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  • About
  • The Global ETD Search service is a free service for researchers to find electronic theses and dissertations. This service is provided by the Networked Digital Library of Theses and Dissertations.
    Our metadata is collected from universities around the world. If you manage a university/consortium/country archive and want to be added, details can be found on the NDLTD website.
1

Studies of the assembly pathway of human ATP synthase

Douglas, Corsten Perrie Louise Claire January 2017 (has links)
Human mitochondrial ATP synthase is an enzyme containing 18 unlike subunits located in the inner mitochondrial membrane (IMM), where the catalytic F1 domain extends into the mitochondrial matrix and the FO domain, which contains the c8-ring rotor, the a-subunit and the supernumerary subunits, is anchored in the IMM. All the subunits, apart from the a- and A6L-subunits, are encoded in the nucleus and require transport into the mitochondria before being assembled. The a- and A6L-subunits are encoded on the mitochondrial genome. The respiratory complexes generate the proton motive force (PMF), which ATP synthase uses to generate ATP from ADP and Pi. Rotation of the α- and β-subunits with the central stalk γ-, δ- and ε-subunits is prevented by coupling the F1 domain to the FO domain via the peripheral stalk (the OSCP-, F6-, d- and b-subunits). ATP hydrolysis is prevented by the natural inhibitor of the enzyme, IF1, binding to the F1 domain. In addition to the aand, b-subunits, the FO domain contains the c8-ring and six supernumerary subunits not involved in the catalytic activity of ATP synthase. The roles of five of these subunits in the assembly of ATP synthase, the e-, f-, g-, DAPIT- and 6.8 kDa proteolipid-subunits, were investigated by suppressing or disrupting their expression individually. The e-subunit is the first of the supernumerary subunits to assemble, then the g-subunit followed by the f-, 6.8 kDa proteolipid- and DAPIT-subunits. All five supernumerary subunits investigated were required to facilitate the dimerisation and oligomerisation of ATP synthase. The e-, f- and g-subunits were found to be important for maintaining mitochondrial respiratory capacity.
2

Biochemical and molecular genetic studies on mitochondrial ATPase

Connerton, I. January 1986 (has links)
No description available.
3

Der Membranteil von H+-ATPasen Struktur des CF0 aus Spinatchloroplasten, Funktion des EF0 aus E.coli /

Eisfeld, Jochen. January 1900 (has links) (PDF)
Freiburg (Breisgau), Univ., Diss., 2003. / Computerdatei im Fernzugriff.
4

The osteoclast H⁺-ATPase isolation and initial characterization /

Mattsson, Jan P. January 1995 (has links)
Thesis (doctoral)--University of Göteborg, 1995. / Includes bibliographical references.
5

Isolation and Functional Studies of The F-type ATP Synthase from Spinach Chloroplasts and Heliobacterium modesticaldum

January 2015 (has links)
abstract: Adenosine triphosphate (ATP) is the universal chemical energy currency in most living cells, used to power many cellular reactions and generated by an enzyme supercomplex known as the ATP synthase, consisting of a hydrophilic F1 subcomplex and a membrane-bound FO subcomplex. Driven by the electrochemical gradient generated by the respiratory or photosynthetic electron transport chain, the rotation of the FO domain drives movements of the central stalk in response to conformational changes in the F1 domain, in which the physical energy is converted into chemical energy through the condensation of ADP and Pi to ATP. The exact mechanism how ATP synthesis is coupled to proton translocation is not known as no structure of the intact ATP-synthase nor the intact FO subcomplex has been determined to date. Structural information may shed light on these mechanisms and aid in understanding how structural changed relate to its coupling to ATP synthesis. The work in this thesis has successful established a defined large-scale CF1FO isolation procedure resulting in high purity and high yield of this complex from spinach thylakoid membranes by incorporating a unique combination of biochemical methods will form the basis for the subsequent structural determination of this complex. Isolation began from the isolation of intact chloroplasts and the separation of intact thylakoid membranes. Both native and denaturing electrophoresis analyses clearly demonstrated that the purified CF1FO retains its quaternary structure consisting of the CF1 and CFO subcomplexes and nine subunits (five F1 subunits: α, β, γ, δ and ε, and four FO subunits: a, b, b' and c). Moreover, both ATP synthesis and hydrolysis activities were successfully detected using protein reconstitution in combination with acid-base incubation and in-gel ATPase assays, respectively. Furthermore, the ATP-synthase of H. modesticaldum, an anaerobic photosynthetic bacterium, was also isolated and characterized at the biochemical level. These biochemical characterizations directly influenced recent studies on the high-resolution structure determination of intact CF1FO using electron crystallography on two-dimensional crystals. The availability of the functionally intact CF1FO purified at a large scale will lead to studies that investigate the possible crystallization conditions to ultimately determine its three-dimensional structure at atomic resolution. / Dissertation/Thesis / Doctoral Dissertation Biochemistry 2015
6

NMR studies of oxidative phosphorylation

Carr, M. D. January 1987 (has links)
No description available.
7

An investigation of chloroplast ATPase structure and function using anti-peptide antibodies

Turton, Janet Susan January 1995 (has links)
No description available.
8

Function of the INA complex in assembly of the mitochondrial oxidative phosphorylation system

