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Family-wide Structural and Biophysical Analysis of Binding Interactions among Non-clustered δ-Protocadherins

Non-clustered δ1- and δ2-protocadherins, close relatives of clustered protocadherins, function in cell adhesion and motility and play essential roles in neural patterning. To understand the molecular interactions underlying these functions, we used solution biophysics to characterize binding of δ1-...

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Autores principales: Harrison, Oliver J., Brasch, Julia, Katsamba, Phinikoula S., Ahlsen, Goran, Noble, Alex J., Dan, Hanbin, Sampogna, Rosemary V., Potter, Clinton S., Carragher, Bridget, Honig, Barry, Shapiro, Lawrence
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7082078/
https://www.ncbi.nlm.nih.gov/pubmed/32101743
http://dx.doi.org/10.1016/j.celrep.2020.02.003
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author Harrison, Oliver J.
Brasch, Julia
Katsamba, Phinikoula S.
Ahlsen, Goran
Noble, Alex J.
Dan, Hanbin
Sampogna, Rosemary V.
Potter, Clinton S.
Carragher, Bridget
Honig, Barry
Shapiro, Lawrence
author_facet Harrison, Oliver J.
Brasch, Julia
Katsamba, Phinikoula S.
Ahlsen, Goran
Noble, Alex J.
Dan, Hanbin
Sampogna, Rosemary V.
Potter, Clinton S.
Carragher, Bridget
Honig, Barry
Shapiro, Lawrence
author_sort Harrison, Oliver J.
collection PubMed
description Non-clustered δ1- and δ2-protocadherins, close relatives of clustered protocadherins, function in cell adhesion and motility and play essential roles in neural patterning. To understand the molecular interactions underlying these functions, we used solution biophysics to characterize binding of δ1- and δ2-protocadherins, determined crystal structures of ectodomain complexes from each family, and assessed ectodomain assembly in reconstituted intermembrane junctions by cryoelectron tomography (cryo-ET). Homophilic trans (cell–cell) interactions were preferred for all δ-protocadherins, with additional weaker heterophilic interactions observed exclusively within each subfamily. As expected, δ1- and δ2-protocadherin trans dimers formed through antiparallel EC1–EC4 interfaces, like clustered protocadherins. However, no ectodomain-mediated cis (same-cell) interactions were detectable in solution; consistent with this, cryo-ET of reconstituted junctions revealed dense assemblies lacking the characteristic order observed for clustered protocadherins. Our results define non-clustered protocadherin binding properties and their structural basis, providing a foundation for interpreting their functional roles in neural patterning.
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spelling pubmed-70820782020-03-19 Family-wide Structural and Biophysical Analysis of Binding Interactions among Non-clustered δ-Protocadherins Harrison, Oliver J. Brasch, Julia Katsamba, Phinikoula S. Ahlsen, Goran Noble, Alex J. Dan, Hanbin Sampogna, Rosemary V. Potter, Clinton S. Carragher, Bridget Honig, Barry Shapiro, Lawrence Cell Rep Article Non-clustered δ1- and δ2-protocadherins, close relatives of clustered protocadherins, function in cell adhesion and motility and play essential roles in neural patterning. To understand the molecular interactions underlying these functions, we used solution biophysics to characterize binding of δ1- and δ2-protocadherins, determined crystal structures of ectodomain complexes from each family, and assessed ectodomain assembly in reconstituted intermembrane junctions by cryoelectron tomography (cryo-ET). Homophilic trans (cell–cell) interactions were preferred for all δ-protocadherins, with additional weaker heterophilic interactions observed exclusively within each subfamily. As expected, δ1- and δ2-protocadherin trans dimers formed through antiparallel EC1–EC4 interfaces, like clustered protocadherins. However, no ectodomain-mediated cis (same-cell) interactions were detectable in solution; consistent with this, cryo-ET of reconstituted junctions revealed dense assemblies lacking the characteristic order observed for clustered protocadherins. Our results define non-clustered protocadherin binding properties and their structural basis, providing a foundation for interpreting their functional roles in neural patterning. 2020-02-25 /pmc/articles/PMC7082078/ /pubmed/32101743 http://dx.doi.org/10.1016/j.celrep.2020.02.003 Text en This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Harrison, Oliver J.
Brasch, Julia
Katsamba, Phinikoula S.
Ahlsen, Goran
Noble, Alex J.
Dan, Hanbin
Sampogna, Rosemary V.
Potter, Clinton S.
Carragher, Bridget
Honig, Barry
Shapiro, Lawrence
Family-wide Structural and Biophysical Analysis of Binding Interactions among Non-clustered δ-Protocadherins
title Family-wide Structural and Biophysical Analysis of Binding Interactions among Non-clustered δ-Protocadherins
title_full Family-wide Structural and Biophysical Analysis of Binding Interactions among Non-clustered δ-Protocadherins
title_fullStr Family-wide Structural and Biophysical Analysis of Binding Interactions among Non-clustered δ-Protocadherins
title_full_unstemmed Family-wide Structural and Biophysical Analysis of Binding Interactions among Non-clustered δ-Protocadherins
title_short Family-wide Structural and Biophysical Analysis of Binding Interactions among Non-clustered δ-Protocadherins
title_sort family-wide structural and biophysical analysis of binding interactions among non-clustered δ-protocadherins
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7082078/
https://www.ncbi.nlm.nih.gov/pubmed/32101743
http://dx.doi.org/10.1016/j.celrep.2020.02.003
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