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A glutamate switch controls voltage-sensitive phosphatase function.


ABSTRACT: The Ciona intestinalis voltage-sensing phosphatase (Ci-VSP) couples a voltage-sensing domain (VSD) to a lipid phosphatase that is similar to the tumor suppressor PTEN. How the VSD controls enzyme function has been unclear. Here, we present high-resolution crystal structures of the Ci-VSP enzymatic domain that reveal conformational changes in a crucial loop, termed the 'gating loop', that controls access to the active site by a mechanism in which residue Glu411 directly competes with substrate. Structure-based mutations that restrict gating loop conformation impair catalytic function and demonstrate that Glu411 also contributes to substrate selectivity. Structure-guided mutations further define an interaction between the gating loop and linker that connects the phosphatase to the VSD for voltage control of enzyme activity. Together, the data suggest that functional coupling between the gating loop and the linker forms the heart of the regulatory mechanism that controls voltage-dependent enzyme activation.

SUBMITTER: Liu L 

PROVIDER: S-EPMC3529583 | biostudies-literature | 2012 May

REPOSITORIES: biostudies-literature

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A glutamate switch controls voltage-sensitive phosphatase function.

Liu Lijun L   Kohout Susy C SC   Xu Qiang Q   Müller Simone S   Kimberlin Christopher R CR   Isacoff Ehud Y EY   Minor Daniel L DL  

Nature structural & molecular biology 20120506 6


The Ciona intestinalis voltage-sensing phosphatase (Ci-VSP) couples a voltage-sensing domain (VSD) to a lipid phosphatase that is similar to the tumor suppressor PTEN. How the VSD controls enzyme function has been unclear. Here, we present high-resolution crystal structures of the Ci-VSP enzymatic domain that reveal conformational changes in a crucial loop, termed the 'gating loop', that controls access to the active site by a mechanism in which residue Glu411 directly competes with substrate. S  ...[more]

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