Microfluidic Synthesis of Nanoparticles for Oligonucleotide Delivery
Microfluidic Synthesis of Nanoparticles for Oligonucleotide Delivery
批准号:
7363104
负责人:
Robert J Lee
金额:
$15.94万
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
项目状态:
已结题
起止时间:
2008-03-20 至 2010-02-28
关键词:
Acute Myelocytic LeukemiaAntineoplastic AgentsBase PairingBindingBiodistributionBlood CirculationCell membraneCellsClassClinicalClinical TrialsDNA deliveryDevelopmentDevicesDown-RegulationDrug Delivery SystemsDrug KineticsEnvironmentEnzymesEvaluationGene ExpressionGovernmentHumanIn VitroLeadLipidsLiquid substanceMalignant - descriptorMalignant NeoplasmsMessenger RNAMethodsMicroRNAsMicrofluidicsModalityMolecular WeightOblimersenOhioOligodeoxyribonucleotidesOligonucleotidesOncogenesParticulatePermeabilityPersonsPharmaceutical PreparationsPolymersProblem SolvingProcessProductionProteinsPurposeRNARNA SequencesRateReagentReportingResistanceSingle-Stranded DNASolutionsStructureSystemTechnologyTherapeuticTissuesToxic effectTranslational RepressionTranslationsTreatment EfficacyTumor Suppressor GenesUniversitiesValidationVertebral columnbasebiomaterial compatibilitycancer cellcancer therapyclinical applicationconceptdesignhydrophilicityin vivoinnovationleukemiamelanomananodevicenanoparticlenanoscalenovel strategiesparticlepre-clinicalpreclinical studysizesuccesstumor
中文摘要
描述(申请人提供):治疗性寡核苷酸,特别是微小RNA(MiR),有望成为有效的抗癌药物。然而,由于缺乏有效的非肠道给药方法,它们的临床应用受到限制。通过多功能纳米颗粒输送是解决这一问题的一种潜在方法。然而,目前基于多种试剂混合的纳米颗粒制造方法在临床前和临床试验中只取得了有限的成功。由于本体混合在局部环境中是不均匀的,从而导致纳米颗粒的结构和组成不明确和不均匀,我们假设通过严格控制合成纳米颗粒的尺寸、结构和组成可以实现高效和安全的输送。因此,我们建议利用微流控技术,在微米尺度上精确控制混合过程,合成具有均匀和明确结构和组成的多功能纳米颗粒,用于将治疗性寡核苷酸输送到癌细胞。我们的具体目标是(1)优化和验证微流控系统,以制备含有针对黑色素瘤和急性髓系白血病细胞中特定抗凋亡蛋白的合成的miR(例如miR29b)和寡脱氧核苷酸(例如G3139)化合物的多功能聚合物和脂基纳米颗粒;(2)进行体外和体内临床前研究,以表征基于微流体的纳米颗粒的输送效率、毒性、生物相容性、药代动力学、生物分布和治疗效果。如果成功,这可能会导致开发一种新的治疗黑色素瘤和白血病等癌症的方法。
项目简介:寡核苷酸(特别是微小RNA)具有成为一类新型抗癌药物的巨大潜力,但由于缺乏有效的给药方法,其临床应用受到限制。我们试图通过开发纳米级、多功能、颗粒状的设备来解决这个问题,这些设备能够有效地将寡核苷酸药物输送到癌细胞。这些纳米设备将通过一种新的方法进行组装,这种方法基于对微米级液体流动的精确操纵。
英文摘要
DESCRIPTION (provided by applicant): Therapeutic oligonucleotides, in particular, micro RNA (miR), hold great promise to become effective anticancer agents. Their clinical usage is, however, limited by the lack of efficient methods for parenteral administration. Delivery via multi-functional nanoparticles is a potential solution to this problem. However, current nanoparticle manufacturing methods, which are based on bulk mixing of multiple reagents, have had only limited success in pre-clinical and clinical trials. Since bulk mixing is heterogeneous at local environment and consequently leads to the nanoparticles with poorly defined and non-uniform structures and compositions, we hypothesize that efficient and safe delivery can be achieved by tightly controlling the size, structure, and compositions of the synthetic nanoparticles. We therefore propose to employ microfluidic technology, which is capable of precisely controlling the mixing process at the micrometer scale, to the synthesis of multi-functional nanoparticles with uniform and well-defined structures and compositions for the delivery of therapeutic oligonucleotides to cancer cells. Our specific aims are (1) to optimize and validate microfluidic systems for the synthesis of multi-functional polymer and lipid-based nanoparticles containing synthetic miR (e.g., miR29b) and oligodeoxyribonucleotide (e.g., G3139) compounds targeting specific antiapoptotic proteins e.g., Bcl-2 and Mcl- 1, respectively, in melanoma and acute myeloid leukemia cells; and (2) to conduct in vitro and in vivo preclinical studies to characterize delivery efficiency, toxicity, biocompatibility, pharmacokinetics, biodistribution, and therapeutic efficacy of the microfluidic-based nanoparticles. If successful, this could lead to development of a new treatment modality for cancers such as melanoma and leukemia.
Project Narrative: Oligonucleotides (especially micro RNA) hold great potential to become a new class of anticancer drugs, but their clinical applications are limited by a lack of efficient delivery methods. We seek to solve this problem by developing nanoscale, multi-functional, particle-like devices capable of delivering oligonucleotide drugs to cancer cells efficiently. The nanodevices will be assembled through a novel approach based on the precise manipulation of liquid flows at micrometer scale.
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会议论文
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依托单位:
海外基金