Biophysical Models for Prediction and Design of Eukaryotic Chromatin Structure an
Biophysical Models for Prediction and Design of Eukaryotic Chromatin Structure an
批准号:
8214664
负责人:
Alexandre V Morozov
金额:
$26.15万
依托单位国家:
美国
项目类别:
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-02-13 至 2014-01-31
关键词:
AffectAffinityAmino AcidsAnimal ModelBase PairingBindingBinding SitesBiological AssayBiological ModelsBiologyBiomedical EngineeringCellsChemical ModelsChromatinChromatin ModelingChromatin StructureCollaborationsComplexDNADNA BindingDNA SequenceDNA-Binding ProteinsData SetDigestionDinucleoside PhosphatesDrug DesignElementsEnvironmentEnzymesEpigenetic ProcessEquilibriumEukaryotaEukaryotic CellExerciseFree EnergyGene ExpressionGene Expression RegulationGeneticGenomeGenomicsGlucoseHeat-Shock ResponseHistonesHormonesIn VitroLarge-Scale SequencingLeftLibrariesLinkLocationMapsMeasuresMechanicsMedicineModelingModificationMotorMutationNucleosomesNucleotidesPathway interactionsPatternPlayPositioning AttributeProductionProteinsProteolysisRelaxationResearchRoleSaccharomyces cerevisiaeScreening procedureShapesStructureTATA BoxTherapeutic AgentsTrainingTranscriptional RegulationTranslatingUniversitiesWorkYeastsbasechromatin remodelingdensitydesignflexibilitygenome-widegenome-wide analysisimprovedin vivoinsightmRNA Transcript Degradationneglectnovelpreferencepromoterpublic health relevancereconstitutionresearch studyresponsesynthetic biologytranscription factor
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): Our long-term objective is to predict how molecular interactions are translated into gene expression in eukaryotic cells. In eukaryotic genomes, transcriptional regulation is strongly affected by nucleosomes which function to compact DNA and to regulate access to it by simple physical occlusion and by providing the substrate for numerous covalent epigenetic tags. We have recently developed a DNA mechanics-based nucleosome model capable of reproducing in vitro free energies of nucleosome formation with high accuracy. We propose to apply this model to predicting nucleosome positions genome-wide, in S.cerevisiae and other model organisms. We will develop descriptions of chromatin structure that incorporate histone octamers competing with other DNA-binding factors for regulatory sequence. Our preliminary results indicate that this competition may be as important for shaping in vivo chromatin structure as intrinsic nucleosome sequence preferences. We will investigate the accuracy of our predictions by exploring the link between nucleosome positions and gene expression in model systems. We propose to construct promoter sequences that incorporate transcription factor binding sites into a computationally designed nucleosome occupancy profile. These constructs will be assayed for levels of gene expression, providing direct insight into the regulatory role played by nucleosomes. In addition, we propose to carry out high-throughput sequencing of nucleosomes reconstituted in vitro on both genomic and chemically synthesized sequences. This data set will allow us to disentangle intrinsic sequence preferences from in vivo effects, and will enable us to improve the purely structure-based DNA mechanics model in a systematic way. Finally, we propose to carry out microarray and large-scale sequencing studies of the dynamic response of chromatin structure to environmental and genetic perturbations. The proposed studies will significantly enhance our understanding of the connection between regulatory DNA sequence, chromatin, and gene expression.
PUBLIC HEALTH RELEVANCE: The ability to predict how chromatin structure affects gene expression will open a novel pathway towards numerous applications in biology and medicine, including rational drug design and new, chromatin-based approaches to rewiring cellular networks. The ability to exercise precise transcriptional control over the amount and the type of proteins produced by the cell through making directed changes in chromatin structure will find many uses in bioengineering and synthetic biology, including production of synthetic hormones, enzymes, and therapeutic agents.
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DOI:
10.1371/journal.pcbi.1003683
发表时间:
2014-07
期刊:
PLoS computational biology
影响因子:
4.3
作者:
[Haldane A, Manhart M, Morozov AV]
通讯作者:
Morozov AV
DOI:
10.1007/s10955-011-0214-y
发表时间:
2011-07-01
期刊:
JOURNAL OF STATISTICAL PHYSICS
影响因子:
1.6
作者:
[Chereji, Razvan V., Morozov, Alexandre V.]
通讯作者:
Morozov, Alexandre V.
Path-based approach to random walks on networks characterizes how proteins evolve new functions.
基于路径的网络随机游走方法描述了蛋白质如何进化新功能。
DOI:
10.1103/physrevlett.111.088102
发表时间:
2013
期刊:
Physical review letters
影响因子:
8.6
作者:
[Manhart,Michael, Morozov,AlexandreV]
通讯作者:
Morozov,AlexandreV
DOI:
10.1021/ct300671y
发表时间:
2013
期刊:
JOURNAL OF CHEMICAL THEORY AND COMPUTATION
影响因子:
5.5
作者:
[Drsata, Tomas, Perez, Alberto, Orozco, Modesto, Morozov, Alexandre V., Sponer, Jiri, Lankas, Filip]
通讯作者:
Lankas, Filip
DOI:
10.1371/journal.pcbi.1002675
发表时间:
2012
期刊:
PLoS computational biology
影响因子:
4.3
作者:
[Haq O, Andrec M, Morozov AV, Levy RM]
通讯作者:
Levy RM
共 9 条
Biophysical Models for Prediction and Design of Eukaryotic Chromatin Structure an
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批准号:7591488
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项目类别:
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资助金额:$26.69万
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财政年份:2009
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负责人:Alexandre V Morozov
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依托单位:
Biophysical Models for Prediction and Design of Eukaryotic Chromatin Structure an
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批准号:8016711
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项目类别:
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资助金额:$26.15万
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财政年份:2009
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负责人:Alexandre V Morozov
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依托单位:
Biophysical Models for Prediction and Design of Eukaryotic Chromatin Structure an
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批准号:7769532
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项目类别:
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资助金额:$26.42万
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财政年份:2009
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负责人:Alexandre V Morozov
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依托单位:
海外基金