Mikawa T, Masui R, Kuramitsu S
Department of Biology, Graduate School of Science, Osaka University, 1-1 Machikaneyama-cho, Toyonaka, Osaka 560-0043, Japan.
J Biochem. 1998 Mar;123(3):450-7. doi: 10.1093/oxfordjournals.jbchem.a021958.
The single-stranded DNA-dependent ATPase activity of Escherichia coli RecA protein, especially its cooperativity for ATP, was investigated. To measure the ATPase activity in detail, the methods and reaction conditions for the ATPase assay were reexamined. Under conditions where RecA protein always showed a maximal rate of ATP hydrolysis, its poly(dT)-dependent ATPase activity was measured. At 25 degrees C, increasing the concentration of RecA protein from 0.3 to 1.0 microM increased the turnover number (kcat) from 0.16 to 0.19 s-1 and the Hill coefficient (nH) for ATP from 9.3 to 11.6. At 0.5 microM RecA protein, increasing the temperature from 25 to 37 degrees C increased kcat from 0.18 to 0.35 s-1 but decreased nH from 9.8 to 6.6. Interestingly, the ATPase activity of RecA protein measured in this study showed much higher cooperativity for ATP than those reported to date. Furthermore, the nH value of 11.6 for ATP obtained here was the highest of any ATPase reported so far. These results suggest that the binding of an ATP molecule to a RecA molecule within a nucleoprotein helical filament causes structural change of many other neighboring RecA molecules. This implies that ATP binding induces structural change of the whole nucleoprotein helical filament. Finally, we demonstrated that analysis of cooperativity is useful for revealing how a protein composed of many subunits functions as a whole.
对大肠杆菌RecA蛋白的单链DNA依赖性ATP酶活性,尤其是其对ATP的协同性进行了研究。为详细测量ATP酶活性,重新审视了ATP酶测定的方法和反应条件。在RecA蛋白始终表现出最大ATP水解速率的条件下,测定其聚(dT)依赖性ATP酶活性。在25℃时,将RecA蛋白浓度从0.3微摩尔增加到1.0微摩尔,周转数(kcat)从0.16增加到0.19 s-1,ATP的希尔系数(nH)从9.3增加到11.6。在RecA蛋白浓度为0.5微摩尔时,将温度从25℃升高到37℃,kcat从0.18增加到0.35 s-1,但nH从9.8降低到6.6。有趣的是,本研究中测得的RecA蛋白的ATP酶活性对ATP的协同性远高于迄今报道的结果。此外,此处获得的ATP的nH值为11.6,是迄今为止报道的所有ATP酶中最高的。这些结果表明,ATP分子与核蛋白螺旋丝内的RecA分子结合会导致许多其他相邻RecA分子发生结构变化。这意味着ATP结合会诱导整个核蛋白螺旋丝的结构变化。最后,我们证明了协同性分析有助于揭示由多个亚基组成的蛋白质如何整体发挥功能。