Functional reconstitution of membrane proteins within lipid bilayers is crucial for understanding their biological function in living cells. While this strategy has been extensively used with liposomes, reconstitution of membrane proteins in lipidic cubic mesophases presents significant challenges related to the structural complexity of the lipid bilayer, organized on saddle-like minimal surfaces. Although reconstitution of membrane proteins in lipidic cubic mesophases plays a prominent role in membrane protein crystallization, nanotechnology, controlled drug delivery, and pathology of diseased cells, little is known about the molecular mechanism of protein reconstitution and about how transport properties of the doped mesophase mirror the ...
Elucidation of high-resolution structures of integral membrane proteins is drastically lagging behin...
AbstractClC chloride channels and transporters play major roles in cellular excitability, epithelial...
AbstractThe ClC family of anion channels mediates the efficient, selective permeation of Cl− across ...
Functional reconstitution of membrane proteins within lipid bilayers is crucial for understanding th...
Understanding the mechanisms controlling molecular transport in bioinspired materials is a central t...
Generation of chemical gradients across biological membranes of cellular compartments is a hallmark ...
Membrane transport proteins are the main gatekeepers controlling the traffic of molecules in and out...
AbstractSeveral prokaryotic ClC proteins have been demonstrated to function as exchangers that trans...
Membrane proteins are vital for cellular homeostasis. They maintain the electrochemical gradients th...
Obtaining well-diffracting crystals of membrane proteins, which is crucial to the molecular-level un...
In meso crystallization of membrane proteins from lipidic mesophases is central to protein structura...
The CLC family of membrane proteins is a ubiquitously expressed class of proton and usually voltage-...
Synthetic anion transporters that facilitate transmembrane H+/Cl- symport (cotransport) have anti-ca...
CLC proteins transport chloride (Cl–) ions across cell membranes to control the electrical potential...
Synthetic anion transporters that facilitate transmembrane H+/Cl-symport (cotransport)have anti-canc...
Elucidation of high-resolution structures of integral membrane proteins is drastically lagging behin...
AbstractClC chloride channels and transporters play major roles in cellular excitability, epithelial...
AbstractThe ClC family of anion channels mediates the efficient, selective permeation of Cl− across ...
Functional reconstitution of membrane proteins within lipid bilayers is crucial for understanding th...
Understanding the mechanisms controlling molecular transport in bioinspired materials is a central t...
Generation of chemical gradients across biological membranes of cellular compartments is a hallmark ...
Membrane transport proteins are the main gatekeepers controlling the traffic of molecules in and out...
AbstractSeveral prokaryotic ClC proteins have been demonstrated to function as exchangers that trans...
Membrane proteins are vital for cellular homeostasis. They maintain the electrochemical gradients th...
Obtaining well-diffracting crystals of membrane proteins, which is crucial to the molecular-level un...
In meso crystallization of membrane proteins from lipidic mesophases is central to protein structura...
The CLC family of membrane proteins is a ubiquitously expressed class of proton and usually voltage-...
Synthetic anion transporters that facilitate transmembrane H+/Cl- symport (cotransport) have anti-ca...
CLC proteins transport chloride (Cl–) ions across cell membranes to control the electrical potential...
Synthetic anion transporters that facilitate transmembrane H+/Cl-symport (cotransport)have anti-canc...
Elucidation of high-resolution structures of integral membrane proteins is drastically lagging behin...
AbstractClC chloride channels and transporters play major roles in cellular excitability, epithelial...
AbstractThe ClC family of anion channels mediates the efficient, selective permeation of Cl− across ...