F-ATP synthases use proton flow through the FO domain to synthesize ATP in the F1 domain. In Escherichia coli, the enzyme consists of rotor subunits γεc10 and stator subunits (αβ)3δab2. Subunits c10 or (αβ)3 alone are rotationally symmetric. However, symmetry is broken by the b2 homodimer, which together with subunit δa, forms a single eccentric stalk connecting the membrane embedded FO domain with the soluble F1 domain, and the central rotating and curved stalk composed of subunit γε. Although each of the three catalytic binding sites in (αβ)3 catalyzes the same set of partial reactions in the time average, they might not be fully equivalent at any moment, because the structural s...
AbstractF1Fo-ATP synthase is a ubiquitous membrane protein complex that efficiently converts a cell'...
ABSTRACT F1Fo-ATP synthase is a ubiquitous membrane protein complex that efficiently converts a cell...
We focus on the rotational catalysis of Escherichia coli F-ATPase (ATP synthase, FOF1). Using a prob...
ABSTRACT ATP synthase uses a rotary mechanism to carry out its cellular function of manufacturing AT...
AbstractTwo proton pumps, the F-ATPase (ATP synthase, FoF1) and the V-ATPase (endomembrane proton pu...
AbstractF1F0 ATP synthases are known to synthesize ATP by rotary catalysis in the F1 sector of the e...
Edited by Ulf-Ingo Flu«gge Abstract FoF1-ATP synthase mediates coupling of proton flow in Fo and ATP...
F1Fo ATP synthase functions as a biological rotary generator that makes a major contribution to cell...
AbstractATP synthase uses a rotary mechanism to carry out its cellular function of manufacturing ATP...
The ATP synthase can be imagined as a reversible H(+)-translocating channel embedded in the membrane...
AbstractTwo stalks link the F1 and F0 sectors of ATP synthase. The central stalk contains the γ and ...
A molecular model that provides a framework for interpreting the wealth of functional information ob...
A molecular model that provides a framework for interpreting the wealth of functional information ob...
AbstractElastic conformational changes of the protein backbone are essential for catalytic activitie...
AbstractATP synthase (F-ATPase) produces ATP at the expense of ion-motive force or vice versa. It is...
AbstractF1Fo-ATP synthase is a ubiquitous membrane protein complex that efficiently converts a cell'...
ABSTRACT F1Fo-ATP synthase is a ubiquitous membrane protein complex that efficiently converts a cell...
We focus on the rotational catalysis of Escherichia coli F-ATPase (ATP synthase, FOF1). Using a prob...
ABSTRACT ATP synthase uses a rotary mechanism to carry out its cellular function of manufacturing AT...
AbstractTwo proton pumps, the F-ATPase (ATP synthase, FoF1) and the V-ATPase (endomembrane proton pu...
AbstractF1F0 ATP synthases are known to synthesize ATP by rotary catalysis in the F1 sector of the e...
Edited by Ulf-Ingo Flu«gge Abstract FoF1-ATP synthase mediates coupling of proton flow in Fo and ATP...
F1Fo ATP synthase functions as a biological rotary generator that makes a major contribution to cell...
AbstractATP synthase uses a rotary mechanism to carry out its cellular function of manufacturing ATP...
The ATP synthase can be imagined as a reversible H(+)-translocating channel embedded in the membrane...
AbstractTwo stalks link the F1 and F0 sectors of ATP synthase. The central stalk contains the γ and ...
A molecular model that provides a framework for interpreting the wealth of functional information ob...
A molecular model that provides a framework for interpreting the wealth of functional information ob...
AbstractElastic conformational changes of the protein backbone are essential for catalytic activitie...
AbstractATP synthase (F-ATPase) produces ATP at the expense of ion-motive force or vice versa. It is...
AbstractF1Fo-ATP synthase is a ubiquitous membrane protein complex that efficiently converts a cell'...
ABSTRACT F1Fo-ATP synthase is a ubiquitous membrane protein complex that efficiently converts a cell...
We focus on the rotational catalysis of Escherichia coli F-ATPase (ATP synthase, FOF1). Using a prob...