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DESCRIPTION (provided by applicant): Protein-induced DNA distortion is essential for many normal cellular functions, including aspects of gene regulation, expression, recombination, and chromatin organization. DNA distortion is an energetically costly process that is intimately linked to the affinity and function of the protein-DNA complexes. A quantitative understanding of the energetics of protein-induced distortion lags far behind the level of structural information currently available. To a large extent, this derives from the difficulty of controlling DNA distortion and bending as experimental variables in complexes where both calorimetric and structural data are obtainable. The hyper-thermostable Sac7d-DNA complex is uniquely suited to serve as a model benchmark system for quantitative studies of the energetics of DNA bending and unwinding due to minor groove binding. In this proposal, we focus on the fact that it is possible to experimentally manipulate the level of DNA distortion in Sac7d-DNA complexes where structural changes and energetics can be followed. The goal is to define the distortion induced in DNA by Sac7d in solution, and to correlate direct measures of distortion with the energetics of the protein-DNA interaction. We will use fluorescence resonance energy transfer, DNA cyclization, NMR, and calorimetry to systematically investigate the role of specific amino acid residues, as well as the influence of DNA sequence and length on protein-induced distortion and binding energetics. In addition, we will investigate the influence of cellular conditions, including salt concentration, specific counter-ions, and osmolarity, on the magnitude of distortion and the associated energetics of binding and bending. This will provide the first direct structural and calorimetric measure of the linkage of DNA distortion to the energetics of protein-DNA binding. This is a basic research project which will provide a description of the energetics of an important type of DNA interaction that occurs in many disease-related protein-DNA complexes. Sac7d is a chromo-domain, a fold common in eukaryotic nuclear proteins that is also found in the DNA-binding domain of HIV-1 integrase. The protein binds to DNA via mechanisms similar to those observed in proteins with direct biomedical relevance. The results will enhance our ability to rationally control related protein-DNA binding interactions that are potential targets in pharmacology and therapeutics.
期刊论文(11)
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Calorimetric analyses of hyperthermophile proteins.
超嗜热蛋白的量热分析。
DOI: 10.1016/s0076-6879(01)34483-x
发表时间: 2001
期刊: Methods in enzymology
影响因子: --
作者: [Shriver,JW, Peters,WB, Szary,N, Clark,AT, Edmondson,SP]
通讯作者: Edmondson,SP
DNA binding proteins Sac7d and Sso7d from Sulfolobus.
来自硫化叶菌的 DNA 结合蛋白 Sac7d 和 Sso7d。
DOI: 10.1016/s0076-6879(01)34463-4
发表时间: 2001
期刊: Methods in enzymology
影响因子: --
作者: [Edmondson,SP, Shriver,JW]
通讯作者: Shriver,JW
The acid-induced folded state of Sac7d is the native state.
Sac7d 的酸诱导折叠状态是天然状态。
DOI: 10.1110/ps.9.10.1878
发表时间: 2000
期刊: Protein science : a publication of the Protein Society
影响因子: --
作者: [Bedell,JL, McCrary,BS, Edmondson,SP, Shriver,JW]
通讯作者: Shriver,JW
Cloning, expression, crystallization and preliminary X-ray analysis of the DNA-binding protein Sso10a from Sulfolobus solfataricus.
硫磺硫化叶菌 DNA 结合蛋白 Sso10a 的克隆、表达、结晶和初步 X 射线分析。
DOI: 10.1107/s090744490301062x
发表时间: 2003
期刊: Acta crystallographica. Section D, Biological crystallography
影响因子: --
作者: [Teale,MJ, Kahsai,M, Singh,SK, Edmondson,SP, Gupta,R, Shriver,JW, Meehan,E]
通讯作者: Meehan,E
6
    Control of Bacterial Nucleoid Structure
    Control of Bacterial Nucleoid Structure
    STRUCTURE/STABILITY OF AN EXTREME THERMOPHILE PROTEIN
    Energetics of Protein-DNA Binding and Bending
    海外基金