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大肠杆菌主要复制解旋酶DnaB蛋白与复制叉相互作用中的链特异性

Strand specificity in the interactions of Escherichia coli primary replicative helicase DnaB protein with a replication fork.

作者信息

Jezewska M J, Rajendran S, Bujalowski W

机构信息

Department of Human Biological Chemistry and Genetics, The University of Texas Medical Branch at Galveston, 301 University Boulevard, Galveston, Texas 77555-1053, USA.

出版信息

Biochemistry. 1997 Aug 19;36(33):10320-6. doi: 10.1021/bi970712a.

Abstract

The interactions of the Escherichia coli primary replicative helicase DnaB protein, with synthetic DNA replication fork substrates, having either a single arm or both arms, have been studied using the thermodynamically rigorous fluorescence titration techniques. This approach allows us to obtain absolute stoichiometries of the formed complexes and interaction parameters without any assumptions about the relationship between the observed signal (fluorescence) and the degree of binding. Subsequently, the formation of the complexes, with different replication fork substrates, has also been characterized using the sedimentation velocity technique. To our knowledge, this is the first quantitative characterization of interactions of a hexameric helicase with replication fork substrates. In the presence of the ATP nonhydrolyzable analog, AMP-PNP, the E. coli DnaB helicase preferentially binds to the 5' arm of the single-arm fork substrate with an intrinsic affinity 6-fold higher than its affinity for the 3' arm. ATP hydrolysis is not necessary for formation of the helicase-fork complex. The asymmetric interactions are consistent with the 5' --> 3' directionality of the helicase activity of the DnaB protein and most probably reflects a preferential 5' --> 3' polarity in the helicase binding to ssDNA, with respect to the ssDNA backbone. The double-stranded part of the fork contributes little to the free energy of binding. The data indicate a rather passive role of the duplex part of the fork in the binding of the helicase. This role seems to be limited to impose steric hindrance in the formation of nonproductive complexes of the enzyme with the fork. Quantitative analysis of binding of the helicase to the two-arm fork substrate shows that two DnaB hexamers can bind to the fork, with each single hexamer associated with a single arm of the fork. In this complex, the intrinsic affinity of the DnaB hexamer for the 5' arm in a two-arm fork is not affected by the presence of the 3' arm. Moreover, the results show that the 3' arm is in a conformation which makes it easily available for the binding of the next DnaB hexamer. Because of the large size of the DnaB hexamer, the data indicate that the 3' arm is separated from the 5' arm. The separation of both arms must be to such an extent that the 3' arm can bind an additional large DnaB hexamer. These results reveal that the 3' arm is not engaged in thermodynamically stable interactions with the helicase hexamer, when it is bound in its stationary complex to the 5' arm of the fork. The significance of the these results for a mechanistic model of the hexameric DnaB helicase action is discussed.

摘要

利用热力学严谨的荧光滴定技术,研究了大肠杆菌主要复制解旋酶DnaB蛋白与具有单臂或双臂的合成DNA复制叉底物之间的相互作用。这种方法使我们能够获得所形成复合物的绝对化学计量和相互作用参数,而无需对观察到的信号(荧光)与结合程度之间的关系做任何假设。随后,还使用沉降速度技术对不同复制叉底物形成的复合物进行了表征。据我们所知,这是首次对六聚体解旋酶与复制叉底物之间的相互作用进行定量表征。在存在ATP不可水解类似物AMP-PNP的情况下,大肠杆菌DnaB解旋酶优先结合单臂叉底物的5'臂,其内在亲和力比其对3'臂的亲和力高6倍。ATP水解对于解旋酶-叉复合物的形成不是必需的。这种不对称相互作用与DnaB蛋白解旋酶活性的5'→3'方向性一致,很可能反映了解旋酶与ssDNA结合时相对于ssDNA主链的优先5'→3'极性。叉的双链部分对结合自由能贡献很小。数据表明叉的双链部分在解旋酶结合中起相当被动的作用。这种作用似乎仅限于在酶与叉形成非生产性复合物时造成空间位阻。对解旋酶与双臂叉底物结合的定量分析表明,两个DnaB六聚体可以结合到叉上,每个单个六聚体与叉的一个臂相关联。在这个复合物中,DnaB六聚体对双臂叉中5'臂的内在亲和力不受3'臂存在的影响。此外,结果表明3'臂处于一种构象,使其易于与下一个DnaB六聚体结合。由于DnaB六聚体的尺寸较大,数据表明3'臂与5'臂是分开的。两个臂的分离程度必须使得3'臂能够结合另一个大的DnaB六聚体。这些结果表明,当3'臂以其稳定复合物形式结合到叉的5'臂上时,它与解旋酶六聚体没有热力学稳定的相互作用。讨论了这些结果对六聚体DnaB解旋酶作用机制模型的意义。

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