DNA - DNA interactions with atomic detail
DNA - DNA interactions with atomic detail
批准号:
8543745
负责人:
Nathan A. Baker
金额:
$31.34万
依托单位国家:
美国
项目类别:
财政年份:
2012
资助国家:
美国
项目状态:
已结题
起止时间:
2012-09-28 至 2016-07-31
关键词:
AddressAgreementAlgorithmsAminesAreaBase SequenceBehaviorBiologyBiotechnologyCellsChargeChemicalsCobaltComputer SimulationConsensusDNADataDependenceDouble-Stranded RNAElectrostaticsEmployee StrikesEnvironmentEpigenetic ProcessFoundationsGene DeliveryGenerationsGeneticGoalsHuman DevelopmentIn VitroIonsLeadLifeMeasurementMediatingMethodsModelingMolecularMorphologic artifactsMotivationNatureNucleic AcidsNucleic acid sequencingPhysical condensationPhysicsPlaguePolyaminesPrecipitationProcessRNARNA InterferenceReportingResistanceResolutionRoentgen RaysRoleSamplingSimulateSolutionsSolventsSpatial DistributionSpectrum AnalysisSpeedSpermidineStressStructureSystemTechniquesTestingTheoretical modelTherapeuticTimeViralWaterWorkbasedriving forcehexaamminecobalt(II)human diseasein vivointerestmodel developmentmolecular dynamicsnon-viral gene deliverynovelnovel strategiesnucleic acid structurephysical propertyplanetary Atmospherepolyionresearch studyretinal rodssimulationsoundtheoriestherapeutic development
中文摘要
描述(由申请人提供):DNA和RNA缩合在生物学和生物技术中具有广泛的意义。这些核酸(NA)的体内包装使得能够有效地存储遗传信息;体外包装的策略对于开发治疗剂是至关重要的,例如,用于非病毒基因传递。DNA双链体之间的类电荷吸引是DNA缩合的基本前体,并且可以由具有明显不同物理性质的多价离子诱导,从球形三价无机离子六胺钴到活细胞中发现的更棒状、更少电荷密度的多胺;例如,精胺和亚精胺。尽管RNA对生物学同样重要,但人们对双链RNA的缩合几乎一无所知。最近发现的RNA干扰(RNAi)过程是确定短RNA双链体是否可以包装用于治疗应用的强烈动机。该提案的广泛目标是开发多价离子-NA双链体相互作用的定量机制,其直接导致离子诱导的DNA或RNA吸引。这种机制将有基础物理学作为基础,但将足够详细,以解决许多实际问题,如核酸凝聚的序列依赖性和实验观察到的RNA与DNA凝聚行为的显着差异。现有的理论模型强调离子相关性对产生这些吸引力的必要性,但在原子水平上描述吸引力的机制还没有达成共识。目前的实验方法本身没有分辨率来提供各种核酸凝聚现象的原子详细图片。为了了解反离子诱导的DNA或RNA双链体之间的吸引力的机制,我们将开发和实验测试一种新的方法来模拟核酸的离子环境,提供必要的分辨率。该方法将集成巨正则蒙特卡罗模拟的基础上新的隐式溶剂/显式离子模型(速度和采样效率)与传统的显式溶剂分子动力学模拟微秒的时间尺度(最高级别的细节)。我们的方法的显着特点是,计算模型将开发与实验紧密结合。多价离子-NA相互作用的预测将通过离子与核酸的缔合和核酸周围的空间分布的实验测量来验证;数据将用于微调模型的参数。小角度X射线散射技术将探测NA双离子大气的结构,而使用紫外光谱的冷凝实验将提供与理论的具体预测进行比较的额外程度。一旦理论和实验之间达成协议,更简单的系统,我们将探讨核酸序列和拓扑结构在凝聚中的作用,并制定一个原子的理解如何生物重要的聚离子精胺和亚精胺促进核酸片段之间的吸引力。
英文摘要
DESCRIPTION (provided by applicant): DNA and RNA condensation is of broad interest in both biology and biotechnology. The in vivo packaging of these nucleic acids (NAs) enables the efficient storage of genetic information; strategies for in vitro packaging are crucial for development of therapeutics, e.g., for non-viral gene delivery. Like-charge attraction between DNA duplexes is an essential precursor of DNA condensation and can be induced by multivalent ions with distinctly different physical properties, ranging from the spherical trivalen inorganic ion, cobalt hexa-amine, through the more rod-like, less charge-dense polyamines found in living cell; e.g., spermine and spermidine. Despite an equal importance of RNA to biology, almost nothing is known about double-stranded RNA condensation. The recent discovery of the RNA interference (RNAi) process is strong motivation for determining whether short RNA duplexes can be packaged for therapeutic applications. The broad goal of this proposal is to develop a quantitative mechanism for multivalent ion-NA duplex interactions that leads directly to ion-induced DNA or RNA attraction. This mechanism will have basic physics at its foundation, yet will be detailed enough to address many practical questions such as sequence dependence of nucleic acid condensation and the striking differences in RNA vs. DNA condensation behavior observed experimentally. Existing theoretical models stress the necessity of ion correlations for generation of these attractive forces, yet no consensus exists describing the mechanism for the attraction at atomic level. Current experimental methods alone do not have the resolution to deliver the atomically detailed picture of the diverse nucleic acid condensation phenomena. To understand the mechanism of counterion-induced attraction between DNA or RNA duplexes, we will develop and experimentally test a new approach to modeling ionic environments of nucleic acids that provides the necessary resolution. The approach will integrate grand canonical Monte Carlo simulations based on novel implicit solvent/explicit ion models (for speed and sampling efficiency) with the traditional explicit solvet molecular dynamics simulations on microsecond time scales (for the highest level of detail). The distinctive feature of our approach is that the computational models will be developed in tight integration with the experiment. Predictions of multivalent ion-NA interactions will be validated by experimental measurement of ion association to and spatial distribution around nucleic acids; the data will be used to fine- tune parameters of the model. Small angle X-ray scattering techniques will probe the structure of NA duplex ionic atmospheres, while condensation experiments using UV spectroscopy will provide additional degrees of comparison with specific predictions of the theory. Once agreement between theory and experiment on simpler systems is reached, we will explore the role of nucleic acid sequence and topology in condensation, and develop an atomistic understanding of how the biologically important polyions spermine and spermidine facilitate attraction between nucleic acid fragments.
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DNA - DNA interactions with atomic detail
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批准号:8708904
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项目类别:
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资助金额:$32.74万
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财政年份:2012
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负责人:Nathan A. Baker
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依托单位:
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APBS: NANOSCALE BIOMOLECULAR ELECTROSTATICS SOFTWARE
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资助金额:$27.23万
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财政年份:2004
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APBS: Nanoscale Biomolecular Electrostatics Software
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资助金额:$25.82万
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APBS: Nanoscale Biomolecular Electrostatics Software
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资助金额:$44.85万
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财政年份:2004
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依托单位:
Development and Porting of APBS: Adaptive Poisson-Boltzmann Solver
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资助金额:$34.08万
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财政年份:--
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负责人:Nathan A. Baker
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依托单位:
海外基金