In vivo RNAi nanoparticle cancer gene function reagent
In vivo RNAi nanoparticle cancer gene function reagent
批准号:
7611498
负责人:
MARTIN C WOODLE
金额:
$23.54万
依托单位国家:
美国
项目类别:
财政年份:
2008
资助国家:
美国
项目状态:
已结题
起止时间:
2008-09-16 至 2010-08-31
关键词:
A549AddressAdvanced Malignant NeoplasmAnimal Cancer ModelAnimal Disease ModelsAnimal ModelAreaBiochemistryBreastCancer EtiologyCancer ModelCancer PatientCell LineCessation of lifeClassClinicalComplexConditionCultured CellsDevelopmentDiagnosisDiseaseDissectionDisseminated Malignant NeoplasmDrug Delivery SystemsEffectivenessEpidermal Growth Factor ReceptorEventFormalinFoundationsGene TargetingGenesGenomicsGrowthHead and Neck CancerImmuneIn VitroInvestigationKnock-outLasersLesionLibrariesLifeLiteratureMalignant NeoplasmsMalignant neoplasm of lungMetastatic toMethodsModelingMolecularMorphologic artifactsNeoplasm MetastasisNon-Small-Cell Lung CarcinomaNucleic AcidsNumbersOncogenesPathologyPatientsPhasePlasmidsPlayPrimary NeoplasmProteinsProteomicsPubMedPublic HealthRNA InterferenceRangeReagentReporterResearchReverse Transcriptase Polymerase Chain ReactionRoleSamplingScreening procedureSmall Interfering RNASorting - Cell MovementStructureStructure-Activity RelationshipStudy modelsTP53 geneTargeted ResearchTechnologyTestingTherapeuticTimeTissue SampleTissuesTranslatingValidationXenograft ModelXenograft procedurebasec-erbB-1 Proto-Oncogenescell behaviorcostexpression vectorfunctional genomicsgene functionimprovedin vivoinhibitor/antagonistinterestintravenous administrationmalignant breast neoplasmnanoparticleneoplastic cellnovelplasmid DNApolypeptideresponsesmall hairpin RNAsuccesstherapeutic targettissue fixingtumortumor growthtumor xenograft
中文摘要
描述(申请人提供):尽管最近取得了进展,癌症仍然是一种主要的杀手,迫切需要更有效的治疗,不幸的是,转移性非小细胞肺癌(NSCLC)尤其如此,它困扰着非常多的患者,是最难治疗的癌症之一。随着靶向治疗的日益成功,对非小细胞肺癌生物化学和病理学的更多了解是发现新的和更好的治疗方法的关键瓶颈。为此,正在进行相当大的努力,开发适用于临床样本的先进基因组和蛋白质组方法,主要进步来自于使用激光显微解剖和蛋白质提取以及利用福尔马林固定组织切片的大型文库进行分析的能力。然而,利用这一极其有价值的信息开发靶向治疗的一个主要障碍是表征肿瘤相关蛋白的功能作用。帮助解决这一需求的另一个重大进展是RNA干扰(RNAi)的最新发展,但这种表征基因功能的革命性能力主要限于细胞培养研究,在动物疾病模型(如NSCLC异种移植瘤模型)中体内给药的方法有限,没有可用作研究试剂的方法。我们的假设是,我们可以将我们的阳离子多肽核酸纳米颗粒技术应用于原发乳腺癌异种移植模型,用于一套转移性和原发NSCLC异种移植瘤模型。计划中的研究旨在确定可商业化的试剂应用于体内转移和原发非小细胞肺癌移植瘤模型的可行性,其第一阶段的目标如下:1)建立两对转移和原发非小细胞肺癌移植瘤模型,2)使用阳性对照RNAi试剂调整和优化这些模型的体内递送香港多肽和纳米颗粒结构,以及3)使用一组在转移瘤或原发肿瘤病变中进行差异表达但不能从患者组织样本中同时表达的候选靶点来评估优化的香港RNAi纳米颗粒用于靶向验证的有效性。如果成功,第二阶段将进行体内RNAi试剂的商业开发,用于NSCLC异种移植模型基因功能靶标验证,包括转移性癌症。公共卫生相关性:转移性非小细胞肺癌(NSCLC)困扰着极大数量的患者,是最难治疗的癌症之一,因此是应用基因组和蛋白质组方法的进展以确定更好的药物靶点的主要研究领域。然而,仍然存在的一个主要障碍是需要商业试剂直接在转移性非小细胞肺癌动物模型中使用RNA干扰(RNAi)。RNAi表征基因功能和识别候选药物靶点的革命性能力在很大程度上局限于细胞培养研究。我们计划的研究是将我们的阳离子多肽核酸纳米颗粒技术用于体内递送RNAi试剂,用于一套转移性和原发的NSCLC异种移植瘤模型。如果成功,所产生的试剂有望使人们在了解这种威胁生命的疾病方面取得快速进展,为患者提供更有针对性的治疗选择。
英文摘要
DESCRIPTION (provided by applicant): In spite of recent advances, cancer remains a major killer posing a dire need for more effective therapy, and unfortunately this is particularly true for metastatic non-small cell lung cancer (NSCLC), which afflicts an extremely large number of patients and is one of the least treatable cancers. With the growing success of targeted therapeutics, it has become clear that a greater understanding of NSCLC biochemistry and pathology is a crucial bottleneck in identifying new and better treatments. To that end considerable efforts are underway developing advanced genomic and proteomic methods applicable to clinical samples, with a major advance coming from a capability for using laser micro-dissection and protein extraction and analysis with the large libraries of formalin fixed tissue sections. However, a remaining major barrier to using this extremely valuable information for development of targeted therapeutics is to characterize the functional role of the tumor associated proteins. Yet another major