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Structural and functional analysis of Dickkopf 4 (Dkk4): New insights into Dkk evolution and regulation of Wnt signaling by Dkk and Kremen proteins

Dickkopf (Dkk) family proteins are important regulators of Wnt signaling pathways, which play key roles in many essential biological processes. Here, we report the first detailed structural and dynamics study of a full-length mature Dkk protein (Dkk4, residues 19–224), including determination of the...

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Autores principales: Patel, Saleha, Barkell, Alice M., Gupta, Deepti, Strong, Sarah L., Bruton, Shaun, Muskett, Frederick W., Addis, Philip W., Renshaw, Philip S., Slocombe, Patrick M., Doyle, Carl, Clargo, Alison, Taylor, Richard J., Prosser, Christine E., Henry, Alistair J., Robinson, Martyn K., Waters, Lorna C., Holdsworth, Gill, Carr, Mark D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6078440/
https://www.ncbi.nlm.nih.gov/pubmed/29925589
http://dx.doi.org/10.1074/jbc.RA118.002918
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author Patel, Saleha
Barkell, Alice M.
Gupta, Deepti
Strong, Sarah L.
Bruton, Shaun
Muskett, Frederick W.
Addis, Philip W.
Renshaw, Philip S.
Slocombe, Patrick M.
Doyle, Carl
Clargo, Alison
Taylor, Richard J.
Prosser, Christine E.
Henry, Alistair J.
Robinson, Martyn K.
Waters, Lorna C.
Holdsworth, Gill
Carr, Mark D.
author_facet Patel, Saleha
Barkell, Alice M.
Gupta, Deepti
Strong, Sarah L.
Bruton, Shaun
Muskett, Frederick W.
Addis, Philip W.
Renshaw, Philip S.
Slocombe, Patrick M.
Doyle, Carl
Clargo, Alison
Taylor, Richard J.
Prosser, Christine E.
Henry, Alistair J.
Robinson, Martyn K.
Waters, Lorna C.
Holdsworth, Gill
Carr, Mark D.
author_sort Patel, Saleha
collection PubMed
description Dickkopf (Dkk) family proteins are important regulators of Wnt signaling pathways, which play key roles in many essential biological processes. Here, we report the first detailed structural and dynamics study of a full-length mature Dkk protein (Dkk4, residues 19–224), including determination of the first atomic-resolution structure for the N-terminal cysteine-rich domain (CRD1) conserved among Dkk proteins. We discovered that CRD1 has significant structural homology to the Dkk C-terminal cysteine-rich domain (CRD2), pointing to multiple gene duplication events during Dkk family evolution. We also show that Dkk4 consists of two independent folded domains (CRD1 and CRD2) joined by a highly flexible, nonstructured linker. Similarly, the N-terminal region preceding CRD1 and containing a highly conserved NXI(R/K) sequence motif was shown to be dynamic and highly flexible. We demonstrate that Dkk4 CRD2 mediates high-affinity binding to both the E1E2 region of low-density lipoprotein receptor–related protein 6 (LRP6 E1E2) and the Kremen1 (Krm1) extracellular domain. In contrast, the N-terminal region alone bound with only moderate affinity to LRP6 E1E2, consistent with binding via the conserved NXI(R/K) motif, but did not interact with Krm proteins. We also confirmed that Dkk and Krm family proteins function synergistically to inhibit Wnt signaling. Insights provided by our integrated structural, dynamics, interaction, and functional studies have allowed us to refine the model of synergistic regulation of Wnt signaling by Dkk proteins. Our results indicate the potential for the formation of a diverse range of ternary complexes comprising Dkk, Krm, and LRP5/6 proteins, allowing fine-tuning of Wnt-dependent signaling.