Naumenko, Nataliia 19 June 2017 (has links)
No description available.
9

Biogenesis of mitochondrial ATP synthase and its dysfunction leading to diseases / Biogenese de l’ATP synthase mitochondriale et des dysfonctions générant des maladies

Kabala, Anna Magdalena 18 December 2014 (has links)
La F1FO-ATP synthase mitochondriale produit la majorité de l’énergie cellulaire chezles eucaryotes aérobes sous forme d’ATP par le processus des oxydations phosphorylantes.Chez la plupart des espèces, cette enzyme possède une origine génétique double, nucléaire etmitochondriale. Dans la première partie de ce travail, je décris la construction de modèles delevure de mutations du gène mitochondrial ATP6 de l’ATP synthase découvertes chez despatients atteints de maladies neurologiques (9185T>C and 9191T>C) ou dans des tumeurs(8716A>G, 8914C>A, 8932C>T, 8953A>G and 9131T>C). Le gène ATP6 code une sousunitéessentielle (a/6) du domaine FO de l’ATP synthase. J’ai trouvé que la mutation 9185T>Cn’affecte pas l’assemblage de l’ATP synthase, mais conduit à une diminution de la vitesse desynthèse d’ATP d’environ 30%. La mutation 9191T>C empêche presque entièrementl’incorporation de la sous-unité a/6 dans l’ATP synthase. Les cinq mutations identifiées dansles tumeurs ont un effet modeste à nul, indiquant que ces mutations ne favorisent pas latumorigenèse en affectant le processus énergétique mitochondrial, comme évoquéprécédemment. J’ai ensuite étudié la régulation de la synthèse des sous-unités a/6 et 9 dans lesmitochondries de levures. La sous-unité 9 est présente sous la forme d’un anneau de 10 copiesqui interagit avec la sous-unité 6. Durant la catalyse, la rotation de cet anneau provoque deschangements conformationnels favorisant la synthèse d’ATP dans le secteur F1 de l’ATPsynthase. Je montre que la synthèse de ces protéines est couplée à leur assemblage, demanière à ce qu’elles soient produites dans une stoechiométrie adéquate et pour éviterl’accumulation d’intermédiaires d’ATP synthase potentiellement délétères / Mitochondrial F1FO-ATP synthase produces most of the cellular energy in aerobiceukaryotes under the form of ATP in the process of oxidative phosphorylation. This enzymehas in most species a double genetic origin, nuclear and mitochondrial. In the first part of thiswork, I describe the construction of yeast models of ATP synthase mutations in themitochondrial ATP6 gene, that have been found in patients presenting with neurologicaldisorders (9185T>C and 9191T>C) and in tumors (8716A>G, 8914C>A, 8932C>T,8953A>G and 9131T>C). The ATP6 gene encodes an essential subunit (called a/6) of theATP synthase proton-translocating domain (FO). The 9185T>C mutation had no effect on theassembly of ATP synthase, but reduces the rate of ATP synthesis by 30%. The 9191T>Cmutation almost completely prevented incorporation of the subunit a/6 into the ATP synthase.The five mutations found in tumors had modest, if at all, effect, indicating that thesemutations probably do not favor tumorigenesis, as was hypothesized. In the second part of mythesis, I studied the regulation of synthesis of subunits a/6 and 9 in yeast mitochondria. Thesubunit 9 is present in 10 copies forming a ring that interacts with subunit 6. Protonmovements through the FO induce the rotation of the subunit 9-ring, which results inconformational changes that promote ATP synthesis in the catalytic sector (F1) of ATPsynthase. I discovered mechanisms that enable the coupling of the synthesis of these proteinsto their assembly, as a means to ensure the production of subunits 6 and 9 in the rightstoichiometry and to avoid accumulation of potentially harmful assembly intermediates of theATP synthase.
10

Effect of Structural Modulation of Polyphenolic Compounds on the Inhibition of Escherichia coli ATP Synthase

Ahmad, Zulfiqar, Ahmad, Mubeen, Okafor, Florence, Jones, Jeanette, Abunameh, Abdelmajeed, Cheniya, Rakesh P., Kady, Ismail O. 01 April 2012 (has links)
In this paper we present the inhibitory effect of a variety of structurally modulated/modified polyphenolic compounds on purified F 1 or membrane bound F 1F o Escherichia coli ATP synthase. Structural modulation of polyphenols with two phenolic rings inhibited ATP synthase essentially completely; one or three ringed polyphenols individually or fused together inhibited partially. We found that the position of hydroxyl and nitro groups plays critical role in the degree of binding and inhibition of ATPase activity. The extended positioning of hydroxyl groups on imino diphenolic compounds diminished the inhibition and abridged position enhanced the inhibition potency. This was contrary to the effect by simple single ringed phenolic compounds where extended positioning of hydroxyl group was found to be effective for inhibition. Also, introduction of nitro group augmented the inhibition on molar scale in comparison to the inhibition by resveratrol but addition of phosphate group did not. Similarly, aromatic diol or triol with rigid or planar ring structure and no free rotation poorly inhibited the ATPase activity. The inhibition was identical in both F 1F o membrane preparations as well as in isolated purified F 1 and was reversible in all cases. Growth assays suggested that modulated compounds used in this study inhibited F 1-ATPase as well as ATP synthesis nearly equally.

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