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A High-Affinity Calmodulin-Binding Site in the CyaA Toxin Translocation Domain is Essential for Invasion of Eukaryotic Cells.
Voegele, Alexis; Sadi, Mirko; O'Brien, Darragh Patrick; Gehan, Pauline; Raoux-Barbot, Dorothée; Davi, Maryline; Hoos, Sylviane; Brûlé, Sébastien; Raynal, Bertrand; Weber, Patrick; Mechaly, Ariel; Haouz, Ahmed; Rodriguez, Nicolas; Vachette, Patrice; Durand, Dominique; Brier, Sébastien; Ladant, Daniel; Chenal, Alexandre.
Affiliation
  • Voegele A; Biochemistry of Macromolecular Interactions Unit Department of Structural Biology and Chemistry Institut Pasteur CNRS UMR3528 Paris 75015 France.
  • Sadi M; Université de Paris Sorbonne Paris Cité Paris 75006 France.
  • O'Brien DP; Biochemistry of Macromolecular Interactions Unit Department of Structural Biology and Chemistry Institut Pasteur CNRS UMR3528 Paris 75015 France.
  • Gehan P; Université de Paris Sorbonne Paris Cité Paris 75006 France.
  • Raoux-Barbot D; Biochemistry of Macromolecular Interactions Unit Department of Structural Biology and Chemistry Institut Pasteur CNRS UMR3528 Paris 75015 France.
  • Davi M; Sorbonne Université École normale supérieure PSL University CNRS Laboratoire des biomolécules LBM Paris 75005 France.
  • Hoos S; Biochemistry of Macromolecular Interactions Unit Department of Structural Biology and Chemistry Institut Pasteur CNRS UMR3528 Paris 75015 France.
  • Brûlé S; Biochemistry of Macromolecular Interactions Unit Department of Structural Biology and Chemistry Institut Pasteur CNRS UMR3528 Paris 75015 France.
  • Raynal B; Plateforme de Biophysique Moléculaire Institut Pasteur UMR 3528 CNRS Paris 75015 France.
  • Weber P; Plateforme de Biophysique Moléculaire Institut Pasteur UMR 3528 CNRS Paris 75015 France.
  • Mechaly A; Plateforme de Biophysique Moléculaire Institut Pasteur UMR 3528 CNRS Paris 75015 France.
  • Haouz A; Institut Pasteur Plate-forme de cristallographie-C2RT UMR-3528 CNRS Paris 75015 France.
  • Rodriguez N; Institut Pasteur Plate-forme de cristallographie-C2RT UMR-3528 CNRS Paris 75015 France.
  • Vachette P; Institut Pasteur Plate-forme de cristallographie-C2RT UMR-3528 CNRS Paris 75015 France.
  • Durand D; Sorbonne Université École normale supérieure PSL University CNRS Laboratoire des biomolécules LBM Paris 75005 France.
  • Brier S; Université Paris-Saclay CEA CNRS Institute for Integrative Biology of the Cell (I2BC) Gif-sur-Yvette 91198 France.
  • Ladant D; Université Paris-Saclay CEA CNRS Institute for Integrative Biology of the Cell (I2BC) Gif-sur-Yvette 91198 France.
  • Chenal A; Biological NMR Technological Plateform Center for Technological Resources and Research Department of Structural Biology and Chemistry Institut Pasteur CNRS UMR3528 Paris 75015 France.
Adv Sci (Weinh) ; 8(9): 2003630, 2021 05.
Article in En | MEDLINE | ID: mdl-33977052
ABSTRACT
The molecular mechanisms and forces involved in the translocation of bacterial toxins into host cells are still a matter of intense research. The adenylate cyclase (CyaA) toxin from Bordetella pertussis displays a unique intoxication pathway in which its catalytic domain is directly translocated across target cell membranes. The CyaA translocation region contains a segment, P454 (residues 454-484), which exhibits membrane-active properties related to antimicrobial peptides. Herein, the results show that this peptide is able to translocate across membranes and to interact with calmodulin (CaM). Structural and biophysical analyses reveal the key residues of P454 involved in membrane destabilization and calmodulin binding. Mutational analysis demonstrates that these residues play a crucial role in CyaA translocation into target cells. In addition, calmidazolium, a calmodulin inhibitor, efficiently blocks CyaA internalization. It is proposed that after CyaA binding to target cells, the P454 segment destabilizes the plasma membrane, translocates across the lipid bilayer and binds calmodulin. Trapping of CyaA by the CaMP454 interaction in the cytosol may assist the entry of the N-terminal catalytic domain by converting the stochastic motion of the polypeptide chain through the membrane into an efficient vectorial chain translocation into host cells.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Calmodulin / Adenylate Cyclase Toxin / Eukaryotic Cells / Protein Domains Language: En Journal: Adv Sci (Weinh) Year: 2021 Type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Calmodulin / Adenylate Cyclase Toxin / Eukaryotic Cells / Protein Domains Language: En Journal: Adv Sci (Weinh) Year: 2021 Type: Article