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Rotational symmetry of the structured Chip/LDB-SSDP core module of the Wnt enhanceosome

The Chip/LIM-domain binding protein (LDB)–single-stranded DNA-binding protein (SSDP) (ChiLS) complex controls numerous cell-fate decisions in animal cells, by mediating transcription of developmental control genes via remote enhancers. ChiLS is recruited to these enhancers by lineage-specific LIM-do...

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Autores principales: Renko, Miha, Fiedler, Marc, Rutherford, Trevor J., Schaefer, Jonas V., Plückthun, Andreas, Bienz, Mariann
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6800368/
https://www.ncbi.nlm.nih.gov/pubmed/31570581
http://dx.doi.org/10.1073/pnas.1912705116
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author Renko, Miha
Fiedler, Marc
Rutherford, Trevor J.
Schaefer, Jonas V.
Plückthun, Andreas
Bienz, Mariann
author_facet Renko, Miha
Fiedler, Marc
Rutherford, Trevor J.
Schaefer, Jonas V.
Plückthun, Andreas
Bienz, Mariann
author_sort Renko, Miha
collection PubMed
description The Chip/LIM-domain binding protein (LDB)–single-stranded DNA-binding protein (SSDP) (ChiLS) complex controls numerous cell-fate decisions in animal cells, by mediating transcription of developmental control genes via remote enhancers. ChiLS is recruited to these enhancers by lineage-specific LIM-domain proteins that bind to its Chip/LDB subunit. ChiLS recently emerged as the core module of the Wnt enhanceosome, a multiprotein complex that primes developmental control genes for timely Wnt responses. ChiLS binds to NPFxD motifs within Pygopus (Pygo) and the Osa/ARID1A subunit of the BAF chromatin remodeling complex, which could synergize with LIM proteins in tethering ChiLS to enhancers. Chip/LDB and SSDP both contain N-terminal dimerization domains that constitute the bulk of their structured cores. Here, we report the crystal structures of these dimerization domains, in part aided by DARPin chaperones. We conducted systematic surface scanning by structure-designed mutations, followed by in vitro and in vivo binding assays, to determine conserved surface residues required for binding between Chip/LDB, SSDP, and Pygo-NPFxD. Based on this, and on the 4:2 (SSDP-Chip/LDB) stoichiometry of ChiLS, we derive a highly constrained structural model for this complex, which adopts a rotationally symmetrical SSDP(2)-LDB(2)-SSDP(2) architecture. Integrity of ChiLS is essential for Pygo binding, and our mutational analysis places the NPFxD pockets on either side of the Chip/LDB dimer, each flanked by an SSDP dimer. The symmetry and multivalency of ChiLS underpin its function as an enhancer module integrating Wnt signals with lineage-specific factors to operate context-dependent transcriptional switches that are pivotal for normal development and cancer.
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spelling pubmed-68003682019-10-24 Rotational symmetry of the structured Chip/LDB-SSDP core module of the Wnt enhanceosome Renko, Miha Fiedler, Marc Rutherford, Trevor J. Schaefer, Jonas V. Plückthun, Andreas Bienz, Mariann Proc Natl Acad Sci U S A Biological Sciences The Chip/LIM-domain binding protein (LDB)–single-stranded DNA-binding protein (SSDP) (ChiLS) complex controls numerous cell-fate decisions in animal cells, by mediating transcription of developmental control genes via remote enhancers. ChiLS is recruited to these enhancers by lineage-specific LIM-domain proteins that bind to its Chip/LDB subunit. ChiLS recently emerged as the core module of the Wnt enhanceosome, a multiprotein complex that primes developmental control genes for timely Wnt responses. ChiLS binds to NPFxD motifs within Pygopus (Pygo) and the Osa/ARID1A subunit of the BAF chromatin remodeling complex, which could synergize with LIM proteins in tethering ChiLS to enhancers. Chip/LDB and SSDP both contain N-terminal dimerization domains that constitute the bulk of their structured cores. Here, we report the crystal structures of these dimerization domains, in part aided by DARPin chaperones. We conducted systematic surface scanning by structure-designed mutations, followed by in vitro and in vivo binding assays, to determine conserved surface residues required for binding between Chip/LDB, SSDP, and Pygo-NPFxD. Based on this, and on the 4:2 (SSDP-Chip/LDB) stoichiometry of ChiLS, we derive a highly constrained structural model for this complex, which adopts a rotationally symmetrical SSDP(2)-LDB(2)-SSDP(2) architecture. Integrity of ChiLS is essential for Pygo binding, and our mutational analysis places the NPFxD pockets on either side of the Chip/LDB dimer, each flanked by an SSDP dimer. The symmetry and multivalency of ChiLS underpin its function as an enhancer module integrating Wnt signals with lineage-specific factors to operate context-dependent transcriptional switches that are pivotal for normal development and cancer. National Academy of Sciences 2019-10-15 2019-09-30 /pmc/articles/PMC6800368/ /pubmed/31570581 http://dx.doi.org/10.1073/pnas.1912705116 Text en Copyright © 2019 the Author(s). Published by PNAS. http://creativecommons.org/licenses/by/4.0/ https://creativecommons.org/licenses/by/4.0/This open access article is distributed under Creative Commons Attribution License 4.0 (CC BY) (http://creativecommons.org/licenses/by/4.0/) .
spellingShingle Biological Sciences
Renko, Miha
Fiedler, Marc
Rutherford, Trevor J.
Schaefer, Jonas V.
Plückthun, Andreas
Bienz, Mariann
Rotational symmetry of the structured Chip/LDB-SSDP core module of the Wnt enhanceosome
title Rotational symmetry of the structured Chip/LDB-SSDP core module of the Wnt enhanceosome
title_full Rotational symmetry of the structured Chip/LDB-SSDP core module of the Wnt enhanceosome
title_fullStr Rotational symmetry of the structured Chip/LDB-SSDP core module of the Wnt enhanceosome
title_full_unstemmed Rotational symmetry of the structured Chip/LDB-SSDP core module of the Wnt enhanceosome
title_short Rotational symmetry of the structured Chip/LDB-SSDP core module of the Wnt enhanceosome
title_sort rotational symmetry of the structured chip/ldb-ssdp core module of the wnt enhanceosome
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6800368/
https://www.ncbi.nlm.nih.gov/pubmed/31570581
http://dx.doi.org/10.1073/pnas.1912705116
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