Bacterial F-type ATP synthases follow a well-choreographed assembly pathway.


Journal

Nature communications
ISSN: 2041-1723
Titre abrégé: Nat Commun
Pays: England
ID NLM: 101528555

Informations de publication

Date de publication:
08 03 2022
Historique:
received: 12 01 2021
accepted: 04 02 2022
entrez: 9 3 2022
pubmed: 10 3 2022
medline: 14 4 2022
Statut: epublish

Résumé

F-type ATP synthases are multiprotein complexes composed of two separate coupled motors (F

Identifiants

pubmed: 35260553
doi: 10.1038/s41467-022-28828-1
pii: 10.1038/s41467-022-28828-1
pmc: PMC8904574
doi:

Substances chimiques

Adenosine Triphosphate 8L70Q75FXE
Adenosine Triphosphatases EC 3.6.1.-
Mitochondrial Proton-Translocating ATPases EC 3.6.3.-
Proton-Translocating ATPases EC 3.6.3.14

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

1218

Informations de copyright

© 2022. The Author(s).

Références

Andries, K. A Diarylquinoline drug active on the ATP synthase of Mycobacterium tuberculosis. Science 307, 223–227 (2005).
pubmed: 15591164 doi: 10.1126/science.1106753
De Jonge, M. R., Koymans, L. H. M., Guillemont, J. E. G., Koul, A. & Andries, K. A computational model of the inhibition of Mycobacterium tuberculosis ATPase by a new drug candidate R207910. Proteins 67, 971–980 (2007).
pubmed: 17387738 doi: 10.1002/prot.21376
de Vries, D. D., van Engelen, B. G. M., Gabreëls, F. J. M., Ruitenbeek, W. & van Oost, B. A. A second missense mutation in the mitochondrial ATPase 6 gene in Leigh’s syndrome. Ann. Neurol. 34, 410–412 (1993).
pubmed: 8395787 doi: 10.1002/ana.410340319
Hong, S. & Pedersen, P. L. ATP synthase and the actions of inhibitors utilized to study its roles in human health, disease, and other scientific areas. Microbiol. Mol. Biol. Rev. 72, 590–641 (2008).
pubmed: 19052322 pmcid: 2593570 doi: 10.1128/MMBR.00016-08
Cha, M. Y. et al. Mitochondrial ATP synthase activity is impaired by suppressed O-GlcNAcylation in Alzheimer’s disease. Hum. Mol. Genet. 24, 6492–6504 (2015).
pubmed: 26358770 pmcid: 5007609 doi: 10.1093/hmg/ddv358
Miller, J. H., Rajapakshe, K. I., Infante, H. L. & Claycomb, J. R. Electric field driven torque in ATP synthase. PLoS One 8, e74978 (2013).
pubmed: 24040370 pmcid: 3769276 doi: 10.1371/journal.pone.0074978
Deckers-Hebestreit, G. Assembly of the Escherichia coli F
pubmed: 24059521 doi: 10.1042/BST20130096
Houštěk, J., Mráček, T., Vojtíšková, A. & Zeman, J. Mitochondrial diseases and ATPase defects of nuclear origin. Biochim. Biophys. Acta–Bioenerg. 1658, 115–121 (2004).
doi: 10.1016/j.bbabio.2004.04.012
Mohanty, S. et al. Structural basis for a unique ATP synthase core complex from Nanoarcheaum equitans. J. Biol. Chem. 290, 27280–27296 (2015).
pubmed: 26370083 pmcid: 4646375 doi: 10.1074/jbc.M115.677492
Cross, R. L. & Müller, V. The evolution of A-, F-, and V-type ATP synthases and ATPases: reversals in function and changes in the H
pubmed: 15473999 doi: 10.1016/j.febslet.2004.08.065
Jiang, W., Hermolin, J. & Fillingame, R. H. The preferred stoichiometry of c subunits in the rotary motor sector of Escherichia coli ATP synthase is 10. Proc. Natl. Acad. Sci. 98, 4966–4971 (2001).
pubmed: 11320246 pmcid: 33147 doi: 10.1073/pnas.081424898
Ballhausen, B., Altendorf, K. & Deckers-Hebestreit, G. Constant c
pubmed: 19181809 pmcid: 2655506 doi: 10.1128/JB.01390-08
Mitome, N., Suzuki, T., Hayashi, S. & Yoshida, M. Thermophilic ATP synthase has a decamer c-ring: Indication of noninteger 10:3 H
pubmed: 15302927 pmcid: 514450 doi: 10.1073/pnas.0403545101
Pogoryelov, D. et al. The c
pubmed: 16170308 pmcid: 1371026 doi: 10.1038/sj.embor.7400517
Preiss, L. et al. Structure of the mycobacterial ATP synthase F
