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盘基网柄菌肌球蛋白运动结构域的MgADP、MgATPγS和MgAMPPNP复合物的X射线结构。

X-ray structures of the MgADP, MgATPgammaS, and MgAMPPNP complexes of the Dictyostelium discoideum myosin motor domain.

作者信息

Gulick A M, Bauer C B, Thoden J B, Rayment I

机构信息

Institute for Enzyme Research and Department of Biochemistry, University of Wisconsin, Madison, Wisconsin 53705, USA.

出版信息

Biochemistry. 1997 Sep 30;36(39):11619-28. doi: 10.1021/bi9712596.

Abstract

The three-dimensional structures of the truncated myosin head from Dictyostelium discoideum myosin II (S1dC) complexed with MgAMPPNP, MgATPgammaS, and MgADP are reported at 2.1, 1.9, and 2.1 A resolution, respectively. Crystals were obtained by cocrystallization and were isomorphous with respect to those of S1dC. MgADP.BeFx [Fisher, A. J., et al. (1995) Biochemistry 34, 8960-8972]. In all three structures, the electron density for the entire nucleotide was clearly discernible. The overall structures of all three complexes are very similar to that of the beryllium fluoride complex which suggests that the differences in the physiological effects of ATPgammaS and AMPPNP are due to the changes in the equilibrium between the actin-bound and actin-free states of myosin caused by the lower affinity of AMPPNP for myosin. In S1dC.MgAMPPNP, the presence of the bridging nitrogen prompts the side chain of Asn233 to rotate which disrupts the hydrogen bonding pattern in the nucleotide binding pocket and alters the water structure surrounding the ribose hydroxyl groups. It appears that this change is responsible for the reduced affinity of AMPPNP for myosin relative to ATPgammaS. In contrast to the G-proteins, there is no major change in the conformation of the ligands that coordinate the nucleotide in S1dC.MgADP. This is due to three water molecules that adopt the approximate positions of the three oxygens on the gamma-phosphate and maintain the interactions with the Mg2+ ion and protein molecule. Interestingly, the thiophosphate group is evident in S1dC.MgATPgammaS even though it is slowly hydrolyzed by myosin. This suggests that the conformation observed here and in chicken skeletal myosin subfragment-1 [Rayment, I., et al. (1993) Science 261, 50-58] is unable to hydrolyze ATP and represents the structure of the prehydrolysis weak binding state of myosin.

摘要

分别报道了盘基网柄菌肌球蛋白II(S1dC)截短肌球蛋白头部与MgAMPPNP、MgATPγS和MgADP复合时在2.1埃、1.9埃和2.1埃分辨率下的三维结构。晶体通过共结晶获得,并且与S1dC的晶体同晶型。MgADP·BeFx [费舍尔,A. J.等人(1995年)《生物化学》34卷,8960 - 8972页]。在所有这三种结构中,整个核苷酸的电子密度清晰可辨。所有这三种复合物的总体结构与氟化铍复合物的结构非常相似,这表明ATPγS和AMPPNP生理效应的差异是由于AMPPNP对肌球蛋白亲和力较低导致肌球蛋白与肌动蛋白结合态和游离态之间平衡的变化。在S1dC·MgAMPPNP中,桥连氮的存在促使Asn233的侧链旋转,这破坏了核苷酸结合口袋中的氢键模式并改变了核糖羟基周围的水结构。看来这种变化是AMPPNP相对于ATPγS对肌球蛋白亲和力降低的原因。与G蛋白相反,在S1dC·MgADP中配位核苷酸的配体构象没有重大变化。这是由于三个水分子占据了γ - 磷酸上三个氧的大致位置,并维持了与Mg2 +离子和蛋白质分子的相互作用。有趣的是,硫代磷酸基团在S1dC·MgATPγS中很明显,尽管它被肌球蛋白缓慢水解。这表明在此处观察到的构象以及鸡骨骼肌肌球蛋白亚片段 - 1 [雷蒙特,I.等人(1993年)《科学》261卷,50 - 58页]中观察到的构象无法水解ATP,代表了肌球蛋白预水解弱结合态的结构。

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