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  4. Trapping Charge Mechanism In Hv1 Channels (Cihv1)
 
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Trapping Charge Mechanism In Hv1 Channels (Cihv1)

Journal
International Journal of Molecular Sciences
Date Issued
2023-12-28
Author(s)
Miguel Fernández
Juan J. Alvear-Arias
Emerson M. Carmona
Christian Carrillo
Antonio Pena-Pichicoi
Erick O. Hernandez-Ochoa
Neely, Alan  
Facultad de Ciencias  
Osvaldo Alvarez
Latorre, Ramón  
Facultad de Ciencias  
Jose A. Garate
Carlos Gonzalez
DOI
10.3390/ijms25010426
WoS ID
WOS:001141443900001
Abstract
The majority of voltage-gated ion channels contain a defined voltage-sensing domain and a pore domain composed of highly conserved amino acid residues that confer electrical excitability via electromechanical coupling. In this sense, the voltage-gated proton channel (Hv1) is a unique protein in that voltage-sensing, proton permeation and pH-dependent modulation involve the same structural region. In fact, these processes synergistically work in concert, and it is difficult to separate them. To investigate the process of Hv1 voltage sensor trapping, we follow voltage-sensor movements directly by leveraging mutations that enable the measurement of Hv1 channel gating currents. We uncover that the process of voltage sensor displacement is due to two driving forces. The first reveals that mutations in the selectivity filter (D160) located in the S1 transmembrane interact with the voltage sensor. More hydrophobic amino acids increase the energy barrier for voltage sensor activation. On the other hand, the effect of positive charges near position 264 promotes the formation of salt bridges between the arginines of the voltage sensor domain, achieving a stable conformation over time. Our results suggest that the activation of the Hv1 voltage sensor is governed by electrostatic–hydrophobic interactions, and S4 arginines, N264 and selectivity filter (D160) are essential in the Ciona-Hv1 to understand the trapping of the voltage sensor.
Subjects

Biochemistry And Mole...

Chemistry, Multidisci...

Catalysis

Computer Science Appl...

Inorganic Chemistry

Medicine

Molecular Biology

Organic Chemistry

Physical And Theoreti...

Spectroscopy

OCDE Subjects

Natural Sciences::Oth...

Quartile (Date Issued)
Q2
License
acceso abierto

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