A-ATP Synthase: Difference between revisions
No edit summary |
No edit summary |
||
| Line 8: | Line 8: | ||
==<scene name='A-ATP_Synthase/Rotary_stalk/1'>F1 ATP Synthase Rotary Mechanism</scene>== | ==<scene name='A-ATP_Synthase/Rotary_stalk/1'>F1 ATP Synthase Rotary Mechanism</scene>== | ||
The central stalk in ATP synthase, made of gamma, delta and epsilon subunits in the mitochondrial enzyme, is the key rotary element in the enzyme's catalytic mechanism. The <scene name='A-ATP_Synthase/Rotary_stalk/2'>Gamma subunit</scene> penetrates the catalytic (alpha beta)(3) domain and protrudes beneath it, interacting with a ring of c subunits in the membrane that drives rotation of the stalk during ATP synthesis. In ATP synthase, the central stalk interacts with the c-ring and couples the transmembrane proton motive force to catalysis in the (<scene name='A-ATP_Synthase/Rotary_stalk/8'>alpha, beta</scene> (3) domain. There are three catalytic nucleotide binding sites and three corresponding states induced by the central stalks rotation. In the Alternating catalytic model, the binding sites go through three different states. | The central stalk in ATP synthase, made of gamma, delta and epsilon subunits in the mitochondrial enzyme, is the key rotary element in the enzyme's catalytic mechanism. The <scene name='A-ATP_Synthase/Rotary_stalk/2'>Gamma subunit</scene> penetrates the catalytic (alpha beta)(3) domain and protrudes beneath it, interacting with a ring of c subunits in the membrane that drives rotation of the stalk during ATP synthesis. In ATP synthase, the central stalk interacts with the c-ring and couples the transmembrane proton motive force to catalysis in the (<scene name='A-ATP_Synthase/Rotary_stalk/8'>alpha, beta</scene> (3) domain. There are three catalytic nucleotide binding sites and three corresponding states induced by the central stalks rotation. In the Alternating catalytic model, the binding sites go through three different states. <scene name='A-ATP_Synthase/Rotary_stalk/2'>Open State</scene> | ||
ATP is released and ADP and Pi enters the active site. <scene name='A-ATP_Synthase/Rotary_stalk/2'>loose state</scene> ADP and Pi are bound and the active site closes up around the molecules.The <scene name='A-ATP_Synthase/Rotary_stalk/2'>Tight State</scene> forces molecules together, catalyzing the formation of the phosphate bond. ]] | |||
When operating as a generator, it uses the power of rotational motion to build ATP, or when operating as a motor, it breaks down ATP to spin the axle the opposite direction. The synthesis of ATP requires <scene name='A-ATP_Synthase/Rotary_stalk/6'>several steps</scene> , including the binding of ADP and phosphate, the formation of the new phosphate-phosphate bond, and release of ATP. As the axle turns, it forces the motor into three different conformations that assist these difficult steps. The beta subunits have a structural role, holding everything in place. The alpha subunits are the ATP generating parts. It is proposed that Pi binds first to the catalytic site and sterically hinders ATP binding, thereby selectively allowing binding of ADP in the nucleotide binding site. <ref name= Gibbons> PMID:11062563</ref> | When operating as a generator, it uses the power of rotational motion to build ATP, or when operating as a motor, it breaks down ATP to spin the axle the opposite direction. The synthesis of ATP requires <scene name='A-ATP_Synthase/Rotary_stalk/6'>several steps</scene> , including the binding of ADP and phosphate, the formation of the new phosphate-phosphate bond, and release of ATP. As the axle turns, it forces the motor into three different conformations that assist these difficult steps. The beta subunits have a structural role, holding everything in place. The alpha subunits are the ATP generating parts. It is proposed that Pi binds first to the catalytic site and sterically hinders ATP binding, thereby selectively allowing binding of ADP in the nucleotide binding site. <ref name= Gibbons> PMID:11062563</ref> | ||
Revision as of 17:57, 29 November 2011

Structure
The structure on the right shows the F1 motor and the axle that connects the two. ATP synthesis is composed of two rotary motors, each powered by a different fuel. The motor at the top, termed F0, an electric motor. It is embedded in a membrane (shown schematically as a gray stripe here), and is powered by the flow of hydrogen ions across the membrane. As the protons flow through the motor, they turn a circular rotor . This rotor is connected to the second motor, termed F1. The F1 motor is a chemical motor, powered by ATP. The two motors are connected together by a stator, shown on the right, so that when F0 turns, F1 turns too. A-ATP synthase is very similar to F ATP Synthase and is composed of two parts A1 and A0 which are composed of at least nine subunits A3B3C:D:E:F:H2:a:cx that function as a pair of rotary motors connected by central and peripheral stalk(s) [1]. The A0 domain is the hydrophobic membrane embedded ion-translocating sector that uses the H+ gradient to power ATP synthase in domain A1. A1 is catalytic and water soluble containing A and B subunits. These subunits are comparable to F-ATP synthase ATP synthase alpha/beta subunits. The A subunit of A1 is catalytic and the B subunit is regulatory, with a substrate-binding site on each. [1]
| ||||||||||||
| ||||||||||||
References
- ↑ Muller V, Lemker T, Lingl A, Weidner C, Coskun U, Gruber G. Bioenergetics of archaea: ATP synthesis under harsh environmental conditions. J Mol Microbiol Biotechnol. 2005;10(2-4):167-80. PMID:16645313 doi:10.1159/000091563
Proteopedia Page Contributors and Editors (what is this?)
Kaitlin Chase MacCulloch, Michal Harel, Alexander Berchansky