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How clustered protocadherin binding specificity is tuned for neuronal self-/nonself-recognition

The stochastic expression of fewer than 60 clustered protocadherin (cPcdh) isoforms provides diverse identities to individual vertebrate neurons and a molecular basis for self-/nonself-discrimination. cPcdhs form chains mediated by alternating cis and trans interactions between apposed membranes, wh...

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Autores principales: Goodman, Kerry Marie, Katsamba, Phinikoula S, Rubinstein, Rotem, Ahlsén, Göran, Bahna, Fabiana, Mannepalli, Seetha, Dan, Hanbin, Sampogna, Rosemary V, Shapiro, Lawrence, Honig, Barry
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8901172/
https://www.ncbi.nlm.nih.gov/pubmed/35253643
http://dx.doi.org/10.7554/eLife.72416
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author Goodman, Kerry Marie
Katsamba, Phinikoula S
Rubinstein, Rotem
Ahlsén, Göran
Bahna, Fabiana
Mannepalli, Seetha
Dan, Hanbin
Sampogna, Rosemary V
Shapiro, Lawrence
Honig, Barry
author_facet Goodman, Kerry Marie
Katsamba, Phinikoula S
Rubinstein, Rotem
Ahlsén, Göran
Bahna, Fabiana
Mannepalli, Seetha
Dan, Hanbin
Sampogna, Rosemary V
Shapiro, Lawrence
Honig, Barry
author_sort Goodman, Kerry Marie
collection PubMed
description The stochastic expression of fewer than 60 clustered protocadherin (cPcdh) isoforms provides diverse identities to individual vertebrate neurons and a molecular basis for self-/nonself-discrimination. cPcdhs form chains mediated by alternating cis and trans interactions between apposed membranes, which has been suggested to signal self-recognition. Such a mechanism requires that cPcdh cis dimers form promiscuously to generate diverse recognition units, and that trans interactions have precise specificity so that isoform mismatches terminate chain growth. However, the extent to which cPcdh interactions fulfill these requirements has not been definitively demonstrated. Here, we report biophysical experiments showing that cPcdh cis interactions are promiscuous, but with preferences favoring formation of heterologous cis dimers. Trans homophilic interactions are remarkably precise, with no evidence for heterophilic interactions between different isoforms. A new C-type cPcdh crystal structure and mutagenesis data help to explain these observations. Overall, the interaction characteristics we report for cPcdhs help explain their function in neuronal self-/nonself-discrimination.
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spelling pubmed-89011722022-03-08 How clustered protocadherin binding specificity is tuned for neuronal self-/nonself-recognition Goodman, Kerry Marie Katsamba, Phinikoula S Rubinstein, Rotem Ahlsén, Göran Bahna, Fabiana Mannepalli, Seetha Dan, Hanbin Sampogna, Rosemary V Shapiro, Lawrence Honig, Barry eLife Neuroscience The stochastic expression of fewer than 60 clustered protocadherin (cPcdh) isoforms provides diverse identities to individual vertebrate neurons and a molecular basis for self-/nonself-discrimination. cPcdhs form chains mediated by alternating cis and trans interactions between apposed membranes, which has been suggested to signal self-recognition. Such a mechanism requires that cPcdh cis dimers form promiscuously to generate diverse recognition units, and that trans interactions have precise specificity so that isoform mismatches terminate chain growth. However, the extent to which cPcdh interactions fulfill these requirements has not been definitively demonstrated. Here, we report biophysical experiments showing that cPcdh cis interactions are promiscuous, but with preferences favoring formation of heterologous cis dimers. Trans homophilic interactions are remarkably precise, with no evidence for heterophilic interactions between different isoforms. A new C-type cPcdh crystal structure and mutagenesis data help to explain these observations. Overall, the interaction characteristics we report for cPcdhs help explain their function in neuronal self-/nonself-discrimination. eLife Sciences Publications, Ltd 2022-03-07 /pmc/articles/PMC8901172/ /pubmed/35253643 http://dx.doi.org/10.7554/eLife.72416 Text en © 2022, Goodman et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Neuroscience
Goodman, Kerry Marie
Katsamba, Phinikoula S
Rubinstein, Rotem
Ahlsén, Göran
Bahna, Fabiana
Mannepalli, Seetha
Dan, Hanbin
Sampogna, Rosemary V
Shapiro, Lawrence
Honig, Barry
How clustered protocadherin binding specificity is tuned for neuronal self-/nonself-recognition
title How clustered protocadherin binding specificity is tuned for neuronal self-/nonself-recognition
title_full How clustered protocadherin binding specificity is tuned for neuronal self-/nonself-recognition
title_fullStr How clustered protocadherin binding specificity is tuned for neuronal self-/nonself-recognition
title_full_unstemmed How clustered protocadherin binding specificity is tuned for neuronal self-/nonself-recognition
title_short How clustered protocadherin binding specificity is tuned for neuronal self-/nonself-recognition
title_sort how clustered protocadherin binding specificity is tuned for neuronal self-/nonself-recognition
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8901172/
https://www.ncbi.nlm.nih.gov/pubmed/35253643
http://dx.doi.org/10.7554/eLife.72416
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