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复制起始点和转录调控位点处协同 DNA 识别的热力学。

Thermodynamics of cooperative DNA recognition at a replication origin and transcription regulatory site.

机构信息

Protein Structure-Function and Engineering Laboratory, Fundación Instituto Leloir and IIBBA-Conicet, Patricias Argentinas 435, Buenos Aires, Argentina.

出版信息

Biochemistry. 2010 Dec 7;49(48):10277-86. doi: 10.1021/bi1014908. Epub 2010 Nov 10.

Abstract

Binding cooperativity guides the formation of protein-nucleic acid complexes, in particular those that are highly regulated such as replication origins and transcription sites. Using the DNA binding domain of the origin binding and transcriptional regulator protein E2 from human papillomavirus type 16 as model, and through isothermal titration calorimetry analysis, we determined a positive, entropy-driven cooperativity upon binding of the protein to its cognate tandem double E2 site. This cooperativity is associated with a change in DNA structure, where the overall B conformation is maintained. Two homologous E2 domains, those of HPV18 and HPV11, showed that the enthalpic-entropic components of the reaction and DNA deformation can diverge. Because the DNA binding helix is almost identical in the three domains, the differences must lie dispersed throughout this unique dimeric β-barrel fold. This is in surprising agreement with previous results for this domain, which revealed a strong coupling between global dynamics and DNA recognition.

摘要

结合协同性指导蛋白质-核酸复合物的形成,特别是那些高度调控的复合物,如复制起点和转录位点。使用人乳头瘤病毒 16 型的起源结合和转录调节蛋白 E2 的 DNA 结合域作为模型,并通过等温滴定量热法分析,我们确定了蛋白质与其同源串联双 E2 位点结合时的正协同性,这种协同性与 DNA 结构的变化有关,其中整体 B 构象得以维持。两个同源的 E2 结构域,HPV18 和 HPV11,表明反应和 DNA 变形的焓熵成分可以发散。因为三个结构域中的 DNA 结合螺旋几乎相同,所以差异必须分散在这个独特的二聚体β桶折叠中。这与该结构域的先前结果惊人地一致,该结果揭示了全局动力学与 DNA 识别之间的强耦合。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b0e0/3091369/f29b34afb49f/bi-2010-014908_0005.jpg

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