An order-to-disorder structural switch activates the FoxM1 transcription factor

Intrinsically disordered transcription factor transactivation domains (TADs) function through structural plasticity, adopting ordered conformations when bound to transcriptional co-regulators. Many transcription factors contain a negative regulatory domain (NRD) that suppresses recruitment of transc...

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Bibliographic Details
Main Authors: Aimee H Marceau, Caileen M Brison, Santrupti Nerli, Heather E Arsenault, Andrew C McShan, Eefei Chen, Hsiau-Wei Lee, Jennifer A Benanti, Nikolaos G Sgourakis, Seth M Rubin
Format: Article
Language:English
Published: eLife Sciences Publications Ltd 2019-05-01
Series:eLife
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Online Access:https://elifesciences.org/articles/46131
Description
Summary:Intrinsically disordered transcription factor transactivation domains (TADs) function through structural plasticity, adopting ordered conformations when bound to transcriptional co-regulators. Many transcription factors contain a negative regulatory domain (NRD) that suppresses recruitment of transcriptional machinery through autoregulation of the TAD. We report the solution structure of an autoinhibited NRD-TAD complex within FoxM1, a critical activator of mitotic gene expression. We observe that while both the FoxM1 NRD and TAD are primarily intrinsically disordered domains, they associate and adopt a structured conformation. We identify how Plk1 and Cdk kinases cooperate to phosphorylate FoxM1, which releases the TAD into a disordered conformation that then associates with the TAZ2 or KIX domains of the transcriptional co-activator CBP. Our results support a mechanism of FoxM1 regulation in which the TAD undergoes switching between disordered and different ordered structures.
ISSN:2050-084X