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hMutSα 腺苷三磷酸酶的DNA依赖性激活。

DNA-dependent activation of the hMutSalpha ATPase.

作者信息

Blackwell L J, Bjornson K P, Modrich P

机构信息

Howard Hughes Medical Institute, Duke University Medical Center, Durham, North Carolina 27710, USA.

出版信息

J Biol Chem. 1998 Nov 27;273(48):32049-54. doi: 10.1074/jbc.273.48.32049.

Abstract

ATP hydrolysis by MutS homologs is required for function of these proteins in mismatch repair. However, the function of ATP hydrolysis in the repair reaction is controversial. In this paper we describe a steady-state kinetic analysis of the DNA-activated ATPase of human MutSalpha. Comparison of salt concentration effects on mismatch repair and mismatch-provoked excision in HeLa nuclear extracts with salt effects on the DNA-activated ATPase suggests that ATP hydrolysis by MutSalpha is involved in the rate determining step in the repair pathway. While the ATPase is activated by homoduplex and heteroduplex DNA, the half-maximal concentration for activation by heteroduplex DNA is significantly lower under physiological salt concentrations. Furthermore, at optimal salt concentration, heteroduplex DNA increases the kcat for ATP hydrolysis to a greater extent than does homoduplex DNA. We also demonstrate that the degree of ATPase activation is dependent on DNA chain length, with the kcat for hydrolysis increasing significantly with chain length of the DNA cofactor. These results are discussed in terms of the translocation (Allen, D. J., Makhov, A., Grilley, M., Taylor, J., Thresher, R., Modrich, P., and Griffith, J. D. (1997) EMBO J. 16, 4467-4476) and the molecular switch (Gradia, S., Acharya, S., and Fishel, R. (1997) Cell 91, 995-1005) models that invoke distinct roles for ATP hydrolysis in MutS homolog function.

摘要

MutS同源蛋白发挥错配修复功能需要ATP水解。然而,ATP水解在修复反应中的功能存在争议。在本文中,我们描述了人MutSα的DNA激活ATP酶的稳态动力学分析。比较盐浓度对HeLa细胞核提取物中错配修复和错配引发切除的影响与盐对DNA激活ATP酶的影响,表明MutSα的ATP水解参与了修复途径中的速率决定步骤。虽然ATP酶可被同型双链和异型双链DNA激活,但在生理盐浓度下,异型双链DNA激活的半数最大浓度显著更低。此外,在最佳盐浓度下,异型双链DNA比同型双链DNA更大程度地提高了ATP水解的催化常数(kcat)。我们还证明,ATP酶激活程度取决于DNA链长度,随着DNA辅因子链长度增加,水解的kcat显著增加。本文根据转位模型(Allen, D. J., Makhov, A., Grilley, M., Taylor, J., Thresher, R., Modrich, P., and Griffith, J. D. (1997) EMBO J. 16, 4467 - 4476)和分子开关模型(Gradia, S., Acharya, S., and Fishel, R. (1997) Cell 91, 995 - 1005)对这些结果进行了讨论,这两个模型认为ATP水解在MutS同源蛋白功能中发挥不同作用。

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