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Small Molecule Self-Assembly in Aqueos Media

Small Molecule Self-Assembly in Aqueos Media
Aqueos 介质中的小分子自组装
批准号:
7941516
负责人:
Jose M Rivera
金额:
$33.0万
依托单位国家:
美国
项目类别:
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-07-26 至 2014-06-30
关键词:
AchievementAddressAffinityAlzheimer&aposs DiseaseAreaAwardBachelor&aposs DegreeBindingBiochemistryBiologyCationsCell Culture TechniquesCellsCellular biologyChargeChemicalsChemistryComplexComputer AssistedComputersCovalent InteractionCytosineDNADNA BindingDNA StructureDataDevelopmentDiagnosticDiseaseDoctor of PhilosophyEducationEnrollmentEnvironmentEvaluationFacultyFeedbackFluorescence MicroscopyFundingG-QuartetsGenerationsGoalsGrantGuanineHealthHispanic AmericansHispanicsHumanIndividualInstitutionIslandJournalsKineticsKnowledgeLabelLeadLeftLibrariesLifeLigandsMaster&aposs DegreeMathematicsMethodsMinorityMolecularMolecular ModelsNanostructuresNatural SciencesOligonucleotidesOncogenesOrganismPeer ReviewPharmaceutical PreparationsPharmacologyPhysicsPositioning AttributeProcessProductivityPropertyPublicationsPublishingPuerto RicanPuerto RicoRNARecommendationRegulationResearchResearch ActivityResearch PersonnelResourcesRiskRoleScienceSickle Cell AnemiaSolidSourceSpecificityStructureStructure-Activity RelationshipStudentsStudy SectionSystemTechniquesTemperatureTherapeuticThermodynamicsTimeUnited States National Institutes of HealthUniversitiesWaterWomanWorkaqueousbasecareercellular imagingcollegecomputer sciencedisabilityexperiencefallsgraduate studentimprovedinnovationmembermolecular assembly/self assemblymolecular modelingnanomedicinenanosciencenovelnovel diagnosticsnovel therapeuticspreventprogramspublic health relevancequadruplex DNAself assemblysmall moleculesuccesssymposiumtelomerethree dimensional structure

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DESCRIPTION (provided by applicant): At the subcellular level, humans like other organisms build and choreograph the countless structures essential to maintaining a healthy life by the process of self-assembly. Cells are in fact, enormously complex supramolecular entities that employ supramolecular nanoconstruction. Yet, improper self- assembly can also lead to diseases such as Alzheimer's, sickle-cell anaemia, etc. Therefore, mastering molecular self-assembly in aqueous media can lead to great advances in developing novel diagnostics and therapeutics. Supramolecular chemistry offers an attractive strategy for constructing self-made nanostructures by programming the appropriate information in their molecular building blocks. So far, supramolecular chemistry has made significant advances in constructing complex molecular machinery by self-assembly in organic media, but studies in aqueous media have lagged behind. There are still relatively few examples of discrete synthetic supramolecules based on small molecules held together solely with non-covalent interactions. There is a gap in the development of appropriate recognition motifs that are easy to make and offer robust and reliable self-recognition properties in aqueous environments. There is also a gap in the development of efficacious ligands that recognize G-quadruplex DNA (QDNA) with high specificity and affinity. We propose to fill these gaps by making small molecule guanine (G) derivatives (Aim 1) and studying their self-assembly in water (Aim 2). The usefulness of the resulting supramolecules will be highlighted by their use as self-assembled ligands (SALs) for the specific recognition of QDNA (Aim 3). QDNA is the subject of intense studies due to its putative role in telomere function and in the regulation of some oncogenes. The ensuing supramolecules should further our long-term goal of expanding nanomedicine's molecular 'toolbox' by developing better diagnostic probes and therapeutics. PUBLIC HEALTH RELEVANCE: This project will enable the use of small molecules to construct well-defined and discrete self- assembled nanostructures in aqueous environments. These substances have a great potential for the development ligands for quadruplex DNA that could lead to novel therapeutics.
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Small Molecule Self-Assembly in Aqueos Media
Small Molecule Self-Assembly in Aqueos Media
Small Molecule Self-Assembly in Aqueos Media
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