Goldshleger R, Karlish S J
Department of Biological Chemistry, Weizmann Institute of Science, Rehovot 76100, Israel.
J Biol Chem. 1999 Jun 4;274(23):16213-21. doi: 10.1074/jbc.274.23.16213.
This paper extends our recent report on specific iron-catalyzed oxidative cleavages of renal Na,K-ATPase and effects of E1 left arrow over right arrow E2 conformational transitions (Goldshleger, R. , and Karlish, S. J. D. (1997) Proc. Natl. Acad. Sci. U. S. A. 94, 9596-9601). The experiments indicate that only peptide bonds close to a bound Fe2+ ion are cleaved, and provide evidence on proximity of the different cleavage positions in the native enzyme. A sequence HFIH near trans-membrane segment M3 appears to be involved in Fe2+ binding. Previously we hypothesized that E2 and E1 conformations are characterized by formation or relaxation of interactions within the alpha subunit at or near highly conserved sequences, TGES in the minor cytoplasmic loop and CSDK, MVTGD, and VNDSPALKK in the major cytoplasmic loop. This concept has been tested by examining iron-catalyzed cleavage in both non-phosphorylated and phosphorylated conformations and effects of phosphate, vanadate, and ouabain. The results imply that both E1 left arrow over right arrow E2 and E1P left arrow over right arrow E2P transitions are indeed associated with formation and relaxation of interactions between cytoplasmic domains, comprising the minor loop plus N-terminal tail leading into M1 and major loop, respectively. Furthermore, it appears that either non-covalently or covalently bound phosphate bind near CSDK and MVTGD, and Mg2+ ions may bind to residues within TGES and VNDSPALKK and to bound phosphate. Thus cytoplasmic domain interactions seem to occur within or near the active site. We discuss the relationship between structural changes in the cytoplasmic domain and movements of trans-membrane segments that lead to cation transport. Presumably conformation-dependent formation and relaxation of domain interactions underlie energy transduction in all P-type pumps.
本文扩展了我们最近关于肾钠钾 - ATP酶特定铁催化氧化裂解以及E1⇌E2构象转变影响的报告(Goldshleger,R.和Karlish,S.J.D.(1997年)美国国家科学院院刊94,9596 - 9601)。实验表明,只有靠近结合的Fe2 +离子的肽键会被裂解,并为天然酶中不同裂解位置的接近程度提供了证据。跨膜片段M3附近的序列HFIH似乎参与Fe2 +结合。此前我们假设,E2和E1构象的特征在于α亚基内高度保守序列处或附近相互作用的形成或松弛,在小细胞质环中的TGES以及大细胞质环中的CSDK、MVTGD和VNDSPALKK。通过检查非磷酸化和磷酸化构象中的铁催化裂解以及磷酸盐、钒酸盐和哇巴因的影响,对这一概念进行了测试。结果表明,E1⇌E2和E1P⇌E2P转变确实都与细胞质结构域之间相互作用的形成和松弛有关,这些结构域分别包括小环加上通向M1的N末端尾巴和大环。此外,似乎非共价或共价结合的磷酸盐在CSDK和MVTGD附近结合,Mg2 +离子可能与TGES和VNDSPALKK内的残基以及结合的磷酸盐结合。因此,细胞质结构域相互作用似乎发生在活性位点内或附近。我们讨论了细胞质结构域的结构变化与导致阳离子转运的跨膜片段运动之间的关系。推测结构域相互作用的构象依赖性形成和松弛是所有P型泵能量转导的基础。