Multipurpose targeted nano-antibiotic therapy to fight tough infection in bones
Multipurpose targeted nano-antibiotic therapy to fight tough infection in bones
批准号:
9788269
负责人:
Ho-Lun Wong
金额:
$39.63万
依托单位国家:
美国
项目类别:
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-09-20 至 2023-08-31
关键词:
AdherenceAdultAdverse effectsAffectAffinityAgeAnimal ModelAntibiotic ResistanceAntibiotic TherapyAntibioticsAttentionBacteriaBacterial InfectionsBindingBiodistributionBlood VesselsBone DiseasesBone SurfaceBone TissueBrain DiseasesChildChronicChronic DiseaseCommunicable DiseasesDataDebridementDeformityDevicesDiseaseDoseDose-LimitingDrug Delivery SystemsDrug ExposureDrug KineticsDrug toxicityEngineeringEnvironmentExposure toFaceFormulationGenerationsGoalsHybridsImplantIn VitroInfectionInflammatoryInjectableInjectionsLeadLearningLinezolidMalignant NeoplasmsMicrobial BiofilmsModelingMorbidity - disease rateMyelosuppressionNanotechnologyNatureNecrosisNormal tissue morphologyOperative Surgical ProceduresOralOrganOsteoblastsOsteomyelitisPainPatientsPenetrationPerformancePharmaceutical PreparationsPharmacologyPharmacotherapyPoriferaPrevalencePreventive careProceduresPropertyPublic HealthRecurrenceResistance developmentRifampinRiskRouteSafetySiteSpottingsTherapeuticTimeToxic effectTraumatic injuryTreatment CostTreatment FailureTreatment-related toxicityVancomycin ResistanceVancomycin resistant enterococcusbasebisphosphonatebonebone cellcontrolled releasecostdrug distributiondrug resistant bacteriaeffective therapyfightingimprovedin vivoindividualized medicinemethicillin resistant Staphylococcus aureusmillimeternanonanocarriernanodevicenanomedicinenanoparticlenanosystemsnanotherapyoptimal treatmentsprototyperesistance mechanismresistant strainscreeningsystemic toxicitytherapy outcome
中文摘要
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英文摘要
PROJECT SUMMARY/ABSTRACT
Description. Our goal is to develop a multi-purpose nanotherapy tailored for osteomyelitis caused by biofilm-
forming, drug-resistant bacteria that tend to reside inside osteoblasts. Osteomyelitis frequently persists or
recurs despite several weeks of aggressive antibiotic therapy. Treatment failure is often caused by drug delivery
related issues such as inadequate intra-bone levels of antibiotics, difficulty in eradicating biofilm-forming
bacterial strains especially methicillin-resistant Staphylococcus aureus (MRSA) that require much higher
therapeutic antibiotic levels, and manifestation of dose-limiting drug toxicity associated with excessive drug
distribution to non-bone tissues. This set of inter-related issues can be simultaneously tackled with our bone-
targeting hybrid nanocarriers (BTNs). BTNs are tailored to deliver new generation antibiotics such as linezolid
and rifampin in a bone-specific and controlled manner. Our preliminary studies of the BTN prototype
demonstrated that this new nanosystem could substantially bind, distribute and penetrate to various bones
both in vitro and in vivo after direct exposure, local injection or systemic injection, and achieve controlled
release of the linezolid payload for several days. This led to over 8-fold increase in linezolid intra-bone level
versus free linezolid and significantly improved efficacy in eradicating MRSA biofilms. In this application, we
will focus on further exploring this advanced nano-antibiotic therapy and enhancing its translational potential
as a versatile treatment that can deal with different osteomyelitis conditions by serving as a systemic or local
injectable form. Specifically, we will (1) study the parameters of linezolid-BTN for optimal treatment of drug-
resistant bacteria that cause osteomyelitis, (2) determine the bone-targeting and pharmacokinetic properties of
locally or systemically administered linezolid-BTNs, and (3) evaluate the therapeutic outcomes and toxicity of
linezolid-BTNs in osteomyelitis models.
Relevance to Public Health. Bone infection, frequently known as osteomyelitis, occurs to both children and
adults especially after traumatic injuries. Currently, up to one third of post-traumatic patients face the risk of
osteomyelitis. This is one of the most difficult and costly-to-treat infections as weeks or months of aggressive
antibiotic therapy is required to slowly eradicate the bacteria hidden in the infected bone tissue and bone cells.
Without effective treatment, osteomyelitis can easily persist and become a chronic disease and cause painful,
debilitating morbidity to the patients. Successful completion of this project will validate and optimize a new
nanotechnology that can substantially increase the selectivity of antibiotics for the bones, prolong their
therapeutic action there and minimize the drug levels in the healthy, non-bone tissues. Consequently, a
significant advance in the efficacy and safety of antibiotic treatment of this challenging disease can be achieved.
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Multipurpose targeted nano-antibiotic therapy to fight tough infection in bones
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批准号:10237901
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项目类别:
-
资助金额:$39.63万
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财政年份:2018
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负责人:Ho-Lun Wong
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依托单位:
Multipurpose targeted nano-antibiotic therapy to fight tough infection in bones
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批准号:10459360
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项目类别:
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资助金额:$39.63万
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财政年份:2018
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负责人:Ho-Lun Wong
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依托单位:
Hybrid nanotechnology to target metastatic advanced prostate cancer
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批准号:8895860
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项目类别:
-
资助金额:$31.75万
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财政年份:2012
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负责人:Ho-Lun Wong
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依托单位:
Hybrid nanotechnology to target metastatic advanced prostate cancer
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批准号:8686603
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项目类别:
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资助金额:$30.8万
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财政年份:2012
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负责人:Ho-Lun Wong
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依托单位:
Hybrid nanotechnology to target metastatic advanced prostate cancer
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批准号:8536249
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项目类别:
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资助金额:$29.84万
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财政年份:2012
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负责人:Ho-Lun Wong
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依托单位:
海外基金