Multimodality Self-Assembling and Disassembling Nanoparticles
Multimodality Self-Assembling and Disassembling Nanoparticles
批准号:
8961573
负责人:
Jianghong Rao
金额:
$25.94万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2015
资助国家:
美国
项目状态:
已结题
起止时间:
2015-09-04 至 2020-07-31
关键词:
Active Biological TransportAddressAftercareAnimalsApoptosisApoptoticBiocompatibleBiotechnologyCCNE1 geneCancer CenterCancer ModelCell LineCellsCessation of lifeChemistryChemotherapy-Oncologic ProcedureClinicClinicalContrast MediaDetectionDiagnosticEarly DiagnosisEngineeringEnzyme ActivationEnzymesEvaluationFluorescenceFolic AcidFundingGlucoseGoalsHealthHomingHumanImageImaging technologyIn SituIn VitroInjection of therapeutic agentJournalsLabelLegal patentLengthLifeLigandsLocationLung NeoplasmsMagnetic Resonance ImagingMagnetismMalignant NeoplasmsMalignant neoplasm of lungMasksModificationMolecular TargetMolecular WeightMonitorNanostructuresNanotechnologyNatureOpticsOutcomeOxidation-ReductionPaperPatientsPenetrationPeptidesPerformancePhysical condensationPositron-Emission TomographyPropertyPublishingRadioisotopesReactionResearch Project GrantsReticuloendothelial SystemSensitivity and SpecificitySignal TransductionSiteStructure of parenchyma of lungTechnologyTestingTimeTissuesToxic effectTracerTransgenic OrganismsTranslatingTranslationsTumor TissueValidationWorkbasecancer cellcancer imagingcaspase-3chemotherapycontrast imagingdesignenzyme activityfluorescence imagingimaging modalityimaging probeimprovedin vivomeetingsmolecular assembly/self assemblymolecular imagingmultimodalitynanoengineeringnanomachinenanoparticleneoplastic cellnovelnovel strategiespersonalized medicinepre-clinicalpreventreceptorreceptor mediated endocytosisresponsescaffoldself assemblysmall moleculesuccesstumortumor eradicationtumor xenograftuptakeworking group
中文摘要
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英文摘要
Project Summary
Nanoparticles offer great promise for imaging cancer and improving patient outcomes, with applications
ranging from early diagnosis to early monitoring of tumor response to therapy. However, there are a number of
challenges in translating nanoparticle-based contrast agents to clinical cancer imaging that do not apply to
small molecule agents, most notably non-target effects and resultant tissue toxicity. We have redesigned the
strategy of utilizing nanoparticles for cancer imaging from the bottom-up, avoiding the limitations of
nanoparticles while harnessing their great promise: we can build nanoparticles on-demand in tumor tissue with
specially engineered self-assembling small molecules. These small molecules are masked by capping groups
that prevent their self-assembly until acted upon by a target endogenous enzyme, so that upon specific
unmasking they form nanoparticles in the immediate enzyme vicinity. By tagging the small molecules with a
radionuclide like 18F, the location and amounts of these aggregates can be detected through PET imaging. In
this way, masked probe will be rapidly cleared from the body, where self-assembled nanoparticles will be
retained for longer periods of time to signal target enzyme activity. By targeting caspase-3, an enzyme
activated by effective cancer chemotherapy that results in the death of the tumor cell and eradication of the
tumor, we can effectively detect non-invasively where the tumor is dying and early after treatment. In this
project, we will be utilizing this novel strategy of controlled in situ self-assembly to monitor the response of lung
cancer to chemotherapy, however with two key modifications to the performance of the probe. Firstly, we will
endeavor to enhance the amount of masked small molecule probe that reaches the tumor cells through the
attachment of tumor homing groups. We will explore receptor-mediated endocytosis through folate targeting,
active transport through glucose targeting, and translocation through a tumor-specific cell penetration peptide
independent of receptors or transporters. We hypothesize that the more small molecules reach the tumor, the
higher our sensitivity will be for detecting therapy-induced tumor death. Secondly, we will limit the length of
time the self-assembled nanoparticles reside in dying tumor tissue by building controlled-degradation chemistry
into the small molecule. By inducing the nanoparticles to disassemble into small molecule units in a controlled
fashion after imaging has been performed, tissue toxicity associated with extended nanoparticle retention that
could otherwise limit clinical translation will be avoided. In building on our controlled self-assembly strategy to
improve sensitivity and limit any toxic potential, we endeavor to move our imaging technology to the clinic,
providing a means for personalized therapy selection and early monitoring to ultimately improve human health
outcomes.
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依托单位:
Copper-depleting nanotheranostics for treating triple negative breast cancer
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资助金额:$52.49万
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依托单位:
Copper-depleting nanotheranostics for treating triple negative breast cancer
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Nanoparticle-Based Triple Modality Imaging and Photothermal Therapy of Brain Tumors
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Nanoprobes for imaging RONS and drug-induced hepatotoxicity
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资助金额:$34.96万
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财政年份:2013
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依托单位:
Nanoprobes for imaging RONS and drug-induced hepatotoxicity
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批准号:8872170
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项目类别:
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资助金额:$3.34万
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财政年份:2013
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依托单位:
Nanoprobes for imaging RONS and drug-induced hepatotoxicity
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批准号:8882414
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项目类别:
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资助金额:$34.97万
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财政年份:2013
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负责人:Jianghong Rao
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依托单位:
Nanoprobes for imaging RONS and drug-induced hepatotoxicity
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批准号:8734418
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项目类别:
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资助金额:$34.96万
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财政年份:2013
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依托单位:
Nanotechnology for Multiplex Detection of Enzymes
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财政年份:2011
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依托单位:
Nanotechnology for Multiplex Detection of Enzymes
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财政年份:2011
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负责人:Jianghong Rao
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依托单位:
Nanotechnology for Multiplex Detection of Enzymes
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项目类别:
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Development of Enzyme-Activated PET and MRI Probes for Cancer Imaging
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财政年份:2010
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QD-BRET nanosensors for protease detection and imaging
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依托单位:
海外基金