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High Affinity Nanobodies against the Trypanosome brucei VSG Are Potent Trypanolytic Agents that Block Endocytosis

The African trypanosome Trypanosoma brucei, which persists within the bloodstream of the mammalian host, has evolved potent mechanisms for immune evasion. Specifically, antigenic variation of the variant-specific surface glycoprotein (VSG) and a highly active endocytosis and recycling of the surface...

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Autores principales: Stijlemans, Benoît, Caljon, Guy, Natesan, Senthil Kumar A., Saerens, Dirk, Conrath, Katja, Pérez-Morga, David, Skepper, Jeremy N., Nikolaou, Alexandros, Brys, Lea, Pays, Etienne, Magez, Stefan, Field, Mark C., De Baetselier, Patrick, Muyldermans, Serge
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3116811/
https://www.ncbi.nlm.nih.gov/pubmed/21698216
http://dx.doi.org/10.1371/journal.ppat.1002072
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author Stijlemans, Benoît
Caljon, Guy
Natesan, Senthil Kumar A.
Saerens, Dirk
Conrath, Katja
Pérez-Morga, David
Skepper, Jeremy N.
Nikolaou, Alexandros
Brys, Lea
Pays, Etienne
Magez, Stefan
Field, Mark C.
De Baetselier, Patrick
Muyldermans, Serge
author_facet Stijlemans, Benoît
Caljon, Guy
Natesan, Senthil Kumar A.
Saerens, Dirk
Conrath, Katja
Pérez-Morga, David
Skepper, Jeremy N.
Nikolaou, Alexandros
Brys, Lea
Pays, Etienne
Magez, Stefan
Field, Mark C.
De Baetselier, Patrick
Muyldermans, Serge
author_sort Stijlemans, Benoît
collection PubMed
description The African trypanosome Trypanosoma brucei, which persists within the bloodstream of the mammalian host, has evolved potent mechanisms for immune evasion. Specifically, antigenic variation of the variant-specific surface glycoprotein (VSG) and a highly active endocytosis and recycling of the surface coat efficiently delay killing mediated by anti-VSG antibodies. Consequently, conventional VSG-specific intact immunoglobulins are non-trypanocidal in the absence of complement. In sharp contrast, monovalent antigen-binding fragments, including 15 kDa nanobodies (Nb) derived from camelid heavy-chain antibodies (HCAbs) recognizing variant-specific VSG epitopes, efficiently lyse trypanosomes both in vitro and in vivo. This Nb-mediated lysis is preceded by very rapid immobilisation of the parasites, massive enlargement of the flagellar pocket and major blockade of endocytosis. This is accompanied by severe metabolic perturbations reflected by reduced intracellular ATP-levels and loss of mitochondrial membrane potential, culminating in cell death. Modification of anti-VSG Nbs through site-directed mutagenesis and by reconstitution into HCAbs, combined with unveiling of trypanolytic activity from intact immunoglobulins by papain proteolysis, demonstrates that the trypanolytic activity of Nbs and Fabs requires low molecular weight, monovalency and high affinity. We propose that the generation of low molecular weight VSG-specific trypanolytic nanobodies that impede endocytosis offers a new opportunity for developing novel trypanosomiasis therapeutics. In addition, these data suggest that the antigen-binding domain of an anti-microbial antibody harbours biological functionality that is latent in the intact immunoglobulin and is revealed only upon release of the antigen-binding fragment.
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spelling pubmed-31168112011-06-22 High Affinity Nanobodies against the Trypanosome brucei VSG Are Potent Trypanolytic Agents that Block Endocytosis Stijlemans, Benoît Caljon, Guy Natesan, Senthil Kumar A. Saerens, Dirk Conrath, Katja Pérez-Morga, David Skepper, Jeremy N. Nikolaou, Alexandros Brys, Lea Pays, Etienne Magez, Stefan Field, Mark C. De Baetselier, Patrick Muyldermans, Serge PLoS Pathog Research Article The African trypanosome Trypanosoma brucei, which persists within the bloodstream of the mammalian host, has evolved potent mechanisms for immune evasion. Specifically, antigenic variation of the variant-specific surface glycoprotein (VSG) and a highly active endocytosis and recycling of the surface coat efficiently delay killing mediated by anti-VSG antibodies. Consequently, conventional VSG-specific intact immunoglobulins are non-trypanocidal in the absence of complement. In sharp contrast, monovalent antigen-binding fragments, including 15 kDa nanobodies (Nb) derived from camelid heavy-chain antibodies (HCAbs) recognizing variant-specific VSG epitopes, efficiently lyse trypanosomes both in vitro and in vivo. This Nb-mediated lysis is preceded by very rapid immobilisation of the parasites, massive enlargement of the flagellar pocket and major blockade of endocytosis. This is accompanied by severe metabolic perturbations reflected by reduced intracellular ATP-levels and loss of mitochondrial membrane potential, culminating in cell death. Modification of anti-VSG Nbs through site-directed mutagenesis and by reconstitution into HCAbs, combined with unveiling of trypanolytic activity from intact immunoglobulins by papain proteolysis, demonstrates that the trypanolytic activity of Nbs and Fabs requires low molecular weight, monovalency and high affinity. We propose that the generation of low molecular weight VSG-specific trypanolytic nanobodies that impede endocytosis offers a new opportunity for developing novel trypanosomiasis therapeutics. In addition, these data suggest that the antigen-binding domain of an anti-microbial antibody harbours biological functionality that is latent in the intact immunoglobulin and is revealed only upon release of the antigen-binding fragment. Public Library of Science 2011-06-16 /pmc/articles/PMC3116811/ /pubmed/21698216 http://dx.doi.org/10.1371/journal.ppat.1002072 Text en Stijlemans et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Stijlemans, Benoît
Caljon, Guy
Natesan, Senthil Kumar A.
Saerens, Dirk
Conrath, Katja
Pérez-Morga, David
Skepper, Jeremy N.
Nikolaou, Alexandros
Brys, Lea
Pays, Etienne
Magez, Stefan
Field, Mark C.
De Baetselier, Patrick
Muyldermans, Serge
High Affinity Nanobodies against the Trypanosome brucei VSG Are Potent Trypanolytic Agents that Block Endocytosis
title High Affinity Nanobodies against the Trypanosome brucei VSG Are Potent Trypanolytic Agents that Block Endocytosis
title_full High Affinity Nanobodies against the Trypanosome brucei VSG Are Potent Trypanolytic Agents that Block Endocytosis
title_fullStr High Affinity Nanobodies against the Trypanosome brucei VSG Are Potent Trypanolytic Agents that Block Endocytosis
title_full_unstemmed High Affinity Nanobodies against the Trypanosome brucei VSG Are Potent Trypanolytic Agents that Block Endocytosis
title_short High Affinity Nanobodies against the Trypanosome brucei VSG Are Potent Trypanolytic Agents that Block Endocytosis
title_sort high affinity nanobodies against the trypanosome brucei vsg are potent trypanolytic agents that block endocytosis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3116811/
https://www.ncbi.nlm.nih.gov/pubmed/21698216
http://dx.doi.org/10.1371/journal.ppat.1002072
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