HSC transduction in situ by cellular delivery of integrating viral vectors
通过整合病毒载体的细胞递送进行 HSC 原位转导
基本信息
- 批准号:7902251
- 负责人:
- 金额:$ 38.5万
- 依托单位:
- 依托单位国家:美国
- 项目类别:
- 财政年份:2008
- 资助国家:美国
- 起止时间:2008-08-05 至 2014-07-31
- 项目状态:已结题
- 来源:
- 关键词:AcyclovirAutologousBiochemicalBiological AssayBloodBone MarrowBone Marrow Stem CellCXCRCandidate Disease GeneCell SurvivalCellsDefectDevelopmentDiseaseDisorder by SiteDoseEngraftmentEventFaceFanconi&aposs AnemiaGene DeliveryGeneticGoalsHIVHIV-1Hematological DiseaseHematopoiesisHematopoieticHematopoietic stem cellsHereditary DiseaseHomingImmune System DiseasesImmune systemImmunofluorescence ImmunologicImprove AccessIn SituInjection of therapeutic agentLaboratoriesLifeMarrowMetastatic toMitomycinsModalityModelingModificationMusMutationNeomycinOncogenesOrganPathway interactionsPhenotypeProcessRadiation therapyRegenerative MedicineResistanceRiskRoleSeriesSite-Directed MutagenesisStem cellsTestingTherapeuticTissuesTransgenic OrganismsTransplantationTumor TissueViral VectorVirionbaseblood treatmentcell motilitycell typecellular imagingcellular transductionchemokine receptorchemotherapyconditioninggene therapygenetically modified cellshematopoietic tissueimprovedin vivoinjury and repairinsightnovelparticlepromotersuccesstooltraffickingtumorvector
项目摘要
DESCRIPTION (provided by applicant): Therapies involving the genetic modification of stem cells hold substantial promise for the treatment of blood- and immunesystem disorders. They also face daunting obstacles limiting their feasibility and efficiency, related in part to poor target cell access and compromised stem cell survival in culture. We have recently made a series of novel observations that demonstrate the prolonged intracellular retention of HIV-derived lentivector particles by hematopoietic "carrier" cells and their capacity for secondary transduction events. The release of intact particles in murine transplantation studies led to preferential particle dissemination to host hematopoietic organs. These findings reveal a unique therapeutic opportunity to combine particle capture and active carrier cell homing for the delivery of lentivector to the marrow microenvironment. We hypothesize that lentivector particle capture and release by hematopoietic "carrier" cells, when combined with established homing mechanisms, can be exploited and optimized for the genetic modification of bone marrow stem cells in situ. We will systematically test this hypothesis in three specific aims. In a murine transplantation model with a stem cell defect we will ascertain the ability of carrier cells to phenotypically correct long-lived stem cells by in situ particle delivery, evaluate the mechanism by which this occurs and determine the dissemination to other organs. We will test strategies based on carrier cell homing and host conditioning to improve carrier cell access to the microenvironment and the efficiency of particle delivery. Finally, using a combination of biochemical assays and live-cell imaging we will investigate particle trafficking within carrier cells as a means of understanding and manipulating the mechanisms responsible for vector particle retention and release. The proposed strategy is based on our laboratory's observations, and adapts the established cancer gene therapy paradigm of using cellular carriers to target tumor tissue for virus particle delivery. Successful systemic delivery of lentivector particles by autologous cellular carriers directly to bone marrow stem cells will help overcome current impediments to gene therapy for hematopoietic and immune disorders. Without improved access to tissues and target cells, the therapeutic potential of gene therapy remains largely unfulfilled. The proposed development of a novel cellular approach to the delivery of genetic payload is therefore critically important not only for the intended correction of genetic disorders of the blood and immune system, but also as a tool for post injury repair in regenerative medicine.
