Nanomedicine Center for Nucleoprotein Machines
Nanomedicine Center for Nucleoprotein Machines
批准号:
8725160
负责人:
Gang Bao
金额:
$66.22万
依托单位国家:
美国
项目类别:
财政年份:
2006
资助国家:
美国
项目状态:
已结题
起止时间:
2006-09-30 至 2015-02-28
关键词:
AllelesApoptosisBiologicalBiological FactorsBiological ProcessCell divisionCellsCellular biologyComplementComputational BiologyCryoelectron MicroscopyDNADNA DamageDNA Double Strand BreakDNA RepairDevelopmentDimensionsDiseaseDouble Strand Break RepairEnvironmental Risk FactorEnzymesFilamentFluorescenceFoundationsGene RearrangementGeneticGenetic TranscriptionHealthHematopoietic SystemHumanHuman GenomeImage AnalysisIncidenceIndividualInstitutionLesionLifeMalignant NeoplasmsMeasuresMembrane ProteinsMetabolicMethodologyMethodsModelingModificationMolecularMolecular BiologyMusNanotechnologyNucleoproteinsPathway interactionsPhenotypePremature aging syndromeProductionProteinsQuantum DotsRNAReactionRepair ComplexResolutionSignal TransductionSiteStem cellsStructureStructure-Activity RelationshipVaccinationVisionZinc Fingersbasecell fixingcellular imagingclinically relevantdesignengineering designgene correctionhuman diseaseinnovationinstrumentationlight microscopymouse modelnanomachinenanomedicinenanostructurednovel strategiesnovel therapeuticsnucleasepre-clinicalprotein foldingreconstitutionrepairedtooluser-friendly
中文摘要
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英文摘要
Nucleoprotein machines carry out essential biological processes including synthesis, modification, and repair
of DNA and RNA. We propose to establish a nanomedicine development center (NDC) focusing on a model
nanomachine that carries out nonhomologous end joining (NHEJ) of DNA double strand breaks. This and
other DNA repair machines have relatively simple structures (< 20 components) and significant biological
and clinical relevance. DNA damage repair is vitally important to human health, as both normal metabolic
activities and environmental factors can cause DNA damage, resulting in as many as 100,000 individual
molecular lesions per cell per day. If allowed to accumulate without repair, these lesions interfere with gene
transcription and replication, leading to premature aging, apoptosis, or unregulated cell division. We have
assembled an interdisciplinary team from eight institutions, with significant expertise in cell and molecular
biology of DNA damage repair, protein tagging and targeting, nanostructured probes, cryo-electron
microscopy, signal-cell imaging, quantitative image analysis and computational biology, and light microscopy
instrumentation. We will develop innovative nanotechnologies and biomolecular approaches to elucidate the
structure-function relationships within and among DNA repair nanomachines. General principles emerging
from these studies will lay a foundation for precise modification of the information stored in DNA and RNA,
leading ultimately to novel therapeutic strategies for a wide range of diseases, including cancer. The NDC
has five closely related aims including: (1) to develop orthogonal protein tagging strategies and novel
fluorescence probes including quantum dot bioconjugates for nanomachine targeting; (2) to decipher
structure-function relationship of components required for the core NHEJ reaction; (3) to characterize the
dynamics of nanomachine assembly and disassembly in the context of repair foci; (4) to determine the
dimensions and structure of repair foci at high resolution in fixed cells; (5) to establish the engineering design
principles underlying DNA double-strand break repair. This NDC will complement existing NDCs that focus
on filaments, membranes and protein folding enzymes, and the probes, tools and methodologies developed
will be applicable to a wide range of biological and disease studies. Our long-term vision is to provide genetic
cures for common human diseases based on the ability to manipulate the somatic human genome using
nanomedicine approaches that are inexpensive, effective, and user-friendly, similar to vaccination today.
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依托单位:
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