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PMID: 27220849 Published · ppublish English

Higher-order oligomerization promotes localization of SPOP to liquid nuclear speckles.

The EMBO journal ·Vol. 35 ·No. 12 ·0000-00-00

Marzahn Melissa R, Marada Suresh, Lee Jihun, Nourse Amanda, Kenrick Sophia, Zhao Huaying, Ben-Nissan Gili, Kolaitis Regina-Maria, Peters Jennifer L, Pounds Stanley, Errington Wesley J, Privé Gilbert G, Taylor J Paul, Sharon Michal, Schuck Peter, Ogden Stacey K, Mittag Tanja

Abstract

Membrane-less organelles in cells are large, dynamic protein/protein or protein/RNA assemblies that have been reported in some cases to have liquid droplet properties. However, the molecular interactions underlying the recruitment of components are not well understood. Herein, we study how the ability to form higher-order assemblies influences the recruitment of the speckle-type POZ protein (SPOP) to nuclear speckles. SPOP, a cullin-3-RING ubiquitin ligase (CRL3) substrate adaptor, self-associates into higher-order oligomers; that is, the number of monomers in an oligomer is broadly distributed and can be large. While wild-type SPOP localizes to liquid nuclear speckles, self-association-deficient SPOP mutants have a diffuse distribution in the nucleus. SPOP oligomerizes through its BTB and BACK domains. We show that BTB-mediated SPOP dimers form linear oligomers via BACK domain dimerization, and we determine the concentration-dependent populations of the resulting oligomeric species. Higher-order oligomerization of SPOP stimulates CRL3(SPOP) ubiquitination efficiency for its physiological substrate Gli3, suggesting that nuclear speckles are hotspots of ubiquitination. Dynamic, higher-order protein self-association may be a general mechanism to concentrate functional components in membrane-less cellular bodies.

Keywords
isodesmic self‐association membrane‐less organelle prostate cancer speckle‐type POZ protein ubiquitin ligase
Article Info
Journal
The EMBO journal
Abbr.
EMBO J
Published
0000-00-00
Indexed
2016-06-16
Updated
2016-10-25
Language
English
Country/Region
England
NLM ID
8208664
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