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Exploring the structure of the voltage-gated Na+ channel by an engineered drug access pathway to the receptor site for local anesthetics.

  • Peter Lukacs
  • , Vaibhavkumar Gawali
  • , Rene Cervenka
  • , Song Ke
  • , Lena Rubi
  • , Touran Zarrabi
  • , Karlheinz Hilber
  • , Anna Weinzinger
  • , Hannes Todt

    Veröffentlichungen: Beitrag in FachzeitschriftArtikelPeer Reviewed

    Abstract

    Despite the availability of several crystal structures of bacterial voltage-gated Na + channels, the structure of eukaryotic Na + channels is still undefined. We used predictions from available homology models and crystal structures to modulate an external access pathway for the membrane-impermeant local anesthetic derivative QX-222 into the internal vestibule of the mammalian rNa V1.4 channel. Potassium channel-based homology models predict amino acid Ile-1575 in domain IV segment 6 to be in close proximity to Lys-1237 of the domain III pore-loop selectivity filter. The mutation K1237E has been shown previously to increase the diameter of the selectivity filter. We found that an access pathway for external QX-222 created by mutations of Ile-1575 was abolished by the additional mutation K1237E, supporting the notion of a close spatial relationship between sites 1237 and 1575. Crystal structures of bacterial voltage-gated Na + channels predict that the side chain of rNa V1.4 Trp-1531 of the domain IV pore-loop projects into the space between domain IV segment 6 and domain III pore-loop and, therefore, should obstruct the putative external access pathway. Indeed, mutations W1531A and W1531G allowed for exceptionally rapid access of QX-222. In addition, W1531G created a second non-selective ion-conducting pore, bypassing the outer vestibule but probably merging into the internal vestibule, allowing for control by the activation gate. These data suggest a strong structural similarity between bacterial and eukaryotic voltage-gated Na + channels.

    OriginalspracheEnglisch
    Seiten (von - bis)21770-21781
    Seitenumfang12
    FachzeitschriftJournal of Biological Chemistry
    Jahrgang289
    Ausgabenummer31
    DOIs
    PublikationsstatusVeröffentlicht - 2014

    ÖFOS 2012

    • 301209 Pharmazie

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