doi: 10.1126/sciadv.1500106
Watt, I. N., Montgomery, M. G., Runswick, M. J., Leslie, A. G. W. & Walker, J. E. Bioenergetic cost of making an adenosine triphosphate molecule in animal mitochondria. Proc. Natl. Acad. Sci. 18, 526–535 (2010).
Schulz, S., Wilkes, M., Mills, D. J., Kühlbrandt, W. & Meier, T. Molecular architecture of the N‐type ATPase rotor ring from Burkholderia pseudomallei. EMBO Rep. 18, 526–535 (2017).
pubmed: 28283532 pmcid: 5376962 doi: 10.15252/embr.201643374
Hossain, M. D., Furuike, S., Maki, Y., Adachi, K. & Suzuki, T. Neither helix in the coiled coil region of the axle of F
pubmed: 18708468 pmcid: 2576389 doi: 10.1529/biophysj.108.140061
Boyer, P. D. The ATP synthase—a splendid molecular machine. Annu. Rev. Biochem. 66, 717–749 (1997).
doi: 10.1146/annurev.biochem.66.1.717
Yoshida, M., Okamoto, H., Sone, N., Hirata, H. & Kagawa, Y. Reconstitution of thermostable ATPase capable of energy coupling from its purified subunits. Proc. Natl. Acad. Sci. 74, 936–940 (1977).
pubmed: 139610 pmcid: 430538 doi: 10.1073/pnas.74.3.936
Sternweis, P. C. The epsilon subunit of Escherichia coli coupling factor 1 is required for its binding to the cytoplasmic membrane. J. Biol. Chem. 253, 3123–3128 (1978).
pubmed: 147871 doi: 10.1016/S0021-9258(17)40811-8
Jounouchi, M. et al. Role of the amino terminal region of the ε subunit of Escherichia coli H
pubmed: 1530778 doi: 10.1016/0003-9861(92)90054-Z
Smith, J. B., Sternweis, P. C. & Heppel, L. A. Partial purification of active delta and epsilon subunits of the membrane ATPase from Escherichia coli. J. Supramol. Cell. Biochem. 3, 248–255 (1975).
Smith, J. B. & Sternweis, P. C. Purification of membrane attachment and inhibitory subunits of the proton translocating adenosine triphosphatase from Escherichia coli. Biochemistry 16, 306–311 (1977).
pubmed: 138433 doi: 10.1021/bi00621a023
Laget, P. P. & Smith, J.B. lnhibitory properties of endogenous subunit ε in the Escherichia coli F
pubmed: 161698 doi: 10.1016/0003-9861(79)90222-4
Brandt, K. et al. Functional production of the Na
pubmed: 23054076 doi: 10.1007/s10863-012-9474-8
Fritz, M. et al. An intermediate step in the evolution of ATPases - a hybrid F
pubmed: 18355313 doi: 10.1111/j.1742-4658.2008.06354.x
Yi, L., Celebi, N., Chen, M. & Dalbey, R. E. Sec/SRP requirements and energetics of membrane insertion of subunits a, b, and c of the Escherichia coli F
pubmed: 15263011 doi: 10.1074/jbc.M405490200
Hermolin, J. & Fillingame, R. H. Assembly of F
pubmed: 7852354 doi: 10.1074/jbc.270.6.2815
Rak, M., Gokova, S. & Tzagoloff, A. Modular assembly of yeast mitochondrial ATP synthase. EMBO J. 30, 920–930 (2011).
pubmed: 21266956 pmcid: 3049208 doi: 10.1038/emboj.2010.364
Dunn, S. D. & Futai, M. Reconstitution of a functional coupling factor from the isolated subunits of Escherichia coli F
pubmed: 6444218 doi: 10.1016/S0021-9258(19)86271-3
Futai, M. Reconstitution of ATPase activity from the isolated α, β and γ subunits of the coupling factor, F
doi: 10.1016/0006-291X(77)91138-X
Ackerman, S. H. Atp11p and Atp12p are chaperones for F
doi: 10.1016/S0005-2728(02)00262-1
Ahmad, Z., Okafor, F. & Laughlin, T. F. Role of charged residues in the catalytic sites of Escherichia coli ATP synthase. J. Amino Acids 2011, 1–12 (2011).
Senior, A. E., Muharemagić, A. & Wilke-Mounts, S. Assembly of the stator in Escherichia coli ATP synthase. Complexation of α subunit with other F
pubmed: 17176112 doi: 10.1021/bi0619730
Ahmad, Z. & Senior, A. E. Involvement of ATP synthase residues αArg-376, βArg-182, and βLys-155 in P
pubmed: 15642370 doi: 10.1016/j.febslet.2004.12.022
