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Characterization of a highly diverged mitochondrial ATP synthase Fo subunit in Trypanosoma brucei

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Characterization of a highly diverged mitochondrial ATP synthase Fo subunit in Trypanosoma brucei. / Dewar, Caroline E.; Oeljeklaus, Silke; Wenger, Christoph et al.
In: Journal of Biological Chemistry, Vol. 298, No. 4, 101829, 30.04.2022.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Dewar, CE, Oeljeklaus, S, Wenger, C, Warscheid, B & Schneider, A 2022, 'Characterization of a highly diverged mitochondrial ATP synthase Fo subunit in Trypanosoma brucei', Journal of Biological Chemistry, vol. 298, no. 4, 101829. https://doi.org/10.1016/J.JBC.2022.101829

APA

Dewar, C. E., Oeljeklaus, S., Wenger, C., Warscheid, B., & Schneider, A. (2022). Characterization of a highly diverged mitochondrial ATP synthase Fo subunit in Trypanosoma brucei. Journal of Biological Chemistry, 298(4), Article 101829. https://doi.org/10.1016/J.JBC.2022.101829

Vancouver

Dewar CE, Oeljeklaus S, Wenger C, Warscheid B, Schneider A. Characterization of a highly diverged mitochondrial ATP synthase Fo subunit in Trypanosoma brucei. Journal of Biological Chemistry. 2022 Apr 30;298(4):101829. Epub 2022 Apr 13. doi: 10.1016/J.JBC.2022.101829

Author

Dewar, Caroline E. ; Oeljeklaus, Silke ; Wenger, Christoph et al. / Characterization of a highly diverged mitochondrial ATP synthase Fo subunit in Trypanosoma brucei. In: Journal of Biological Chemistry. 2022 ; Vol. 298, No. 4.

Bibtex

@article{102c3ba056b24492b02304c1654d1c6f,
title = "Characterization of a highly diverged mitochondrial ATP synthase Fo subunit in Trypanosoma brucei",
abstract = "The mitochondrial F1Fo ATP synthase of the parasite Trypanosoma brucei has been previously studied in detail. This unusual enzyme switches direction in functionality during the life cycle of the parasite, acting as an ATP synthase in the insect stages, and as an ATPase to generate mitochondrial membrane potential in the mammalian bloodstream stages. Whereas the trypanosome F1 moiety is relatively highly conserved in structure and composition, the Fo subcomplex and the peripheral stalk have been shown to be more variable. Interestingly, a core subunit of the latter, the normally conserved subunit b, has been resistant to identification by sequence alignment or biochemical methods. Here, we identified a 17 kDa mitochondrial protein of the inner membrane, Tb927.8.3070, that is essential for normal growth, efficient oxidative phosphorylation, and membrane potential maintenance. Pull-down experiments and native PAGE analysis indicated that the protein is both associated with the F1Fo ATP synthase and integral to its assembly. In addition, its knockdown reduced the levels of Fo subunits, but not those of F1, and disturbed the cell cycle. Finally, analysis of structural homology using the HHpred algorithm showed that this protein has structural similarities to Fo subunit b of other species, indicating that this subunit may be a highly diverged form of the elusive subunit b.",
author = "Dewar, {Caroline E.} and Silke Oeljeklaus and Christoph Wenger and Bettina Warscheid and Andre Schneider",
year = "2022",
month = apr,
day = "30",
doi = "10.1016/J.JBC.2022.101829",
language = "English",
volume = "298",
journal = "Journal of Biological Chemistry",
issn = "0021-9258",
publisher = "American Society for Biochemistry and Molecular Biology Inc.",
number = "4",

}

RIS

TY - JOUR

T1 - Characterization of a highly diverged mitochondrial ATP synthase Fo subunit in Trypanosoma brucei

AU - Dewar, Caroline E.

AU - Oeljeklaus, Silke

AU - Wenger, Christoph

AU - Warscheid, Bettina

AU - Schneider, Andre

PY - 2022/4/30

Y1 - 2022/4/30

N2 - The mitochondrial F1Fo ATP synthase of the parasite Trypanosoma brucei has been previously studied in detail. This unusual enzyme switches direction in functionality during the life cycle of the parasite, acting as an ATP synthase in the insect stages, and as an ATPase to generate mitochondrial membrane potential in the mammalian bloodstream stages. Whereas the trypanosome F1 moiety is relatively highly conserved in structure and composition, the Fo subcomplex and the peripheral stalk have been shown to be more variable. Interestingly, a core subunit of the latter, the normally conserved subunit b, has been resistant to identification by sequence alignment or biochemical methods. Here, we identified a 17 kDa mitochondrial protein of the inner membrane, Tb927.8.3070, that is essential for normal growth, efficient oxidative phosphorylation, and membrane potential maintenance. Pull-down experiments and native PAGE analysis indicated that the protein is both associated with the F1Fo ATP synthase and integral to its assembly. In addition, its knockdown reduced the levels of Fo subunits, but not those of F1, and disturbed the cell cycle. Finally, analysis of structural homology using the HHpred algorithm showed that this protein has structural similarities to Fo subunit b of other species, indicating that this subunit may be a highly diverged form of the elusive subunit b.

AB - The mitochondrial F1Fo ATP synthase of the parasite Trypanosoma brucei has been previously studied in detail. This unusual enzyme switches direction in functionality during the life cycle of the parasite, acting as an ATP synthase in the insect stages, and as an ATPase to generate mitochondrial membrane potential in the mammalian bloodstream stages. Whereas the trypanosome F1 moiety is relatively highly conserved in structure and composition, the Fo subcomplex and the peripheral stalk have been shown to be more variable. Interestingly, a core subunit of the latter, the normally conserved subunit b, has been resistant to identification by sequence alignment or biochemical methods. Here, we identified a 17 kDa mitochondrial protein of the inner membrane, Tb927.8.3070, that is essential for normal growth, efficient oxidative phosphorylation, and membrane potential maintenance. Pull-down experiments and native PAGE analysis indicated that the protein is both associated with the F1Fo ATP synthase and integral to its assembly. In addition, its knockdown reduced the levels of Fo subunits, but not those of F1, and disturbed the cell cycle. Finally, analysis of structural homology using the HHpred algorithm showed that this protein has structural similarities to Fo subunit b of other species, indicating that this subunit may be a highly diverged form of the elusive subunit b.

UR - https://publons.com/wos-op/publon/71745910/

U2 - 10.1016/J.JBC.2022.101829

DO - 10.1016/J.JBC.2022.101829

M3 - Journal article

VL - 298

JO - Journal of Biological Chemistry

JF - Journal of Biological Chemistry

SN - 0021-9258

IS - 4

M1 - 101829

ER -