescentAdultAllelesChildChromatography, High Pressure LiquidDNADNA Mutational AnalysisERG1 Potassium ChannelEther-A-Go-Go Potassium ChannelsExonsFalse Negative ReactionsFemaleGene FrequencyHumansKCNQ1 Potassium ChannelLong QT SyndromeMaleMuscle ProteinsMutationNAV1.5 Voltage-Gated Sodium ChannelPolymerase Chain ReactionPolymorphism, Single NucleotidePotassium Channels, Voltage-GatedRetrospective StudiesSodium ChannelsConceptsLong QT syndromeGenetic testingSingle nucleotide polymorphismsIntronic single nucleotide polymorphismLQTS-causing mutationsCongenital long QT syndromeCommon intronic single nucleotide polymorphismHigh clinical probabilityLong QT syndrome genetic testingLQTS genetic testingCardiac channel genes
2005
The Pattern of Polymorphism in Arabidopsis thaliana
Nordborg M, Hu T, Ishino Y, Jhaveri J, Toomajian C, Zheng H, Bakker E, Calabrese P, Gladstone J, Goyal R, Jakobsson M, Kim S, Morozov Y, Padhukasahasram B, Plagnol V, Rosenberg N, Shah C, Wall J, Wang J, Zhao K, Kalbfleisch T, Schulz V, Kreitman M, Bergelson J. The Pattern of Polymorphism in Arabidopsis thaliana. PLOS Biology 2005, 3: e196. PMID: 15907155, PMCID: PMC1135296, DOI: 10.1371/journal.pbio.0030196.Peer-Reviewed Original ResearchConceptsPatterns of polymorphismA. thalianaArabidopsis thalianaEvolutionary functional genomicsLinkage disequilibrium decayGenome-wide excessLevel of polymorphismStandard neutral modelDisequilibrium decayFunctional genomicsGene densityNatural populationsSegmental duplicationsGenomic regionsNatural selectionPopulation structureThalianaPolymorphism dataNeutral modelTheoretical null distributionRare allelesShort fragmentsPolymorphismWide surveyGenomics
2002
Schizosaccharomyces pombe pfh1+Encodes an Essential 5′ to 3′ DNA Helicase That Is a Member of thePIF1 Subfamily of DNA Helicases
Zhou J, Qi H, Schulz V, Mateyak M, Monson E, Zakian V. Schizosaccharomyces pombe pfh1+Encodes an Essential 5′ to 3′ DNA Helicase That Is a Member of thePIF1 Subfamily of DNA Helicases. Molecular Biology Of The Cell 2002, 13: 2180-2191. PMID: 12058079, PMCID: PMC117634, DOI: 10.1091/mbc.02-02-0021.Peer-Reviewed Original ResearchMeSH KeywordsAmino Acid SequenceAnimalsDNA HelicasesDNA PrimersDNA-Binding ProteinsDNA, MitochondrialDNA, RibosomalHumansMolecular Sequence DataPolycomb-Group ProteinsProteinsRestriction MappingSaccharomyces cerevisiae ProteinsSchizosaccharomycesSchizosaccharomyces pombe ProteinsTranscription FactorsConceptsS. pombe proteinPombe proteinsDNA helicaseHelicase activityTelomeric DNAS. cerevisiaeATPase/helicase activitySchizosaccharomyces pombe geneSole essential functionDNA helicase activityInvariant lysine residuePombe geneDNA helicasesMitochondrial DNADNA replicationMutant sporesCellular phenotypesHigh identityGenetic analysisEssential functionsSame phenotypePrototype memberHelicaseLysine residuesS phase