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序列特异性蛋白质-DNA结合的能量学:整合酶Tn916与其靶DNA的结合

Energetics of sequence-specific protein-DNA association: binding of integrase Tn916 to its target DNA.

作者信息

Milev Stoyan, Gorfe Alemayehu A, Karshikoff Andrey, Clubb Robert T, Bosshard Hans Rudolf, Jelesarov Ilian

机构信息

Institute of Biochemistry, University of Zürich, Winterthurerstrasse 190m Room 44 L42, CH-8057 Zürich, Switzerland.

出版信息

Biochemistry. 2003 Apr 1;42(12):3481-91. doi: 10.1021/bi0269355.

Abstract

The DNA binding domain of the transposon Tn916 integrase (INT-DBD) binds to its DNA target site by positioning the face of a three-stranded antiparallel beta-sheet within the major groove. Binding of INT-DBD to a 13 base pair duplex DNA target site was studied by isothermal titration calorimetry, differential scanning calorimetry, thermal melting followed by circular dichroism spectroscopy, and fluorescence spectroscopy. The observed heat capacity change accompanying the association reaction (DeltaC(p)) is temperature-dependent, decreasing from -1.4 kJ K(-1) mol(-1) at 4 degrees C to -2.9 kJ K(-1) mol(-1) at 30 degrees C. The reason is that the partial molar heat capacities of the free protein, the free DNA duplex, and the protein-DNA complex are not changing in parallel when the temperature increases and that thermal motions of the protein and the DNA are restricted in the complex. After correction for this effect, DeltaC(p) is -1.8 kJ K(-1) mol(-1) and temperature-independent. However, this value is still higher than DeltaC(p) of -1.2 kJ K(-1) mol(-1) estimated by semiempirical methods from dehydration of surface area buried at the complex interface. We propose that the discrepancy between the measured and the structure-based prediction of binding energetics is caused by incomplete dehydration of polar groups in the complex. In support, we identify cavities at the interface that are large enough to accommodate approximately 10 water molecules. Our results highlight the difficulties of structure-based prediction of DeltaC(p) (and other thermodynamic parameters) and emphasize how important it is to consider changes of thermal motions and soft vibrational modi in protein-DNA association reactions. This requires not only a detailed investigation of the energetics of the complex but also of the folding thermodynamics of the protein and the DNA alone, which are described in the accompanying paper [Milev et al. (2003) Biochemistry 42, 3492-3502].

摘要

转座子Tn916整合酶的DNA结合结构域(INT-DBD)通过将一个三链反平行β-折叠的表面定位在大沟内,与它的DNA靶位点结合。通过等温滴定量热法、差示扫描量热法、热变性后圆二色光谱法和荧光光谱法研究了INT-DBD与一个13碱基对双链DNA靶位点的结合。观察到的伴随缔合反应的热容变化(ΔC(p))与温度有关,从4℃时的-1.4 kJ K(-1) mol(-1) 降至30℃时的-2.9 kJ K(-1) mol(-1)。原因是当温度升高时,游离蛋白质、游离DNA双链体和蛋白质-DNA复合物的偏摩尔热容并非平行变化,并且蛋白质和DNA的热运动在复合物中受到限制。校正此效应后,ΔC(p)为-1.8 kJ K(-1) mol(-1)且与温度无关。然而,该值仍高于通过半经验方法根据复合物界面处埋藏表面积的脱水情况估算的-1.2 kJ K(-1) mol(-1)的ΔC(p)。我们提出,结合能的测量值与基于结构的预测值之间的差异是由复合物中极性基团脱水不完全所致。作为支持,我们在界面处识别出了足够大以容纳约10个水分子的空穴。我们的结果突出了基于结构预测ΔC(p)(以及其他热力学参数)的困难,并强调了在蛋白质-DNA缔合反应中考虑热运动变化和软振动模式的重要性。这不仅需要对复合物的能量学进行详细研究,还需要对蛋白质和DNA单独的折叠热力学进行研究,这在随附的论文[Milev等人(2003年)《生物化学》42卷,3492 - 3502页]中有描述。

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