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Unikátne štruktúrne a funkčné vlastnosti A1A0 ATPáz/syntáz z Archaea
[Unique structural and functional properties of A1A0 ATPase/synthase from Archaea]
Monika Vidová, Peter Šmigáň
Jazyk slovenština Země Česko
- MeSH
- adenosintrifosfatasy fyziologie genetika chemie MeSH
- Archaea enzymologie fyziologie MeSH
- vztahy mezi strukturou a aktivitou MeSH
ATP synthases are present in every life form being the key enzymes of cellular bioenergetics. The enzyme from the Archaea forms a new class of ATPases, A1A0 ATP synthase. This enzyme has unusual structural and functional features, which separate it from F1F0 and V1V0 ATPases as a distinct enzyme class ? A1A0 ATPase/ synthase. It contains the transmembrane A0 domain and the cytoplasmatic A1 domain, including a specific site for ATP synthesis. The A1 domain is linked to the A0 part by D-subunit, a structural and functional analog of the ?- subunit of F1F0 ATPase. The genomic approach to the study of this enzyme combined with methods of molecular biology, biochemistry and structural biology, will extend the study of A1A0 ATPase/synthase and ATP synthesis to the molecular level.
Unique structural and functional properties of A1A0 ATPase/synthase from Archaea
Lit.: 38
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- $a Unique structural and functional properties of A1A0 ATPase/synthase from Archaea
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- $a ATP synthases are present in every life form being the key enzymes of cellular bioenergetics. The enzyme from the Archaea forms a new class of ATPases, A1A0 ATP synthase. This enzyme has unusual structural and functional features, which separate it from F1F0 and V1V0 ATPases as a distinct enzyme class ? A1A0 ATPase/ synthase. It contains the transmembrane A0 domain and the cytoplasmatic A1 domain, including a specific site for ATP synthesis. The A1 domain is linked to the A0 part by D-subunit, a structural and functional analog of the ?- subunit of F1F0 ATPase. The genomic approach to the study of this enzyme combined with methods of molecular biology, biochemistry and structural biology, will extend the study of A1A0 ATPase/synthase and ATP synthesis to the molecular level.
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