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Reduction of oligomer size modulates the competition between cluster formation and phase separation of the tumor suppressor SPOP

Phase separation is a ubiquitous process that compartmentalizes many cellular pathways. Given that the same interactions that drive phase separation mediate the formation of complexes below the saturation concentration, the contribution of condensates vs complexes to function is not always clear. He...

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Autores principales: Sabri, Nafiseh, Cuneo, Matthew J., Marzahn, Melissa R., Lee, Jihun, Bouchard, Jill J., Vaithiyalingam, Sivaraja, Borgia, Madeleine B., Schmit, Jeremy, Mittag, Tanja
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10054981/
https://www.ncbi.nlm.nih.gov/pubmed/36993550
http://dx.doi.org/10.1101/2023.02.11.528154
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author Sabri, Nafiseh
Cuneo, Matthew J.
Marzahn, Melissa R.
Lee, Jihun
Bouchard, Jill J.
Vaithiyalingam, Sivaraja
Borgia, Madeleine B.
Schmit, Jeremy
Mittag, Tanja
author_facet Sabri, Nafiseh
Cuneo, Matthew J.
Marzahn, Melissa R.
Lee, Jihun
Bouchard, Jill J.
Vaithiyalingam, Sivaraja
Borgia, Madeleine B.
Schmit, Jeremy
Mittag, Tanja
author_sort Sabri, Nafiseh
collection PubMed
description Phase separation is a ubiquitous process that compartmentalizes many cellular pathways. Given that the same interactions that drive phase separation mediate the formation of complexes below the saturation concentration, the contribution of condensates vs complexes to function is not always clear. Here, we characterized several new cancer-associated mutations of the tumor suppressor Speckle-type POZ protein (SPOP), a substrate recognition subunit of the Cullin3-RING ubiquitin ligase (CRL3), which pointed to a strategy for generating separation-of-function mutations. SPOP self-associates into linear oligomers and interacts with multivalent substrates, and this mediates the formation of condensates. These condensates bear the hallmarks of enzymatic ubiquitination activity. We characterized the effect of mutations in the dimerization domains of SPOP on its linear oligomerization, binding to the substrate DAXX, and phase separation with DAXX. We showed that the mutations reduce SPOP oligomerization and shift the size distribution of SPOP oligomers to smaller sizes. The mutations therefore reduce the binding affinity to DAXX, but enhance the poly-ubiquitination activity of SPOP towards DAXX. This unexpectedly enhanced activity may be explained by enhanced phase separation of DAXX with the SPOP mutants. Our results provide a comparative assessment of the functional role of clusters versus condensates and support a model in which phase separation is an important factor in SPOP function. Our findings also suggest that tuning of linear SPOP self-association could be used by the cell to modulate its activity, and provide insights into the mechanisms underlying hypermorphic SPOP mutations. The characteristics of these cancer-associated SPOP mutations suggest a route for designing separation-of-function mutations in other phase-separating systems.
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spelling pubmed-100549812023-03-30 Reduction of oligomer size modulates the competition between cluster formation and phase separation of the tumor suppressor SPOP Sabri, Nafiseh Cuneo, Matthew J. Marzahn, Melissa R. Lee, Jihun Bouchard, Jill J. Vaithiyalingam, Sivaraja Borgia, Madeleine B. Schmit, Jeremy Mittag, Tanja bioRxiv Article Phase separation is a ubiquitous process that compartmentalizes many cellular pathways. Given that the same interactions that drive phase separation mediate the formation of complexes below the saturation concentration, the contribution of condensates vs complexes to function is not always clear. Here, we characterized several new cancer-associated mutations of the tumor suppressor Speckle-type POZ protein (SPOP), a substrate recognition subunit of the Cullin3-RING ubiquitin ligase (CRL3), which pointed to a strategy for generating separation-of-function mutations. SPOP self-associates into linear oligomers and interacts with multivalent substrates, and this mediates the formation of condensates. These condensates bear the hallmarks of enzymatic ubiquitination activity. We characterized the effect of mutations in the dimerization domains of SPOP on its linear oligomerization, binding to the substrate DAXX, and phase separation with DAXX. We showed that the mutations reduce SPOP oligomerization and shift the size distribution of SPOP oligomers to smaller sizes. The mutations therefore reduce the binding affinity to DAXX, but enhance the poly-ubiquitination activity of SPOP towards DAXX. This unexpectedly enhanced activity may be explained by enhanced phase separation of DAXX with the SPOP mutants. Our results provide a comparative assessment of the functional role of clusters versus condensates and support a model in which phase separation is an important factor in SPOP function. Our findings also suggest that tuning of linear SPOP self-association could be used by the cell to modulate its activity, and provide insights into the mechanisms underlying hypermorphic SPOP mutations. The characteristics of these cancer-associated SPOP mutations suggest a route for designing separation-of-function mutations in other phase-separating systems. Cold Spring Harbor Laboratory 2023-03-21 /pmc/articles/PMC10054981/ /pubmed/36993550 http://dx.doi.org/10.1101/2023.02.11.528154 Text en https://creativecommons.org/licenses/by-nc-nd/4.0/This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (https://creativecommons.org/licenses/by-nc-nd/4.0/) , which allows reusers to copy and distribute the material in any medium or format in unadapted form only, for noncommercial purposes only, and only so long as attribution is given to the creator.
spellingShingle Article
Sabri, Nafiseh
Cuneo, Matthew J.
Marzahn, Melissa R.
Lee, Jihun
Bouchard, Jill J.
Vaithiyalingam, Sivaraja
Borgia, Madeleine B.
Schmit, Jeremy
Mittag, Tanja
Reduction of oligomer size modulates the competition between cluster formation and phase separation of the tumor suppressor SPOP
title Reduction of oligomer size modulates the competition between cluster formation and phase separation of the tumor suppressor SPOP
title_full Reduction of oligomer size modulates the competition between cluster formation and phase separation of the tumor suppressor SPOP
title_fullStr Reduction of oligomer size modulates the competition between cluster formation and phase separation of the tumor suppressor SPOP
title_full_unstemmed Reduction of oligomer size modulates the competition between cluster formation and phase separation of the tumor suppressor SPOP
title_short Reduction of oligomer size modulates the competition between cluster formation and phase separation of the tumor suppressor SPOP
title_sort reduction of oligomer size modulates the competition between cluster formation and phase separation of the tumor suppressor spop
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10054981/
https://www.ncbi.nlm.nih.gov/pubmed/36993550
http://dx.doi.org/10.1101/2023.02.11.528154
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