Drug-Loaded Nanobubbles for Ultrasound Enhanced Delivery to Colon Cancer Liver Metastasis
Drug-Loaded Nanobubbles for Ultrasound Enhanced Delivery to Colon Cancer Liver Metastasis
批准号:
9764722
负责人:
Agata A Exner
金额:
$51.32万
依托单位国家:
美国
项目类别:
财政年份:
2019
资助国家:
美国
项目状态:
已结题
起止时间:
2019-09-30 至 2024-06-30
关键词:
AddressAdvanced Malignant NeoplasmAntineoplastic AgentsAreaBiodistributionBlood CellsBlood VesselsBreastCaliberCell Culture TechniquesCell WallCell modelCellsChemotherapy-Oncologic ProcedureClinicClinicalColonColon CarcinomaColorectal CancerComplexContrast MediaDataDiagnosisDiseaseDoseDose-LimitingDrug CarriersDrug Delivery SystemsDrug KineticsDrug TransportEffectivenessEngineeringEquipmentEsophagusExcisionExtravasationFormulationFrequenciesGasesGoalsHCT116 CellsHumanHybridsImageImageryIn VitroInjectionsIntestinesIntravenousKidneyLS174T colon cancer cell lineLarge Intestine CarcinomaLeadLipidsLiposomesLiverLungMeasuresMediatingMetastatic Neoplasm to the LiverMicellesMicrobubblesModelingMusNanotechnologyOralOrganOutcomeOutcomes ResearchPancreasPatientsPenetrationPerformancePermeabilityPharmaceutical PreparationsPhysiologic pulsePlayPolymersResearchResearch SupportRoleSignal TransductionSiteSolid NeoplasmStomachSystemTechniquesTechnologyTestingTherapeuticTherapeutic AgentsTimeTissuesToxic effectTransducersTranslatingTreatment EfficacyTreatment outcomeTumor TissueTumor VolumeUltrasonographyUnited StatesVascular blood supplyWorkbasecancer cellcancer diagnosiscell killingchemosensitizing agentchemotherapeutic agentchemotherapyclinically relevantcolon cancer patientscolorectal cancer metastasisdesigndrug distributiondrug efficacyeffective therapyimage-guided drug deliveryimaging propertiesimprovedin vivointerestmelanomametastatic colorectalnanobubblenanoparticleneoplastic cellparticleresponsescale upsuccesssystemic toxicitytheranosticstime usetreatment strategytumortumor growthtumor heterogeneitytumor microenvironmentuptake
中文摘要
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英文摘要
PROJECT SUMMARY
Drug-Loaded Nanobubbles for Ultrasound Enhanced Delivery to Colon Cancer Liver Metastasis
Most advanced cancers can spread to the liver including those of the breast, esophagus, stomach, pancreas,
colon, lungs, kidneys and even melanoma. Liver metastases (also referred to as secondary liver cancer) cannot
be cured in the majority of cases, and most patients presenting with liver metastases will die of the disease. The
problem is most pronounced in colorectal cancer, where nearly 85% of the 150,000 patients diagnosed in the
United States each year will eventually develop metastatic disease in the liver due to the shared blood supply
between the intestine and the liver. Effective treatment options at this stage are severely limited, and most cases
are treated with oral or intravenous chemotherapy. The median survival for patients receiving systemic
chemotherapy is still only 21 months due primarily to low drug uptake in the tumor, serious systemic toxicity and
heterogeneous drug distribution at tumor sites. To meet the urgent need for more effective treatment options for
liver metastases, we plan to develop a hybrid theranostic nanobubble which is inherently ultrasound
visible and ultrasound-deployable on demand in real time at the region of interest. Our exciting preliminary
data demonstrate that even after a single application of ultrasound immediately following particle injection,
ultrasound-triggered delivery leads to significantly higher drug concentration in tumors and results in more
homogeneous distribution within tumor compared to free drug and non-triggered particles. This suggests that,
especially after parameters are optimized, treatment of tumors with the proposed construct has the potential to
maximize drug dose at the tumor site and should lead to improved survival. Within the scope of this project we
thus propose to optimize formulation and treatment parameters essential to the success of this approach. Some
aspects that distinguish our technology from others include 1) nanoparticles used in the study are 100-300 nm
in diameter and yet have strong ultrasound response making them visible at clinically relevant frequencies of 3-
12 MHz; 2) nanoparticles have augmented cargo capacity to enable simple and efficient drug loading directly
into the particle; 3) payload release can be triggered with the imaging transducer using standard pulse sequences
already available on clinical scanners; 4) nanoparticle is self-assembled and thus easily formulated and scaled
up. The project will be carried out in four aims with Aims 1 and 2 being dedicated to in vitro characterization and
optimization of the construct and Aims 3 and 4 evaluating in vivo performance. The ultimate goal of this work
is to develop and optimize an image-guided drug delivery strategy that will maximize drug accumulation
in tumors and lead to augmented, homogeneous drug distribution within the tumor volume while
minimizing systemic accumulation compared to free drug. The outcome of this research will be a more
effective strategy to improve delivery of chemotherapeutic agents to metastatic liver tumors.
Impact: We are confident that the advantages and unique aspects of our nanoparticles will enable successful
completion of this objective. These nanoparticles will overcome the drug transport challenges and will improve
the effectiveness of chemotherapy regimens used in treating secondary liver cancer with ultimate goal to
translate this research to the clinic.
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资助金额:$35.61万
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财政年份:2013
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财政年份:2013
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资助金额:$36.42万
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财政年份:2009
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负责人:Agata A Exner
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依托单位:
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资助金额:$34.23万
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财政年份:2009
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依托单位:
Sensitizer Delivery for Focused Hyperthermia Cancer Treatment
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项目类别:
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资助金额:$36.42万
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财政年份:2009
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负责人:Agata A Exner
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依托单位:
Sensitizer Delivery for Focused Hyperthermia Cancer Treatment
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资助金额:$40.54万
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财政年份:2009
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依托单位:
Functional Polymer Matrixes for Site-Specific, Image Guided Drug Delivery
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依托单位:
Functional Polymer Matrixes for Site-Specific, Image Guided Drug Delivery
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财政年份:2006
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依托单位:
Functional Polymer Matrixes for Site-Specific, Image Guided Drug Delivery
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依托单位:
Functional Polymer Matrixes for Site-Specific, Image Guided Drug Delivery
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财政年份:2006
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依托单位:
Functional Polymer Matrixes for Site-Specific, Image Guided Drug Delivery
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资助金额:$26.63万
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