描述(由申请人提供):涉及干细胞遗传修饰的疗法在治疗血液和免疫系统疾病方面具有重大前景。它们也面临着限制其可行性和效率的艰巨障碍,部分原因是靶细胞难以进入和干细胞在培养中的存活率受损。我们最近进行了一系列新的观察,证明了造血“载体”细胞对hiv衍生的慢载体颗粒的细胞内滞留时间延长,以及它们对二次转导事件的能力。在小鼠移植研究中,完整颗粒的释放导致颗粒优先传播到宿主造血器官。这些发现揭示了一个独特的治疗机会,结合颗粒捕获和主动载体细胞归巢,将慢载体递送到骨髓微环境。我们假设造血“载体”细胞的慢载体颗粒捕获和释放,当与已建立的归巢机制相结合时,可以利用和优化原位骨髓干细胞的遗传修饰。我们将在三个具体目标中系统地检验这一假设。在具有干细胞缺陷的小鼠移植模型中,我们将通过原位颗粒递送确定载体细胞对长寿命干细胞进行表型纠正的能力,评估这种情况发生的机制,并确定向其他器官的传播。我们将测试基于载体细胞归巢和宿主调节的策略,以改善载体细胞对微环境的访问和颗粒递送的效率。最后,利用生化分析和活细胞成像的结合,我们将研究载体细胞内的颗粒运输,作为理解和操纵负责载体颗粒保留和释放的机制的手段。提出的策略是基于我们实验室的观察,并适应了利用细胞载体靶向肿瘤组织进行病毒颗粒递送的既定癌症基因治疗范式。通过自体细胞载体成功地将慢载体颗粒直接输送到骨髓干细胞,将有助于克服目前造血和免疫疾病基因治疗的障碍。如果不能更好地进入组织和靶细胞,基因治疗的治疗潜力在很大程度上仍未实现。因此,提出一种新的细胞方法来传递遗传载荷,不仅对血液和免疫系统的遗传疾病的预期纠正至关重要,而且作为再生医学中损伤后修复的工具。
项目成果
期刊论文数量(0)
专著数量(0)
科研奖励数量(0)
会议论文数量(0)
专利数量(0)
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Peter Kurre其他文献
Peter Kurre的其他文献
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{{ truncateString('Peter Kurre', 18)}}的其他基金
Hematopoietic stem and progenitor cell regulation of the niche through extracellular vesicles
造血干细胞和祖细胞通过细胞外囊泡调节生态位
- 批准号:
10634681 - 财政年份:2022
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$ 38.5万 - 项目类别:
Constrained Fetal Hematopoiesis and Clonal Restriction in Fanconi Anemia
范可尼贫血中胎儿造血受限和克隆限制
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10591494 - 财政年份:2020
- 资助金额:
$ 38.5万 - 项目类别:
Constrained Fetal Hematopoiesis and Clonal Restriction in Fanconi Anemia
范可尼贫血中胎儿造血受限和克隆限制
- 批准号:
10377337 - 财政年份:2020
- 资助金额:
$ 38.5万 - 项目类别:
Mitotically Stable Lentiviral Episomes for Stem Cell Gene Therapy
用于干细胞基因治疗的有丝分裂稳定的慢病毒附加体
- 批准号:
9348639 - 财政年份:2015
- 资助金额:
$ 38.5万 - 项目类别:
Mitotically Stable Lentiviral Episomes for Stem Cell Gene Therapy
用于干细胞基因治疗的有丝分裂稳定的慢病毒附加体
- 批准号:
9020642 - 财政年份:2015
- 资助金额:
$ 38.5万 - 项目类别:
HSC transduction in situ by cellular delivery of integrating viral vectors
通过整合病毒载体的细胞递送进行 HSC 原位转导
- 批准号:
8532025 - 财政年份:2008
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HSC transduction in situ by cellular delivery of integrating viral vectors
通过整合病毒载体的细胞递送进行 HSC 原位转导
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7670405 - 财政年份:2008
- 资助金额:
$ 38.5万 - 项目类别:
HSC transduction in situ by cellular delivery of integrating viral vectors
通过整合病毒载体的细胞递送进行 HSC 原位转导
- 批准号:
8318345 - 财政年份:2008
- 资助金额:
$ 38.5万 - 项目类别:
HSC transduction in situ by cellular delivery of integrating viral vectors
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- 批准号:
8123344 - 财政年份:2008
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Genetic targeting of proviral integration in stem cells
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