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PH-triggered conformational switching of the diphtheria toxin T-domain: The roles of N-terminal histidines

  • Igor V. Kurnikov
  • , Alexander Kyrychenko
  • , Jose C. Flores-Canales
  • , Mykola V. Rodnin
  • , Nikolay Simakov
  • , Mauricio Vargas-Uribe
  • , Yevgen O. Posokhov
  • , Maria Kurnikova
  • , Alexey S. Ladokhin
  • Carnegie Mellon University
  • University of Kansas

Research output: Contribution to journalArticlepeer-review

42 Scopus citations

Abstract

pH-induced conformational switching is essential for functioning of diphtheria toxin, which undergoes a membrane insertion/translocation transition triggered by endosomal acidification as a key step of cellular entry. In order to establish the sequence of molecular rearrangements and side-chain protonation accompanying the formation of the membrane-competent state of the toxin's translocation (T) domain, we have developed and applied an integrated approach that combines multiple techniques of computational chemistry [e.g., long-microsecond-range, all-atom molecular dynamics (MD) simulations; continuum electrostatics calculations; and thermodynamic integration (TI)] with several experimental techniques of fluorescence spectroscopy. TI calculations indicate that protonation of H257 causes the greatest destabilization of the native structure (6.9 kcal/mol), which is consistent with our early mutagenesis results. Extensive equilibrium MD simulations with a combined length of over 8 μs demonstrate that histidine protonation, while not accompanied by the loss of structural compactness of the T-domain, nevertheless results in substantial molecular rearrangements characterized by the partial loss of secondary structure due to unfolding of helices TH1 and TH2 and the loss of close contact between the C- and N-terminal segments. The structural changes accompanying the formation of the membrane-competent state ensure an easier exposure of the internal hydrophobic hairpin formed by helices TH8 and TH9, in preparation for its subsequent transmembrane insertion.

Original languageEnglish
Pages (from-to)2752-2764
Number of pages13
JournalJournal of Molecular Biology
Volume425
Issue number15
DOIs
StatePublished - Aug 9 2013

Keywords

  • acid-induced conformational
  • change membrane protein insertion
  • fluorescence
  • histidine protonation
  • molecular dynamics

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