Higher order scaffoldin assembly in Ruminococcus flavefaciens cellulosome is coordinated by a discrete cohesin-dockerin interaction

Abstract Cellulosomes are highly sophisticated molecular nanomachines that participate in the deconstruction of complex polysaccharides, notably cellulose and hemicellulose. Cellulosomal assembly is orchestrated by the interaction of enzyme-borne dockerin (Doc) modules to tandem cohesin (Coh) module...

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Main Authors: Pedro Bule, Virgínia M. R. Pires, Victor D. Alves, Ana Luísa Carvalho, José A. M. Prates, Luís M. A. Ferreira, Steven P. Smith, Harry J. Gilbert, Ilit Noach, Edward A. Bayer, Shabir Najmudin, Carlos M. G. A. Fontes
Format: Article
Language:English
Published: Nature Publishing Group 2018-05-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-018-25171-8
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spelling doaj-1a033850155d48b8a516196cee73f64c2020-12-08T04:35:42ZengNature Publishing GroupScientific Reports2045-23222018-05-018111410.1038/s41598-018-25171-8Higher order scaffoldin assembly in Ruminococcus flavefaciens cellulosome is coordinated by a discrete cohesin-dockerin interactionPedro Bule0Virgínia M. R. Pires1Victor D. Alves2Ana Luísa Carvalho3José A. M. Prates4Luís M. A. Ferreira5Steven P. Smith6Harry J. Gilbert7Ilit Noach8Edward A. Bayer9Shabir Najmudin10Carlos M. G. A. Fontes11CIISA – Faculdade de Medicina Veterinária, ULisboa, Pólo Universitário do Alto da Ajuda, Avenida da Universidade TécnicaCIISA – Faculdade de Medicina Veterinária, ULisboa, Pólo Universitário do Alto da Ajuda, Avenida da Universidade TécnicaCIISA – Faculdade de Medicina Veterinária, ULisboa, Pólo Universitário do Alto da Ajuda, Avenida da Universidade TécnicaUCIBIO-REQUIMTE, Departamento de Química, Faculdade de Ciências e Tecnologia, Universidade Nova de LisboaCIISA – Faculdade de Medicina Veterinária, ULisboa, Pólo Universitário do Alto da Ajuda, Avenida da Universidade TécnicaCIISA – Faculdade de Medicina Veterinária, ULisboa, Pólo Universitário do Alto da Ajuda, Avenida da Universidade TécnicaDepartment of Biomedical and Molecular Sciences, Queen’s UniversityInstitute for Cell and Molecular Biosciences, Newcastle University, The Medical SchoolDepartment of Biomolecular Sciences, The Weizmann Institute of ScienceDepartment of Biomolecular Sciences, The Weizmann Institute of ScienceCIISA – Faculdade de Medicina Veterinária, ULisboa, Pólo Universitário do Alto da Ajuda, Avenida da Universidade TécnicaCIISA – Faculdade de Medicina Veterinária, ULisboa, Pólo Universitário do Alto da Ajuda, Avenida da Universidade TécnicaAbstract Cellulosomes are highly sophisticated molecular nanomachines that participate in the deconstruction of complex polysaccharides, notably cellulose and hemicellulose. Cellulosomal assembly is orchestrated by the interaction of enzyme-borne dockerin (Doc) modules to tandem cohesin (Coh) modules of a non-catalytic primary scaffoldin. In some cases, as exemplified by the cellulosome of the major cellulolytic ruminal bacterium Ruminococcus flavefaciens, primary scaffoldins bind to adaptor scaffoldins that further interact with the cell surface via anchoring scaffoldins, thereby increasing cellulosome complexity. Here we elucidate the structure of the unique Doc of R. flavefaciens FD-1 primary scaffoldin ScaA, bound to Coh 5 of the adaptor scaffoldin ScaB. The RfCohScaB5-DocScaA complex has an elliptical architecture similar to previously described complexes from a variety of ecological niches. ScaA Doc presents a single-binding mode, analogous to that described for the other two Coh-Doc specificities required for cellulosome assembly in R. flavefaciens. The exclusive reliance on a single-mode of Coh recognition contrasts with the majority of cellulosomes from other bacterial species described to date, where Docs contain two similar Coh-binding interfaces promoting a dual-binding mode. The discrete Coh-Doc interactions observed in ruminal cellulosomes suggest an adaptation to the exquisite properties of the rumen environment.https://doi.org/10.1038/s41598-018-25171-8
