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Investigating lineage plasticity in castration-resistant prostate cancer

Investigating lineage plasticity in castration-resistant prostate cancer
研究去势抵抗性前列腺癌的谱系可塑性
批准号:
10656234
负责人:
MICHAEL M. SHEN
金额:
$41.93万
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:
未结题
起止时间:
2020-07-01 至 2025-06-30
关键词:
3-DimensionalATAC-seqAdenocarcinomaAdenocarcinoma CellAdoptedAffectAndrogen AntagonistsAndrogen ReceptorAntiandrogen TherapyBiochemicalBiological AssayBiological ModelsCellsChIP-seqCharacteristicsChromatinClinicalClustered Regularly Interspaced Short Palindromic RepeatsComplexComputer AnalysisDNA MethylationDNA Modification MethylasesDNMT3aDataDevelopmentDiseaseEZH2 geneEpigenetic ProcessEpitheliumGenetically Engineered MouseGenitourinary systemGenomicsHistonesHumanInvestigationLaboratoriesMalignant neoplasm of prostateMediatingMetastatic Prostate CancerModelingModificationMolecularMolecular AnalysisMusNeuroendocrine CellNeuroendocrine Prostate CancerNeuroendocrine TumorsNeurosecretory SystemsOrganoidsPathologyPathway interactionsPatientsPatternPharmaceutical PreparationsPhenotypePlayPolycombPopulationPopulation HeterogeneityPropertyProstateProstate Cancer therapyProstatic NeoplasmsRelapseResistanceSamplingSpecific qualifier valueSystemSystems BiologyTransitional CellValidationabirateronebisulfite sequencingcandidate identificationcandidate validationcastration resistant prostate cancercell typedrug candidateeffective therapyenzalutamideepigenetic regulationgain of functionimprovedin vivoinnovationinsightinterestmethylation patternmouse modelneuroendocrine differentiationnew therapeutic targetnovelnovel therapeuticspharmacologicprogramsreceptor expressionrecruitsingle-cell RNA sequencingtherapeutic targettherapy resistanttransdifferentiationtranslational impacttumorwhole genome

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Project Summary The clinical use of anti-androgens such as abiraterone and enzalutamide has greatly improved prostate cancer treatment, but patients treated with these drugs still relapse with more aggressive forms of the disease, collectively termed as castration-resistant prostate cancer (CRPC). These forms of CRPC are characterized by increased lineage plasticity, often associated with loss of androgen receptor (AR) expression and neuroendocrine differentiation. Our laboratory focuses on analyses of cell type differentiation in the normal and transformed prostate epithelium, and has recently used genetically-engineered mouse models to show that neuroendocrine cells in CRPC arise by transdifferentiation from luminal adenocarcinoma cells. In preliminary studies for this proposal, we have generated organoid models of CRPC from these mouse prostate tumors, and have demonstrated by single-cell RNA sequencing that these organoids recapitulate much of the spectrum of human CRPC, including distinct heterogeneous populations composed of AR-pathway positive prostate cancer, neuroendocrine prostate cancer, and double-negative prostate cancer. Further analysis of these organoid lines has revealed a complex genomic landscape of chromatin accessibility, and has identified active histone marks that are associated with neuroendocrine differentiation. These findings indicate that epigenetic reprogramming may play a key role in the lineage plasticity of castration-resistant prostate cancer. Based on these preliminary data, we hypothesize that molecular analysis of epigenetic reprogramming in castration-resistant prostate cancer will identify candidate drivers and mechanisms of lineage plasticity. To investigate this hypothesis, we will pursue three innovative aims that integrate in vivo, ex vivo, molecular, and computational systems approaches to analyze genetically-engineered mouse models, organoids, grafts, and human prostate tumor samples. Our specific aims are as follows: (1) Analysis of lineage plasticity in CRPC organoid and mouse models to examine potential pathways of interconversion between distinct forms of CRPC; (2) Investigation of epigenetic pathways in CRPC organoid models by examining chromatin accessibility, histone marks, and DNA methylation patterns to identify epigenetic marks and regulators that drive lineage plasticity; and (3) Functional analysis of candidate regulators of lineage plasticity in CRPC using computational systems approaches to identify candidate regulators of plasticity followed by experimental validation using organoid and graft assays together with analyses of human tumor samples. Overall, these studies will provide essential insights into the molecular basis of lineage plasticity and treatment resistance in prostate cancer, and will have significant implications for the development of novel therapies.
期刊论文(5)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1016/j.semcancer.2021.06.016
发表时间: 2022-07
期刊: Seminars in cancer biology
影响因子: 14.5
作者: [Li W, Shen MM]
通讯作者: Shen MM
DOI: 10.1158/0008-5472.can-21-3360
发表时间: 2021-12-15
期刊: Cancer research
影响因子: 11.2
作者: [Gil V, Miranda S, Riisnaes R, Gurel B, D'Ambrosio M, Vasciaveo A, Crespo M, Ferreira A, Brina D, Troiani M, Sharp A, Sheehan B, Christova R, Seed G, Figueiredo I, Lambros M, Dolling D, Rekowski J, Alajati A, Clarke M, Pereira R, Flohr P, Fowler G, Boysen G, Sumanasuriya S, Bianchini D, Rescigno P, Aversa C, Tunariu N, Guo C, Paschalis A, Bertan C, Buroni L, Ning J, Carreira S, Workman P, Swain A, Califano A, Shen MM, Alimonti A, Neeb A, Welti J, Yuan W, de Bono J, PCF/SU2C International Prostate Cancer Dream Team]
通讯作者: PCF/SU2C International Prostate Cancer Dream Team
DOI: 10.1016/j.canlet.2021.10.035
发表时间: 2022-01-28
期刊: Cancer letters
影响因子: 9.7
作者: [Crowley L, Shen MM]
通讯作者: Shen MM
Project 3: Analysis of intrinsic and extrinsic factors that promote prostate neuroendocrine differentiation
Core B: Administrative and Data Management Core
Project 3: Analysis of intrinsic and extrinsic factors that promote prostate neuroendocrine differentiation
Investigating cell-intrinsic and extrinsic interactions in prostate cancer at the single cell level
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  • 项目类别:
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  • 批准年份:
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