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通过化学交联和串联质谱揭示的Akt激活过程中的结构域间构象变化

Interdomain conformational changes in Akt activation revealed by chemical cross-linking and tandem mass spectrometry.

作者信息

Huang Bill X, Kim Hee-Yong

机构信息

Section of Mass Spectrometry, Laboratory of Membrane Biophysics and Biochemistry, NIAAA, National Institutes of Health, Bethesda, Maryland 20892-9410, USA.

出版信息

Mol Cell Proteomics. 2006 Jun;5(6):1045-53. doi: 10.1074/mcp.M600026-MCP200. Epub 2006 Mar 9.

Abstract

Akt, a serine/threonine kinase, plays a critical role in cell survival. Upon growth factor receptor stimulation, cytosolic Akt is recruited to the plasma membrane by phospholipid binding and activated through phosphorylation at Thr(308) and Ser(473). Although crystal structures for the parts of Akt have been reported, neither the three-dimensional structure of the whole molecule nor sequential conformational changes during activation have been demonstrated. In this study, we demonstrated that Akt undergoes dramatic interdomain conformational changes during activation processes by probing the three-dimensional structure of full-length Akt in solution using chemical cross-linking and tandem mass spectrometry. The cross-linking results not only provided new structural information but also revealed distinctive spatial arrangements of individual domains in the Akt molecule in resting, membrane-interacted, phosphorylated, and substrate-bound states. Our data allowed a new model for stepwise interdomain conformational changes in Akt activation sequence, setting a stage for the further investigation on Akt-membrane, Akt-protein, and/or Akt-drug interactions in solution to understand molecular mechanisms involved in physiological and pathophysiological processes of cell survival.

摘要

Akt是一种丝氨酸/苏氨酸激酶,在细胞存活中起关键作用。在生长因子受体受到刺激时,胞质Akt通过磷脂结合被募集到质膜,并通过苏氨酸(308)和丝氨酸(473)的磷酸化而被激活。尽管已经报道了Akt部分区域的晶体结构,但整个分子的三维结构以及激活过程中的序列构象变化均未得到证实。在本研究中,我们通过使用化学交联和串联质谱法探测溶液中全长Akt的三维结构,证明了Akt在激活过程中经历了显著的结构域间构象变化。交联结果不仅提供了新的结构信息,还揭示了Akt分子在静息、膜相互作用、磷酸化和底物结合状态下各个结构域独特的空间排列。我们的数据为Akt激活序列中结构域间逐步构象变化提供了一个新模型,为进一步研究溶液中Akt与膜、Akt与蛋白和/或Akt与药物的相互作用奠定了基础,以了解细胞存活的生理和病理生理过程中涉及的分子机制。

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