advance helping address this need is the recent development of RNA interference (RNAi) but this revolutionary capability to characterize gene function has been confined largely to cell culture studies, with limited methods for in vivo administration in animal disease models such as NSCLC xenograft tumor models, and none available as a research reagent. Our hypothesis is that we can adapt our cationic polypeptide nucleic acid nanoparticle technology, which we have found effective for in vivo delivery of RNAi agents to a primary breast cancer xenograft model, for a set of metastatic and primary NSCLC xenograft tumor models. The planned research to determine feasibility of a commercializable reagent for in vivo RNAi application to metastatic and primary NSCLC xenograft tumor models has the following objectives for Phase I: 1) establish two pair of metastatic and primary NSCLC xenograft models, 2) adapt and optimize the HK polypeptide and nanoparticle structure for in vivo delivery with these models using a positive control RNAi agent, and 3) evaluate the effectiveness of the optimized HK RNAi nanoparticle for target validation using a set of candidate targets found to be differentially expressed in metastatic tumor or primary tumor lesions but not both from patient tissue samples. If successful, Phase II will undertake commercial development of a reagent for in vivo RNAi for NSCLC xenograft model gene function target validation with capabilities including metastatic cancer. PUBLIC HEALTH RELEVANCE: Metastatic non-small cell lung cancer (NSCLC) afflicts an extremely large number of patients and is one of the least treatable cancers and thus is a major area for research applying advances in genomic and proteomic methods with the objective to identify better drug targets. However, a remaining major barrier is a need for commercial reagents for using RNA interference (RNAi) directly in animal models of metastatic NSCLC. The RNAi revolutionary capability to characterize gene function and identify candidate drug targets has been confined largely to cell culture studies. Our planned studies are to adapt our cationic polypeptide nucleic acid nanoparticle technology for in vivo delivery of RNAi agents for a set of metastatic and primary NSCLC xenograft tumor models. If successful, the resulting reagent is expect to enable rapid advances in understanding this life threatening disease that produce better targeted therapeutic treatment options for patients.
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In vivo RNAi nanoparticle cancer gene function reagent
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批准号:7688089
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项目类别:
-
资助金额:$23.54万
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财政年份:2008
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负责人:MARTIN C WOODLE
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依托单位:
Hybrid synthetic targeted lenti-VLP nanoparticle for gene delivery
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批准号:7611050
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项目类别:
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资助金额:$29.96万
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财政年份:2008
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负责人:MARTIN C WOODLE
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依托单位:
Hybrid synthetic targeted lenti-VLP nanoparticle for gene delivery
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批准号:7695023
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项目类别:
-
资助金额:$29.96万
-
财政年份:2008
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负责人:MARTIN C WOODLE
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依托单位:
海外基金