Proton-translocating ATPases are central to biological energy conversion. Although eukaryotes contain specialized F-ATPases for ATP synthesis and V-ATPases for proton pumping, eubacteria and archaea typically contain only one enzyme for both tasks. Although many eubacteria contain ATPases of the F-type, some eubacteria and all known archaea contain ATPases of the A-type. A-ATPases are closely related to V-ATPases but simpler in design. Although the nucleotide-binding and transmembrane rotor subunits share sequence homology between A-, V-, and F-ATPases, the peripheral stalk is strikingly different in sequence, composition, and stoichiometry. We have analyzed the peripheral stalk of Thermus thermophilus A-ATPase by using phage display-derive...
V (vacuolar)/A (archaeal)-type adenosine triphosphatases (ATPases), found in archaeaand eubacteria, ...
Adenosine 5’-triphosphate (ATP) synthesis by oxidative phosphorylation or photophosphorylation is a ...
The ‘Bayesian inference of electron microscopy’ (BioEM) framework makes it possible to determine the...
Rotary ATPases are membrane-bound protein complexes found ubiquitously in biology that carry out ion...
AbstractATPases are unique rotary motors that are essential to all living organisms because of their...
The overall structure of V-ATPase complexes resembles that of F-type ATPases, but the stalk region i...
Archaeal ATP synthase (A-ATPase) is the functional homolog to the ATP synthase found in bacteria, mi...
Adenosine triphosphate (ATP) is the molecular currency of intracellular energy transfer in living or...
A1AO adenosine triphosphate (ATP) synthases from archaea represent the second class of ATP synthases...
The vacuole-type ATPases (V-ATPases) exist in various intracellular compartments of eukaryotic cells...
The overall structure of V-ATPase complexes resembles that of F-type ATPases, but the stalk region i...
Ion-translocating rotary ATPases serve either as ATP synthases, using energy from a transmembrane io...
The overall structure of V-ATPase complexes resembles that of F-type ATPases, but the stalk region i...
V-type ATPases (V-ATPases) are categorized as rotary ATP synthase/ATPase complexes. The V-ATPases ar...
During the last decades impressive progress has been made in understanding of the catalytic mechanis...
V (vacuolar)/A (archaeal)-type adenosine triphosphatases (ATPases), found in archaeaand eubacteria, ...
Adenosine 5’-triphosphate (ATP) synthesis by oxidative phosphorylation or photophosphorylation is a ...
The ‘Bayesian inference of electron microscopy’ (BioEM) framework makes it possible to determine the...
Rotary ATPases are membrane-bound protein complexes found ubiquitously in biology that carry out ion...
AbstractATPases are unique rotary motors that are essential to all living organisms because of their...
The overall structure of V-ATPase complexes resembles that of F-type ATPases, but the stalk region i...
Archaeal ATP synthase (A-ATPase) is the functional homolog to the ATP synthase found in bacteria, mi...
Adenosine triphosphate (ATP) is the molecular currency of intracellular energy transfer in living or...
A1AO adenosine triphosphate (ATP) synthases from archaea represent the second class of ATP synthases...
The vacuole-type ATPases (V-ATPases) exist in various intracellular compartments of eukaryotic cells...
The overall structure of V-ATPase complexes resembles that of F-type ATPases, but the stalk region i...
Ion-translocating rotary ATPases serve either as ATP synthases, using energy from a transmembrane io...
The overall structure of V-ATPase complexes resembles that of F-type ATPases, but the stalk region i...
V-type ATPases (V-ATPases) are categorized as rotary ATP synthase/ATPase complexes. The V-ATPases ar...
During the last decades impressive progress has been made in understanding of the catalytic mechanis...
V (vacuolar)/A (archaeal)-type adenosine triphosphatases (ATPases), found in archaeaand eubacteria, ...
Adenosine 5’-triphosphate (ATP) synthesis by oxidative phosphorylation or photophosphorylation is a ...
The ‘Bayesian inference of electron microscopy’ (BioEM) framework makes it possible to determine the...