Proceedings of the National Academy of Sciences · 2014 · 402 citations · 37 references
Proteinlipid InteractionEngineeringCytoskeletonMechanotransductionLipid MovementCellular PhysiologyMembrane TransportForce TransductionIntercellular CommunicationBiophysicsMechanobiologyMolecular PhysiologyBiochemistryIon ChannelsMembrane BiologyMechanosensingCell BiomechanicsMembrane SystemCell BiologyMembrane BiophysicsSignal TransductionMechanical ForcesPhysiologyLipid MembraneMechanical ActivationCellular BiochemistryMedicine
Mechanosensitive ion channels underlie neuronal responses to physical forces in the sensation of touch, hearing, and other mechanical stimuli. The fundamental basis of force transduction in eukaryotic mechanosensitive ion channels is unknown. Are mechanical forces transmitted directly from membrane to channel as in prokaryotic mechanosensors or are they mediated through macromolecular tethers attached to the channel? Here we show in cells that the K(+) channel TRAAK (K2P4.1) is responsive to mechanical forces similar to the ion channel Piezo1 and that mechanical activation of TRAAK can electrically counter Piezo1 activation. We then show that the biophysical origins of force transduction in TRAAK and TREK1 (K2P2.1) two-pore domain K(+) (K2P) channels come from the lipid membrane, not from attached tethers. These findings extend the "force-from-lipid" principle established for prokaryotic mechanosensitive channels MscL and MscS to these eukaryotic mechanosensitive K(+) channels.
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Piezo1 and Piezo2 Are Essential Components of Distinct Mechanically Activated Cation Channels
Bertrand Coste, Jayanti Mathur, Manuela Schmidt et al. · Science · 2010 · 3.1K citations · Full text
A large-conductance mechanosensitive channel in E. coli encoded by mscL alone
Sergei Sukharev, Paul Blount, Boris Martinac et al. · Nature · 1994 · 739 citations