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Port Meadow flooded, February 2021

Professor Richard Berry D. Phil.

Professor of Biological Physics

Research theme

  • Biological physics

Sub department

  • Condensed Matter Physics

Research groups

  • Oxford Molecular Motors
Richard.Berry@physics.ox.ac.uk
Telephone: 01865 (2)72288,01865 (2)71723
Clarendon Laboratory, room 273B
  • About
  • Links
  • Publications

Correlated ion flux through parallel pores: application to channel subconductance states.

J Membr Biol 133:1 (1993) 77-84

Authors:

RM Berry, DT Edmonds

Abstract:

Many ion channels that normally gate fully open or shut have recently been observed occasionally to display well-defined subconductance states with conductances much less than those of the fully open channel. One model of this behavior is a channel consisting of several parallel pores with a strong correlation between the flux in each pore such that, normally, they all conduct together but, under special circumstances, the pores may transfer to a state in which only some of them conduct. This paper introduces a general technique for modeling correlated pores, and explores in detail by computer simulation a particular model based upon electric interaction between the pores. Correlation is obtained when the transient electric field of ions passing through the pores acts upon a common set of ionizable residues of the channel protein, causing transient changes in their effective pK and hence in their charged state. The computed properties of such a correlated parallel pore channel with single occupation of each pore are derived and compared to those predicted for a single pore that can contain more than one ion at a time and also to those predicted for a model pore with fluctuating barriers. Experiments that could distinguish between the present and previous models are listed.

Torque and switching in the bacterial flagellar motor. An electrostatic model.

Biophys J 64:4 (1993) 961-973

Abstract:

A model is presented for the rotary motor that drives bacterial flagella, using the electrochemical gradient of protons across the cytoplasmic membrane. The model unifies several concepts present in previous models. Torque is generated by proton-conducting particles around the perimeter of the rotor at the base of the flagellum. Protons in channels formed by these particles interact electrostatically with tilted lines of charges on the rotor, providing "loose coupling" between proton flux and rotation of the flagellum. Computer simulations of the model correctly predict the experimentally observed dynamic properties of the motor. Unlike previous models, the motor presented here may rotate either way for a given direction of the protonmotive force. The direction of rotation only depends on the level of occupancy of the proton channels. This suggests a novel and simple mechanism for the switching between clockwise and counterclockwise rotation that is the basis of bacterial chemotaxis.

Carrier-like behaviour from a static but electrically responsive model pore

Journal of Theoretical Biology Elsevier 154:2 (1992) 249-260

Authors:

R Berry, DT Edmonds

The proton ladder, a static mechanism for ion/proton coports and counterports

European Biophysics Journal Springer Nature 20:4 (1991) 241-245

Authors:

DT Edmonds, R Berry

A catch-bond drives stator mechanosensitivity in the Bacterial Flagellar Motor

Authors:

AL Nord, E Gachon, R Perez-Carrasco, JA Nirody, A Barducci, RM Berry, F Pedaci

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