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Nanoparticle microbicides for delivery of combination antiretroviral drugs

Nanoparticle microbicides for delivery of combination antiretroviral drugs
用于递送组合抗逆转录病毒药物的纳米颗粒杀微生物剂
批准号:
8650985
负责人:
Kim A. Woodrow
金额:
$66.43万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-06-14 至 2016-05-31
关键词:
AIDS preventionAccountingAdsorptionAnimal ModelAnti-Retroviral AgentsAntiviral AgentsArchitectureBehaviorBiodistributionBiological AvailabilityBiopsyCCR5 geneCellsChargeChemicalsChemistryClinicalClinical TrialsColposcopyCytologyDataDetergentsDiffuseDiffusionDrug CarriersDrug CombinationsDrug Delivery SystemsDrug FormulationsDrug KineticsDrug or chemical Tissue DistributionDrug resistanceDrug usageEncapsulatedEngineeringEpidemicEpithelialEpitheliumExhibitsFemaleGelGenital systemHIVHIV InfectionsHIV-1Highly Active Antiretroviral TherapyHumanHydrophobicityIn VitroIndividualInfectionLaboratoriesLibrariesLocal MicrobicidesMacacaMacaca nemestrinaMeasuresMethodsModelingMucous MembraneMucous body substanceMusNevirapineOrgan Culture TechniquesOutcomeParticulatePenetrationPharmaceutical PreparationsPhysiologicalPreventionPropertyProphylactic treatmentResearchResistanceRitonavirRouteSafetySaquinavirSexual TransmissionSexually Transmitted DiseasesSolubilitySurfaceSuspension substanceSuspensionsTechniquesTenofovirTimeTissuesTopical applicationToxic effectVaccinesVaginaViralVirusWomanaqueousbasechemical stabilityclinically relevantcontrolled releasecytotoxicitydesigndrug testingefficacy testingefficacy trialempoweredflexibilitygenital secretionin vivoinhibitor/antagonistmicrobicidenanoparticlenanoparticulatenext generationnovelpolyanionpreclinical safetypreventprotective efficacyrectalresidenceresponsesafety studyscreeningsimian human immunodeficiency virussuccesstransmission processvaginal transmission

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PROJECT SUMMARY/ABSTRACT Sexual transmission through the genital tract or rectal mucosa is the most common route for acquiring new HIV infections and accounted for ~70% of the 2.7 million people worldwide who became newly infected in 2007. A cure or effective vaccine that would contain the global spread of this epidemic is not expected in the near term, and new HIV infections continue to outpace advances made in treatment with antiretroviral drugs. There is consequently an urgent need to develop agents that can be applied topically to mucosal surfaces to prevent the sexual transmission of HIV. However, several large-scale clinical trials testing the efficacy of agents that disrupt the integrity of the viral envelope (detergents) or prevent adsorption or fusion of the virus with its target cells (polyanions) have failed to protect against HIV infection. The success of highly active antiretroviral therapy (HAART) provides a paradigm for developing the next generation of microbicides, raising the possibility that a combination of potent and broadly active inhibitors that exhibit multiple and complementary mechanisms of action may be vastly superior to the delivery of single compounds. To fully realize the potential of these potent antiretroviral (ARV) drugs, the challenges of formulating and delivering compounds with markedly different chemical stability and aqueous solubility in a topical combination product must be overcome. This research plan is designed to evaluate nanoparticle-based vaginal drug delivery systems for HIV prevention. The experimental focus is to achieve protection against vaginal transmission of HIV-1 by topical delivery of a combination of antiretroviral drugs using mucus- and tissue-diffusing nanoparticle microbicides. This research would be the first to control the temporal and spatial co-delivery of a combination of antiretroviral agents that have different mechanisms of action against HIV-1 (Aim 1). If successful, our studies would be the first to determine the size range and penetration depth accessible for nanoparticulate drug delivery systems in the vaginal mucosa (Aim 2). Our proposed research will also provide valuable data on the transport, biodistribution, and pharmacokinetics of encapsulated and released antiretroviral agents that are administered topically to the vaginal mucosa using nanoparticle microbicides (Aim 3). Finally, we will conduct preclinical safety and anti-HIV efficacy studies to rapidly advance our nanoparticle-based microbicides to human safety and efficacy trials (Aim 4). The outcomes from our proposed research may highly impact the field of microbicide research for HIV and other sexually-transmitted infections.
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  • 项目类别:
  • 资助金额:
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  • 财政年份:
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海外基金