Ahmad, Z. & Senior, A. E. Modulation of charge in the phosphate binding site of Escherichia coli ATP synthase. J. Biol. Chem. 280, 27981–27989 (2005).
pubmed: 15939739 doi: 10.1074/jbc.M503955200
Ahmad, Z. & Senior, A. E. Mutagenesis of residue βArg-246 in the phosphate-binding subdomain of catalytic sites of Escherichia coli F
pubmed: 15150266 doi: 10.1074/jbc.M404621200
Ludlam, A. et al. Chaperones of F
pubmed: 19383603 pmcid: 2719352 doi: 10.1074/jbc.M109.002568
Pícková, A., Potocký, M. & Houštěk, J. Assembly factors of F
pubmed: 15789402 doi: 10.1002/prot.20452
Singh, D., Sielaff, H., Sundararaman, L., Bhushan, S. & Grüber, G. The stimulating role of subunit F in ATPase activity inside the A
pubmed: 26682760 doi: 10.1016/j.bbabio.2015.12.003
Reidlinger, J. & Müller, V. Purification of ATP synthase from Acetobacterium woodii and identification as a Na
pubmed: 8033902 doi: 10.1111/j.1432-1033.1994.tb18992.x
Kato-Yamada, Y. Isolated ε subunit of Bacillus subtilis F
pubmed: 16337201 doi: 10.1016/j.febslet.2005.11.036
Feniouk, B. A., Suzuki, T. & Yoshida, M. The role of subunit epsilon in the catalysis and regulation of F
pubmed: 16701076 doi: 10.1016/j.bbabio.2006.03.022
Kagawa, Y. et al. The αβ complexes of ATP synthase: the α
pubmed: 1429537 doi: 10.1007/BF00762360
Leyva, J. A., Bianchet, M. A. & Amzel, L. M. Understanding ATP synthesis: structure and mechanism of the F
pubmed: 12745923 doi: 10.1080/0968768031000066532
Wong, C. F. et al. A systematic assessment of mycobacterial F
pubmed: 32525613 doi: 10.1111/febs.15440
Tsunoda, S. P. et al. Large conformational changes of the ε subunit in the bacterial F
pubmed: 11381110 pmcid: 34392 doi: 10.1073/pnas.111128098
Peetz, O. et al. LILBID and nESI: different native mass spectrometry techniques as tools in structural biology. J. Am. Soc. Mass Spectrom. 30, 181–191 (2018).
pubmed: 30225732 pmcid: 6318263 doi: 10.1007/s13361-018-2061-4
Morgner, N. & Robinson, C. V. Massign: an assignment strategy for maximizing information from the mass spectra of heterogeneous protein assemblies. Anal. Chem. 84, 2939–2948 (2012).
pubmed: 22409725 doi: 10.1021/ac300056a
Haynes, S. E. et al. Variable-velocity traveling-wave ion mobility separation enhancing peak capacity for data-independent acquisition proteomics. Anal. Chem. 89, 5669–5672 (2017).
pubmed: 28471653 pmcid: 5623091 doi: 10.1021/acs.analchem.7b00112
Eschweiler, J. D., Rabuck-Gibbons, J. N., Tian, Y. & Ruotolo, B. T. CIUSuite: a quantitative analysis package for collision induced unfolding measurements of gas-phase protein ions. Anal. Chem. 87, 11516–11522 (2015).
pubmed: 26489593 doi: 10.1021/acs.analchem.5b03292
Marty, M. T. et al. Bayesian deconvolution of mass and ion mobility spectra: from binary interactions to polydisperse ensembles. Anal. Chem. 87, 4370–4376 (2015).
pubmed: 25799115 pmcid: 4594776 doi: 10.1021/acs.analchem.5b00140

Auteurs

Khanh Vu Huu (K)

Institute of Physical and Theoretical Chemistry, Goethe University Frankfurt/Main, Max-von-Laue-Str. 9, 60438, Frankfurt/Main, Germany.

Rene Zangl (R)

Institute of Physical and Theoretical Chemistry, Goethe University Frankfurt/Main, Max-von-Laue-Str. 9, 60438, Frankfurt/Main, Germany.

Jan Hoffmann (J)

Institute of Physical and Theoretical Chemistry, Goethe University Frankfurt/Main, Max-von-Laue-Str. 9, 60438, Frankfurt/Main, Germany.

Alicia Just (A)

Institute of Physical and Theoretical Chemistry, Goethe University Frankfurt/Main, Max-von-Laue-Str. 9, 60438, Frankfurt/Main, Germany.

Nina Morgner (N)

Institute of Physical and Theoretical Chemistry, Goethe University Frankfurt/Main, Max-von-Laue-Str. 9, 60438, Frankfurt/Main, Germany. morgner@chemie.uni-frankfurt.de.

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