Novel relationships of splicing factors in temozolomide-resistant glioblastoma
Novel relationships of splicing factors in temozolomide-resistant glioblastoma
批准号:
10085005
负责人:
Deanna Marie Tiek
金额:
$8.66万
依托单位国家:
美国
项目类别:
财政年份:
2020
资助国家:
美国
项目状态:
已结题
起止时间:
2020-02-01 至 2024-01-31
关键词:
AddressAgonistAlkylating AgentsAlternative SplicingApoptoticArginineBackBiologyBlood - brain barrier anatomyBrainBrain GlioblastomaBrain NeoplasmsCell modelCell physiologyCellsDNADNA DamageDNA RepairDiagnosisDoctor of PhilosophyDrug resistanceEquilibriumEventFDA approvedGenesGenetic TranscriptionGlioblastomaGoalsIn VitroKnowledgeLesionMalignant NeoplasmsMentorshipMethodsMethyltransferaseMicroRNAsModelingMolecularNuclear Orphan ReceptorOperative Surgical ProceduresOrganPaperPathway interactionsPatientsPhasePhosphorylationPhosphotransferasesPlayPoriferaPostdoctoral FellowProcessProductionProtein IsoformsProteinsRNARNA SplicingRNA-Binding Protein EWSRNA-Binding ProteinsRadiation therapyRegulationResearchResearch PersonnelResearch Project GrantsResearch TechnicsResistanceRoleSerineSignal TransductionTestingTherapeuticTrainingTranscriptTranslatingTubulinUntranslated RNAWorkXenograft procedureanticancer researchbasecell growthcell motilitychemotherapycircular RNAcombatestrogen-related receptorexperiencegene productimprovedin silicoin vivoinhibitor/antagonistmetabolic phenotypeneoplastic cellnew therapeutic targetnovelnovel strategiespost-doctoral trainingpre-doctoralprogramsreceptor functionrepairedresearch studyresponsesuccesstemozolomidetherapeutic targettranscriptometreatment strategy
中文摘要
胶质母细胞瘤(GBM)是一种毁灭性的癌症,因为我们对其分子驱动因素的理解很狭隘
英文摘要
Glioblastoma (GBM) is a devastating cancer, due to both our narrow understanding of its molecular drivers and
limited therapeutic strategies. One potential mechanistic driver is alternative splicing. The brain contains the
most alternatively spliced transcripts of any organ, and many splicing factors are upregulated between normal
brain and GBM. While chemotherapeutic options are limited by the physical blood brain barrier (BBB), the DNA-
damaging agent temozolomide (TMZ) is able to cross into the brain. However, most patients rapidly become
resistant to TMZ and TMZ-resistant GBM is uniformly fatal. An initial goal of my PhD research was to establish
novel TMZ-resistant cellular models in order to identify pathways that could be targeted for GBM treatment. My
comprehensive characterization of the cell growth, motility, and metabolic phenotypes of my two new TMZ-
resistant GBM models forms the basis for my initial first-author paper. During my dissertation research (Aim 1),
I have conducted two complementary studies that identify novel approaches to targeting alternative splicing
events in GBM. The first (Aim 1.1) is to target the alternatively spliced estrogen-related receptor beta (ERRβ). I
have started to define with in silico and in vitro methods how the pro-apoptotic isoform of this gene, ERRβ2, is
processed. I found that the serine/arginine (SR) rich splicing factor SRSF6 plays a role in ERRβ2 production and
that inhibition of Cdc-like kinases (CLKs, which phosphorylate SR proteins) with TG-003 in combination with the
ERRβ synthetic agonist DY-131 potently inhibits TMZ-resistant GBM cells in vitro and in intracranial xenografts.
The second (Aim 1.2) is a broader study of splicing inhibition and regulation in TMZ-resistant GBM. I found that
TMZ decreases the phosphorylation (p) of SR proteins in TMZ-sensitive, but not TMZ-resistant models. This is
accompanied by mis-localization of pSR proteins, and increased baseline levels of DNA damage. In TMZ-
resistant GBM cells, the RNA binding protein EWS also mis-localizes and forms aggregates that are stabilized
by tubulin. My working hypothesis is that because of the increased DNA damage in TMZ-resistant GBM, the
DNA damage response becomes reprogrammed which causes splicing factors (like EWS and pSR proteins) to
be displaced from their normal cellular compartments and poised for aberrant aggregation. Also, that this new
splicing factor/DNA damage repair axis can be therapeutically targeted with novel splicing inhibitors. During the
postdoctoral training period (Aim 2), I will address a key gap in our understanding of the GBM transcriptome:
the role of non-coding RNAs, specifically the noncanonical back-spliced or circular RNAs (circRNAs). I propose
to define the circRNA landscape of GBM, to determine the regulatory functions and to propose potential
therapeutic applications of these abundant and dynamic regulators of splicing and transcription. Together, my
pre- and postdoctoral research experiences will have prepared me to balance both big picture ideas and focused
studies of mechanism when I establish my own research program as an independent cancer researcher.
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专著(0)
科研奖励(0)
会议论文
Ferroptosis in drug resistant glioma
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批准号:10808297
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项目类别:
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资助金额:$12.87万
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财政年份:2023
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负责人:Deanna Marie Tiek
-
依托单位:
Novel relationships of splicing factors in temozolomide-resistant glioblastoma
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批准号:10557860
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项目类别:
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资助金额:$9.85万
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财政年份:2020
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负责人:Deanna Marie Tiek
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依托单位:
Novel relationships of splicing factors in temozolomide-resistant glioblastoma
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批准号:10334507
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项目类别:
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资助金额:$9.4万
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财政年份:2020
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负责人:Deanna Marie Tiek
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依托单位:
国内基金
海外基金
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批准号:32000851
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项目类别:青年科学基金项目
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资助金额:24.0万元
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批准年份:2020
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负责人:乔安娜
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依托单位: