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Combining Virotherapy and Immunotherapy for Cancer

Combining Virotherapy and Immunotherapy for Cancer
结合病毒疗法和免疫疗法治疗癌症
批准号:
7177498
负责人:
NORIYUKI KASAHARA
金额:
$30.03万
依托单位国家:
美国
项目类别:
财政年份:
2004
资助国家:
美国
项目状态:
已结题
起止时间:
2004-02-02 至 2009-01-31
关键词:
Active ImmunizationActive ImmunotherapyAdultAdverse effectsAffectAftercareAnimalsAntibodiesAntigensBiodistributionBiological AssayBrainBrain NeoplasmsCancer VaccinesCell DeathCellsCentral Nervous System NeoplasmsCharacteristicsClinicalClinical TrialsCombined Modality TherapyControl GroupsCytokine GeneCytolysisCytosine deaminaseDNA Sequence RearrangementDevelopmentDiseaseDisease modelEmerging TechnologiesEventExhibitsFlucytosineGene TransferGenesGeneticGenomeGlioblastomaGliomaGreen Fluorescent ProteinsGrowthHumanImmune responseImmunocompetentImmunotherapeutic agentImmunotherapyInjection of therapeutic agentKineticsLife Cycle StagesMalignant GliomaMalignant NeoplasmsMalignant neoplasm of prostateMediatingMetastatic LesionModelingMurine leukemia virusNeoplasm MetastasisNormal CellNormal tissue morphologyNude MiceOncogenesOncolytic virusesPeripheralPersonal SatisfactionPhasePolymerase Chain ReactionPrincipal InvestigatorProcessProdrugsPurposeRadioisotopesRadiolabeledRadiosurgeryRecurrent Malignant NeoplasmResearch PersonnelResidual stateRetroviral VectorRetroviridaeRiskRodentSafetySerial PassageSerotherapiesSolid NeoplasmStandards of Weights and MeasuresSuicide Gene TherapyTestingTherapeuticTherapeutic UsesTimeTissuesToxic effectTranscriptional RegulationTransgenesTreatment EfficacyVaccinationVaccinesViralViral AntibodiesViral AntigensViral ProteinsVirusWeekXenograft ModelXenograft procedureYeastsantibody conjugatebasecancer cellcancer immunotherapycancer therapycell killingcellular transductionchemotherapycytokinecytotoxicitydaydesign and constructiondosagefollow-upgene therapygene transfer vectorimprovedin vivoin vivo Modelirradiationkillingsmalignant breast neoplasmneoplastic cellnoveloncolysisoutcome forecastprogramsradiotracersuicide genetransduction efficiencytransmission processtumorvector

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DESCRIPTION (provided by applicant): The most prevalent problem in cancer therapy is the re-growth and metastasis of malignant cells after standard treatment with surgery, radiation, and chemotherapy. Gene therapy approaches have suffered from the inadequate transduction efficiencies of replication-defective vectors that have been used thus far. Replication-competent vectors represent an emerging technology that shows considerable promise as a novel treatment option, particularly for locally advanced or recurrent cancer. In contrast to conventional replication-defective retrovirus vectors, gene transfer using replication-competent murine leukemia virus (MLV)-based retrovirus vectors has proven to be highly efficient, resulting in >98% transduction throughout entire tumors over a period of several weeks in breast cancer, prostate cancer, and glioma models, even with an initial inoculum of vector supematant as low as 10e(4-5) total infectious units, corresponding to MOIs as low as 0.001. While various other replicating oncolytic viruses are now in development as cancer therapeutics, the use of replication-competent retrovirus (RCR) vectors has rarely been contemplated due to the potential risks that might be associated with uncontrolled spread of virus. In fact, MLV-based RCR vectors exhibit a significant degree of inherent tumor-selectivity, as extratumoral spread was undetectable by sensitive PCR assays in all normal tissues tested, presumably due to the intrinsic inability of MLV to infect quiescent cells, and MLV exhibits additional advantageous characteristics including a simple genome and well-characterized life cycle, fidelity of transcriptional regulation, and efficient non-lyric transmission of suicide genes which are stably expressed until maximal intratumoral vector spread and optimal timing for pro-drug administration is reached. Using RCR vectors expressing the suicide gene cytosine deaminase, we have now demonstrated highly efficient killing of cancer cells both in culture and in tumor models in vivo. Treatment of intracranial gliomas with RCR vector-mediated suicide gene therapy resulted in 100% survival for >120 days, compared to 0% survival of control groups in < 40 days, and viral persistence was observed in all metastatic ectopic foci. We now propose that the efficient and stable conferral of viral neo-antigens to the tumor cells present an opportunity to further improve the long-term efficacy of this therapy by combining multiple approaches, including (1) seroimmunotherapy by follow-up administration of radioisotope-conjugated antibodies directed against viral proteins, and (2) active immunotherapy by peripheral sensitization with tumor vaccines expressing viral antigens, combined with intratumoral gene transfer of immunostimulatory cytokines. In this application, we have combined the expertise of multiple collaborators to directly test these approaches in syngeneic intracranial glioma models in vivo.
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GALV-Based Retroviral Replicating Vectors for Glioma Gene Therapy
Retroviral Replicating Vector-mediated Gene Therapy for Ovarian Cancer
Retroviral Replicating Vector-mediated Gene Therapy for Ovarian Cancer
Retroviral Replicating Vector-mediated Gene Therapy for Ovarian Cancer
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