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Ubiquitination-induced conformational change within the deiodinase dimer is a switch regulating enzyme activity.


ABSTRACT: Ubiquitination is a critical posttranslational regulator of protein stability and/or subcellular localization. Here we show that ubiquitination can also regulate proteins by transiently inactivating enzymatic function through conformational change in a dimeric enzyme, which can be reversed upon deubiquitination. Our model system is the thyroid hormone-activating type 2 deiodinase (D2), an endoplasmic reticulum-resident type 1 integral membrane enzyme. D2 exists as a homodimer maintained by interacting surfaces at its transmembrane and globular cytosolic domains. The D2 dimer associates with the Hedgehog-inducible ubiquitin ligase WSB-1, the ubiquitin conjugase UBC-7, and VDU-1, a D2-specific deubiquitinase. Upon binding of T4, its natural substrate, D2 is ubiquitinated, which inactivates the enzyme by interfering with D2's globular interacting surfaces that are critical for dimerization and catalytic activity. This state of transient inactivity and change in dimer conformation persists until deubiquitination. The continuous association of D2 with this regulatory protein complex supports rapid cycles of deiodination, conjugation to ubiquitin, and enzyme reactivation by deubiquitination, allowing tight control of thyroid hormone action.

SUBMITTER: Sagar GD 

PROVIDER: S-EPMC1951476 | biostudies-literature | 2007 Jul

REPOSITORIES: biostudies-literature

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Ubiquitination-induced conformational change within the deiodinase dimer is a switch regulating enzyme activity.

Sagar G D Vivek GD   Gereben Balázs B   Callebaut Isabelle I   Mornon Jean-Paul JP   Zeöld Anikó A   da Silva Wagner S WS   Luongo Cristina C   Dentice Monica M   Tente Susana M SM   Freitas Beatriz C G BC   Harney John W JW   Zavacki Ann Marie AM   Bianco Antonio C AC  

Molecular and cellular biology 20070423 13


Ubiquitination is a critical posttranslational regulator of protein stability and/or subcellular localization. Here we show that ubiquitination can also regulate proteins by transiently inactivating enzymatic function through conformational change in a dimeric enzyme, which can be reversed upon deubiquitination. Our model system is the thyroid hormone-activating type 2 deiodinase (D2), an endoplasmic reticulum-resident type 1 integral membrane enzyme. D2 exists as a homodimer maintained by inter  ...[more]

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