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变构通过构象转换介导配体与WWOX肿瘤抑制因子的结合。

Allostery mediates ligand binding to WWOX tumor suppressor via a conformational switch.

作者信息

Schuchardt Brett J, Mikles David C, Bhat Vikas, McDonald Caleb B, Sudol Marius, Farooq Amjad

机构信息

Department of Biochemistry and Molecular Biology, Leonard Miller School of Medicine University of Miami, Miami, FL, 33136, USA.

出版信息

J Mol Recognit. 2015 Apr;28(4):220-31. doi: 10.1002/jmr.2419. Epub 2015 Feb 19.

Abstract

While being devoid of the ability to recognize ligands itself, the WW2 domain is believed to aid ligand binding to the WW1 domain in the context of a WW1-WW2 tandem module of WW domain-containing oxidoreductase (WWOX) tumor suppressor. In an effort to test the generality of this hypothesis, we have undertaken here a detailed biophysical analysis of the binding of WW domains of WWOX alone and in the context of the WW1-WW2 tandem module to an array of putative proline-proline-x-tyrosine (PPXY) ligands. Our data show that while the WW1 domain of WWOX binds to all ligands in a physiologically relevant manner, the WW2 domain does not. Moreover, ligand binding to the WW1 domain in the context of the WW1-WW2 tandem module is two-to-three-fold stronger than when treated alone. We also provide evidence that the WW domains within the WW1-WW2 tandem module physically associate so as to adopt a fixed spatial orientation relative to each other. Of particular note is the observation that the physical association of the WW2 domain with WW1 blocks access to ligands. Consequently, ligand binding to the WW1 domain not only results in the displacement of the WW2 lid but also disrupts the physical association of WW domains in the liganded conformation. Taken together, our study underscores a key role of allosteric communication in the ability of the WW2 orphan domain to chaperone physiological action of the WW1 domain within the context of the WW1-WW2 tandem module of WWOX.

摘要

虽然WW2结构域本身缺乏识别配体的能力,但在含WW结构域的氧化还原酶(WWOX)肿瘤抑制因子的WW1-WW2串联模块中,人们认为它有助于配体与WW1结构域结合。为了验证这一假设的普遍性,我们在此对WWOX的WW结构域单独以及在WW1-WW2串联模块中与一系列假定的脯氨酸-脯氨酸-x-酪氨酸(PPXY)配体的结合进行了详细的生物物理分析。我们的数据表明,虽然WWOX的WW1结构域以生理相关的方式与所有配体结合,但WW2结构域却不能。此外,在WW1-WW2串联模块中,配体与WW1结构域的结合比单独处理时强两到三倍。我们还提供证据表明,WW1-WW2串联模块中的WW结构域在物理上相互关联,从而相对于彼此采用固定的空间取向。特别值得注意的是,观察到WW2结构域与WW1的物理关联会阻止配体的进入。因此,配体与WW1结构域的结合不仅导致WW2盖子的位移,而且还破坏了配体构象中WW结构域的物理关联。综上所述,我们的研究强调了变构通讯在WW2孤儿结构域在WWOX的WW1-WW2串联模块中陪伴WW1结构域生理作用能力方面的关键作用。

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