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spelling pubmed-60784402018-08-07 Structural and functional analysis of Dickkopf 4 (Dkk4): New insights into Dkk evolution and regulation of Wnt signaling by Dkk and Kremen proteins Patel, Saleha Barkell, Alice M. Gupta, Deepti Strong, Sarah L. Bruton, Shaun Muskett, Frederick W. Addis, Philip W. Renshaw, Philip S. Slocombe, Patrick M. Doyle, Carl Clargo, Alison Taylor, Richard J. Prosser, Christine E. Henry, Alistair J. Robinson, Martyn K. Waters, Lorna C. Holdsworth, Gill Carr, Mark D. J Biol Chem Protein Structure and Folding Dickkopf (Dkk) family proteins are important regulators of Wnt signaling pathways, which play key roles in many essential biological processes. Here, we report the first detailed structural and dynamics study of a full-length mature Dkk protein (Dkk4, residues 19–224), including determination of the first atomic-resolution structure for the N-terminal cysteine-rich domain (CRD1) conserved among Dkk proteins. We discovered that CRD1 has significant structural homology to the Dkk C-terminal cysteine-rich domain (CRD2), pointing to multiple gene duplication events during Dkk family evolution. We also show that Dkk4 consists of two independent folded domains (CRD1 and CRD2) joined by a highly flexible, nonstructured linker. Similarly, the N-terminal region preceding CRD1 and containing a highly conserved NXI(R/K) sequence motif was shown to be dynamic and highly flexible. We demonstrate that Dkk4 CRD2 mediates high-affinity binding to both the E1E2 region of low-density lipoprotein receptor–related protein 6 (LRP6 E1E2) and the Kremen1 (Krm1) extracellular domain. In contrast, the N-terminal region alone bound with only moderate affinity to LRP6 E1E2, consistent with binding via the conserved NXI(R/K) motif, but did not interact with Krm proteins. We also confirmed that Dkk and Krm family proteins function synergistically to inhibit Wnt signaling. Insights provided by our integrated structural, dynamics, interaction, and functional studies have allowed us to refine the model of synergistic regulation of Wnt signaling by Dkk proteins. Our results indicate the potential for the formation of a diverse range of ternary complexes comprising Dkk, Krm, and LRP5/6 proteins, allowing fine-tuning of Wnt-dependent signaling. American Society for Biochemistry and Molecular Biology 2018-08-03 2018-06-20 /pmc/articles/PMC6078440/ /pubmed/29925589 http://dx.doi.org/10.1074/jbc.RA118.002918 Text en © 2018 Patel et al. Published under exclusive license by The American Society for Biochemistry and Molecular Biology, Inc. Author's Choice—Final version free via Creative Commons CC-BY license (http://creativecommons.org/licenses/by/4.0) .
spellingShingle Protein Structure and Folding
Patel, Saleha
Barkell, Alice M.
Gupta, Deepti
Strong, Sarah L.
Bruton, Shaun
Muskett, Frederick W.
Addis, Philip W.
Renshaw, Philip S.
Slocombe, Patrick M.
Doyle, Carl
Clargo, Alison
Taylor, Richard J.
Prosser, Christine E.
Henry, Alistair J.
Robinson, Martyn K.
Waters, Lorna C.
Holdsworth, Gill
Carr, Mark D.
Structural and functional analysis of Dickkopf 4 (Dkk4): New insights into Dkk evolution and regulation of Wnt signaling by Dkk and Kremen proteins
title Structural and functional analysis of Dickkopf 4 (Dkk4): New insights into Dkk evolution and regulation of Wnt signaling by Dkk and Kremen proteins
title_full Structural and functional analysis of Dickkopf 4 (Dkk4): New insights into Dkk evolution and regulation of Wnt signaling by Dkk and Kremen proteins
title_fullStr Structural and functional analysis of Dickkopf 4 (Dkk4): New insights into Dkk evolution and regulation of Wnt signaling by Dkk and Kremen proteins
title_full_unstemmed Structural and functional analysis of Dickkopf 4 (Dkk4): New insights into Dkk evolution and regulation of Wnt signaling by Dkk and Kremen proteins
title_short Structural and functional analysis of Dickkopf 4 (Dkk4): New insights into Dkk evolution and regulation of Wnt signaling by Dkk and Kremen proteins
title_sort structural and functional analysis of dickkopf 4 (dkk4): new insights into dkk evolution and regulation of wnt signaling by dkk and kremen proteins
topic Protein Structure and Folding
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6078440/
https://www.ncbi.nlm.nih.gov/pubmed/29925589
http://dx.doi.org/10.1074/jbc.RA118.002918
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