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apo-FtsH 的晶体结构揭示了底物展开和易位所需的结构域运动。

The crystal structure of apo-FtsH reveals domain movements necessary for substrate unfolding and translocation.

机构信息

Department of Chemistry and Biochemistry, University of Bern, Freiestrasse 3, CH-3012 Bern, Switzerland.

出版信息

Proc Natl Acad Sci U S A. 2009 Dec 22;106(51):21579-84. doi: 10.1073/pnas.0910708106. Epub 2009 Dec 2.

Abstract

The hexameric membrane-spanning ATP-dependent metalloprotease FtsH is universally conserved in eubacteria, mitochondria, and chloroplasts, where it fulfills key functions in quality control and signaling. As a member of the self-compartmentalizing ATPases associated with various cellular activities (AAA+ proteases), FtsH converts the chemical energy stored in ATP via conformational rearrangements into a mechanical force that is used for substrate unfolding and translocation into the proteolytic chamber. The crystal structure of the ADP state of Thermotoga maritima FtsH showed a hexameric assembly consisting of a 6-fold symmetric protease disk and a 2-fold symmetric AAA ring. The 2.6 A resolution structure of the cytosolic region of apo-FtsH presented here reveals a new arrangement where the ATPase ring shows perfect 6-fold symmetry with the crucial pore residues lining an open circular entrance. Triggered by this conformational change, a substrate-binding edge beta strand appears within the proteolytic domain. Comparison of the apo- and ADP-bound structure visualizes an inward movement of the aromatic pore residues and generates a model of substrate translocation by AAA+ proteases. Furthermore, we demonstrate that mutation of a conserved glycine in the linker region inactivates FtsH.

摘要

六聚体跨膜 ATP 依赖型金属蛋白酶 FtsH 在真细菌、线粒体和叶绿体中普遍保守,在那里它在质量控制和信号转导中发挥关键作用。作为与各种细胞活动相关的自我分隔 ATP 酶(AAA+蛋白酶)的成员,FtsH 通过构象重排将储存在 ATP 中的化学能转化为机械力,用于底物展开和易位到蛋白酶腔中。Thermotoga maritima FtsH 的 ADP 状态的晶体结构显示了一个由 6 倍对称蛋白酶盘和 2 倍对称 AAA 环组成的六聚体组装。这里呈现的 apo-FtsH 胞质区域的 2.6 A 分辨率结构揭示了一种新的排列,其中 ATP 酶环与排列在开放圆形入口处的关键孔残基具有完美的 6 倍对称性。这种构象变化触发了底物结合边缘 β 链出现在蛋白酶结构域内。apo 和 ADP 结合结构的比较可视化了芳香族孔残基的向内运动,并生成了 AAA+蛋白酶介导的底物易位模型。此外,我们证明了连接区中保守甘氨酸的突变会使 FtsH 失活。

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