Crosstalk between the ER Stress Response and Mitochondrial Fatty Acid Oxidation in MYC-driven Breast Cancer
Crosstalk between the ER Stress Response and Mitochondrial Fatty Acid Oxidation in MYC-driven Breast Cancer
批准号:
10442761
负责人:
Xi Chen
金额:
$36.26万
依托单位国家:
美国
项目类别:
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-07-12 至 2023-06-30
关键词:
BindingBiologicalBreast Cancer CellBreast Cancer PatientCarnitineCell NucleusCell physiologyCellsCellular StressCombined Modality TherapyCommunicationConsumptionDataDependenceDevelopmentEndoplasmic ReticulumEnergy MetabolismEnhancersEnzymesFatty AcidsGenetic TranscriptionGenetically Engineered MouseGoalsGrowthImpairmentIn VitroMediatingMetabolicMetabolic PathwayMitochondriaMolecularOncogenesOncogenicOrganellesPathway interactionsPatient-Focused OutcomesPharmacologyPilot ProjectsPredispositionProductionProteinsRelapseResearchResistanceRibonucleasesRoleSpecificityStressSystemic TherapyTestingTherapeuticToxic effectTransferaseTreatment EfficacyXBP1 genebasebiological adaptation to stressbreast cancer progressioncancer cellcancer subtypescell behaviorchemotherapycohortdisorder later incidence preventiondocetaxelendoplasmic reticulum stressfatty acid oxidationimprovedin vivoinhibitorinsightlong chain fatty acidmalignant breast neoplasmnovelnovel therapeutic interventionoverexpressionpatient derived xenograft modelpre-clinicalpromoterresponsesensortargeted treatmenttherapy resistanttriple-negative invasive breast carcinomatumortumor eradicationtumor growthtumor metabolismtumor xenografttumorigenesisuptake
中文摘要
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英文摘要
ABSTRACT
It is well known that cancer metabolism is highly dynamic and context- and oncogene-dependent. However,
the underlying mechanism, particularly that of interorganelle communication in oncogene-dependent metabolic
reprogramming, is largely unknown. Our preliminary studies establish that oncogenic MYC regulates
Endoplasmic Reticulum (ER)-localized transmembrane sensor IRE1α and its substrate XBP1 via multiple
mechanisms. Importantly, our pilot studies suggest the increased susceptibility of MYC-overexpressing triple
negative breast cancer (TNBC) to IRE1α/XBP1 inhibition, possibly mediated via altered interorganelle
communication and metabolic reprogramming to fatty acid oxidation (FAO). These findings provide a
framework to seek biological insight into this altered communication between the ER, mitochondria, and
nucleus in MYC-overexpressing TNBC cells, and to further explore the effects of pharmacological inhibition of
IRE1α as an anti-tumor approach for MYC-driven TNBC by disrupting the interorganelle communication. We
hypothesize that oncogenic MYC hijacks the ER stress sensor IRE1α, and its substrate XBP1, to promote
mitochondrial FAO and sustain TNBC tumorigenesis and resistance to chemotherapy. This proposal will
elucidate the function and mechanism of the ER in regulating MYC-driven oncogenic stress and mitochondrial
metabolic reprogramming in TNBC. In Aim 1, we will investigate the biological significance of IRE1α/XBP1
mediated ER-nucleus communication in MYC-driven TNBC. Aim 2 will determine the role of mitochondrial FAO
activation by the IRE1α/XBP1 pathway in MYC-driven TNBC. Lastly, Aim 3 will investigate the in vivo efficacy
and mechanisms of combination therapy with IRE1α inhibitor and docetaxel in treating MYC-driven TNBC. The
resulting data from this proposal will be significant as they will promote the development of novel, mechanism-
based therapeutic approaches to disrupt these altered metabolic pathways and improve the treatment of MYC-
driven TNBC.
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