Inhibition of type VI secretion by an anti-TssM llama nanobody.

The type VI secretion system (T6SS) is a secretion pathway widespread in Gram-negative bacteria that targets toxins in both prokaryotic and eukaryotic cells. Although most T6SSs identified so far are involved in inter-bacterial competition, a few are directly required for full virulence of pathogens...

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Main Authors: Van Son Nguyen, Laureen Logger, Silvia Spinelli, Aline Desmyter, Thi Thu Hang Le, Christine Kellenberger, Badreddine Douzi, Eric Durand, Alain Roussel, Eric Cascales, Christian Cambillau
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2015-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4374921?pdf=render
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spelling doaj-5c53395ad3e34b599e6580106ed264712020-11-24T21:24:26ZengPublic Library of Science (PLoS)PLoS ONE1932-62032015-01-01103e012218710.1371/journal.pone.0122187Inhibition of type VI secretion by an anti-TssM llama nanobody.Van Son NguyenLaureen LoggerSilvia SpinelliAline DesmyterThi Thu Hang LeChristine KellenbergerBadreddine DouziEric DurandAlain RousselEric CascalesChristian CambillauThe type VI secretion system (T6SS) is a secretion pathway widespread in Gram-negative bacteria that targets toxins in both prokaryotic and eukaryotic cells. Although most T6SSs identified so far are involved in inter-bacterial competition, a few are directly required for full virulence of pathogens. The T6SS comprises 13 core proteins that assemble a large complex structurally and functionally similar to a phage contractile tail structure anchored to the cell envelope by a trans-membrane spanning stator. The central part of this stator, TssM, is a 1129-amino-acid protein anchored in the inner membrane that binds to the TssJ outer membrane lipoprotein. In this study, we have raised camelid antibodies against the purified TssM periplasmic domain. We report the crystal structure of two specific nanobodies that bind to TssM in the nanomolar range. Interestingly, the most potent nanobody, nb25, competes with the TssJ lipoprotein for TssM binding in vitro suggesting that TssJ and the nb25 CDR3 loop share the same TssM binding site or causes a steric hindrance preventing TssM-TssJ complex formation. Indeed, periplasmic production of the nanobodies displacing the TssM-TssJ interaction inhibits the T6SS function in vivo. This study illustrates the power of nanobodies to specifically target and inhibit bacterial secretion systems.http://europepmc.org/articles/PMC4374921?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Van Son Nguyen
Laureen Logger
Silvia Spinelli
Aline Desmyter
Thi Thu Hang Le
Christine Kellenberger
Badreddine Douzi
Eric Durand
Alain Roussel
Eric Cascales
Christian Cambillau
spellingShingle Van Son Nguyen
Laureen Logger
Silvia Spinelli
Aline Desmyter
Thi Thu Hang Le
Christine Kellenberger
Badreddine Douzi
Eric Durand
Alain Roussel
Eric Cascales
Christian Cambillau
Inhibition of type VI secretion by an anti-TssM llama nanobody.
PLoS ONE
author_facet Van Son Nguyen
Laureen Logger
Silvia Spinelli
Aline Desmyter
Thi Thu Hang Le
Christine Kellenberger
Badreddine Douzi
Eric Durand
Alain Roussel
Eric Cascales
Christian Cambillau
author_sort Van Son Nguyen
title Inhibition of type VI secretion by an anti-TssM llama nanobody.
title_short Inhibition of type VI secretion by an anti-TssM llama nanobody.
title_full Inhibition of type VI secretion by an anti-TssM llama nanobody.
title_fullStr Inhibition of type VI secretion by an anti-TssM llama nanobody.
title_full_unstemmed Inhibition of type VI secretion by an anti-TssM llama nanobody.
title_sort inhibition of type vi secretion by an anti-tssm llama nanobody.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2015-01-01
description The type VI secretion system (T6SS) is a secretion pathway widespread in Gram-negative bacteria that targets toxins in both prokaryotic and eukaryotic cells. Although most T6SSs identified so far are involved in inter-bacterial competition, a few are directly required for full virulence of pathogens. The T6SS comprises 13 core proteins that assemble a large complex structurally and functionally similar to a phage contractile tail structure anchored to the cell envelope by a trans-membrane spanning stator. The central part of this stator, TssM, is a 1129-amino-acid protein anchored in the inner membrane that binds to the TssJ outer membrane lipoprotein. In this study, we have raised camelid antibodies against the purified TssM periplasmic domain. We report the crystal structure of two specific nanobodies that bind to TssM in the nanomolar range. Interestingly, the most potent nanobody, nb25, competes with the TssJ lipoprotein for TssM binding in vitro suggesting that TssJ and the nb25 CDR3 loop share the same TssM binding site or causes a steric hindrance preventing TssM-TssJ complex formation. Indeed, periplasmic production of the nanobodies displacing the TssM-TssJ interaction inhibits the T6SS function in vivo. This study illustrates the power of nanobodies to specifically target and inhibit bacterial secretion systems.
url http://europepmc.org/articles/PMC4374921?pdf=render
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