collection DOAJ
language English
format Article
sources DOAJ
author Pedro Bule
Virgínia M. R. Pires
Victor D. Alves
Ana Luísa Carvalho
José A. M. Prates
Luís M. A. Ferreira
Steven P. Smith
Harry J. Gilbert
Ilit Noach
Edward A. Bayer
Shabir Najmudin
Carlos M. G. A. Fontes
spellingShingle Pedro Bule
Virgínia M. R. Pires
Victor D. Alves
Ana Luísa Carvalho
José A. M. Prates
Luís M. A. Ferreira
Steven P. Smith
Harry J. Gilbert
Ilit Noach
Edward A. Bayer
Shabir Najmudin
Carlos M. G. A. Fontes
Higher order scaffoldin assembly in Ruminococcus flavefaciens cellulosome is coordinated by a discrete cohesin-dockerin interaction
Scientific Reports
author_facet Pedro Bule
Virgínia M. R. Pires
Victor D. Alves
Ana Luísa Carvalho
José A. M. Prates
Luís M. A. Ferreira
Steven P. Smith
Harry J. Gilbert
Ilit Noach
Edward A. Bayer
Shabir Najmudin
Carlos M. G. A. Fontes
author_sort Pedro Bule
title Higher order scaffoldin assembly in Ruminococcus flavefaciens cellulosome is coordinated by a discrete cohesin-dockerin interaction
title_short Higher order scaffoldin assembly in Ruminococcus flavefaciens cellulosome is coordinated by a discrete cohesin-dockerin interaction
title_full Higher order scaffoldin assembly in Ruminococcus flavefaciens cellulosome is coordinated by a discrete cohesin-dockerin interaction
title_fullStr Higher order scaffoldin assembly in Ruminococcus flavefaciens cellulosome is coordinated by a discrete cohesin-dockerin interaction
title_full_unstemmed Higher order scaffoldin assembly in Ruminococcus flavefaciens cellulosome is coordinated by a discrete cohesin-dockerin interaction
title_sort higher order scaffoldin assembly in ruminococcus flavefaciens cellulosome is coordinated by a discrete cohesin-dockerin interaction
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2018-05-01
description Abstract Cellulosomes are highly sophisticated molecular nanomachines that participate in the deconstruction of complex polysaccharides, notably cellulose and hemicellulose. Cellulosomal assembly is orchestrated by the interaction of enzyme-borne dockerin (Doc) modules to tandem cohesin (Coh) modules of a non-catalytic primary scaffoldin. In some cases, as exemplified by the cellulosome of the major cellulolytic ruminal bacterium Ruminococcus flavefaciens, primary scaffoldins bind to adaptor scaffoldins that further interact with the cell surface via anchoring scaffoldins, thereby increasing cellulosome complexity. Here we elucidate the structure of the unique Doc of R. flavefaciens FD-1 primary scaffoldin ScaA, bound to Coh 5 of the adaptor scaffoldin ScaB. The RfCohScaB5-DocScaA complex has an elliptical architecture similar to previously described complexes from a variety of ecological niches. ScaA Doc presents a single-binding mode, analogous to that described for the other two Coh-Doc specificities required for cellulosome assembly in R. flavefaciens. The exclusive reliance on a single-mode of Coh recognition contrasts with the majority of cellulosomes from other bacterial species described to date, where Docs contain two similar Coh-binding interfaces promoting a dual-binding mode. The discrete Coh-Doc interactions observed in ruminal cellulosomes suggest an adaptation to the exquisite properties of the rumen environment.
url https://doi.org/10.1038/s41598-018-25171-8
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