All cell membranes are packed with proteins. The ability to investigate the regulatory mechanisms of protein channels in experimental conditions mimicking their congested native environment is crucial for understanding the environmental physicochemical cues that may fundamentally contribute to their functionality in natural membranes. Here we report on investigations of the voltage-induced gating of lysenin channels in congested conditions experimentally achieved by increasing the number of channels inserted into planar lipid membranes. Typical electrophysiology measurements reveal congestion-induced changes to the voltage-induced gating, manifested as a significant reduction of the response to external voltage stimuli. Furthermore, we demo...
Channels in cell membranes are important for intercellular communication and especially for the func...
The electrochemical gradients established across cell membranes are paramount for the execution of b...
The intricate voltage regulation presented by lysenin channels reconstituted in artificial lipid mem...
All cell membranes are packed with proteins. The ability to investigate the regulatory mechanisms of...
Lysenin, a pore forming toxin (PFT) extracted from Eisenia fetida, inserts voltage-regulated channel...
Lysenin, a 297 amino acid pore-forming protein extracted from the coelomic fluid of the earthworm E....
This research work was undertaken to demonstrate that the composition of the lipid environment, modu...
The pore-forming toxin lysenin self-inserts to form conductance channels in natural and artificial l...
Membrane transporters are a class of membrane proteins that function to provide a pathway across a c...
Non-specific ion conductance channels can be formed in lipid membranes by the poreforming toxin lyse...
Lysenin is a pore-forming toxin, which self-inserts open channels into sphingomyelin containing memb...
Since the proposal of the fluid mosaic model of a cell membrane, substantial scientific evidence has...
The pore-forming toxin lysenin self-assembles large and stable conductance channels in natural and a...
This work focuses on understanding the interactions between lysenin, a pore-forming toxin, and ATP. ...
Lysenin is a pore-forming toxin extracted from earthworms, which inserts large conducting channels i...
Channels in cell membranes are important for intercellular communication and especially for the func...
The electrochemical gradients established across cell membranes are paramount for the execution of b...
The intricate voltage regulation presented by lysenin channels reconstituted in artificial lipid mem...
All cell membranes are packed with proteins. The ability to investigate the regulatory mechanisms of...
Lysenin, a pore forming toxin (PFT) extracted from Eisenia fetida, inserts voltage-regulated channel...
Lysenin, a 297 amino acid pore-forming protein extracted from the coelomic fluid of the earthworm E....
This research work was undertaken to demonstrate that the composition of the lipid environment, modu...
The pore-forming toxin lysenin self-inserts to form conductance channels in natural and artificial l...
Membrane transporters are a class of membrane proteins that function to provide a pathway across a c...
Non-specific ion conductance channels can be formed in lipid membranes by the poreforming toxin lyse...
Lysenin is a pore-forming toxin, which self-inserts open channels into sphingomyelin containing memb...
Since the proposal of the fluid mosaic model of a cell membrane, substantial scientific evidence has...
The pore-forming toxin lysenin self-assembles large and stable conductance channels in natural and a...
This work focuses on understanding the interactions between lysenin, a pore-forming toxin, and ATP. ...
Lysenin is a pore-forming toxin extracted from earthworms, which inserts large conducting channels i...
Channels in cell membranes are important for intercellular communication and especially for the func...
The electrochemical gradients established across cell membranes are paramount for the execution of b...
The intricate voltage regulation presented by lysenin channels reconstituted in artificial lipid mem...