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  • Author: Rubinstein JL
  • References

Author: Rubinstein JL


References 31 references


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  • Bickers SC, et al. (2024) Structure of a dimeric full-length ABC transporter. Nat Commun 15(1):9946 PMID:39550367
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  • Lobez AP, et al. (2024) Electron transfer in the respiratory chain at low salinity. Nat Commun 15(1):8241 PMID:39300056
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  • Wang H, et al. (2024) Structure of yeast RAVE bound to a partial V1 complex. Proc Natl Acad Sci U S A 121(50):e2414511121 PMID:39625975
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  • Wang H and Rubinstein JL (2023) CryoEM of V-ATPases: Assembly, disassembly, and inhibition. Curr Opin Struct Biol 80:102592 PMID:37272327
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  • Wang H, et al. (2023) Structural basis of V-ATPase VO region assembly by Vma12p, 21p, and 22p. Proc Natl Acad Sci U S A 120(6):e2217181120 PMID:36724250
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  • Guo H and Rubinstein JL (2022) Structure of ATP synthase under strain during catalysis. Nat Commun 13(1):2232 PMID:35468906
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  • Keon KA, et al. (2022) Cryo-EM of the Yeast VO Complex Reveals Distinct Binding Sites for Macrolide V-ATPase Inhibitors. ACS Chem Biol 17(3):619-628 PMID:35148071
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  • Tan YZ, et al. (2022) CryoEM of endogenous mammalian V-ATPase interacting with the TLDc protein mEAK-7. Life Sci Alliance 5(11) PMID:35794005
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  • Tan YZ, et al. (2022) Structure of V-ATPase from citrus fruit. Structure 30(10):1403-1410.e4 PMID:36041457
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  • Vasanthakumar T, et al. (2022) Coordinated conformational changes in the V1 complex during V-ATPase reversible dissociation. Nat Struct Mol Biol 29(5):430-439 PMID:35469063
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  • Bickers SC, et al. (2021) Structure of Ycf1p reveals the transmembrane domain TMD0 and the regulatory region of ABCC transporters. Proc Natl Acad Sci U S A 118(21) PMID:34021087
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  • Moe A, et al. (2021) Cryo-EM structure and kinetics reveal electron transfer by 2D diffusion of cytochrome c in the yeast III-IV respiratory supercomplex. Proc Natl Acad Sci U S A 118(11) PMID:33836592
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  • Abbas YM, et al. (2020) Structure of V-ATPase from the mammalian brain. Science 367(6483):1240-1246 PMID:32165585
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  • Vasanthakumar T and Rubinstein JL (2020) Structure and Roles of V-type ATPases. Trends Biochem Sci 45(4):295-307 PMID:32001091
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  • Vasanthakumar T, et al. (2019) Structural comparison of the vacuolar and Golgi V-ATPases from Saccharomyces cerevisiae. Proc Natl Acad Sci U S A 116(15):7272-7277 PMID:30910982
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  • Guo H, et al. (2017) Atomic model for the dimeric FO region of mitochondrial ATP synthase. Science 358(6365):936-940 PMID:29074581
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  • Zhao J, et al. (2017) Molecular basis for the binding and modulation of V-ATPase by a bacterial effector protein. PLoS Pathog 13(6):e1006394 PMID:28570695
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  • Mazhab-Jafari MT, et al. (2016) Atomic model for the membrane-embedded VO motor of a eukaryotic V-ATPase. Nature 539(7627):118-122 PMID:27776355
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  • Schep DG, et al. (2016) Models for the a subunits of the Thermus thermophilus V/A-ATPase and Saccharomyces cerevisiae V-ATPase enzymes by cryo-EM and evolutionary covariance. Proc Natl Acad Sci U S A 113(12):3245-50 PMID:26951669
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  • Bueler SA and Rubinstein JL (2015) Vma9p need not be associated with the yeast V-ATPase for fully-coupled proton pumping activity in vitro. Biochemistry 54(3):853-8 PMID:25546637
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  • Pimentel-Elardo SM, et al. (2015) Activity-Independent Discovery of Secondary Metabolites Using Chemical Elicitation and Cheminformatic Inference. ACS Chem Biol 10(11):2616-23 PMID:26352211
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  • Rubinstein JL and Brubaker MA (2015) Alignment of cryo-EM movies of individual particles by optimization of image translations. J Struct Biol 192(2):188-95 PMID:26296328
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  • Zhao J, et al. (2015) Electron cryomicroscopy observation of rotational states in a eukaryotic V-ATPase. Nature 521(7551):241-5 PMID:25971514
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  • Smith MT and Rubinstein JL (2014) Structural biology. Beyond blob-ology. Science 345(6197):617-9 PMID:25104368
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  • Hosokawa H, et al. (2013) The N termini of a-subunit isoforms are involved in signaling between vacuolar H+-ATPase (V-ATPase) and cytohesin-2. J Biol Chem 288(8):5896-913 PMID:23288846
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  • Benlekbir S, et al. (2012) Structure of the vacuolar-type ATPase from Saccharomyces cerevisiae at 11-Å resolution. Nat Struct Mol Biol 19(12):1356-62 PMID:23142977
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  • Rujiviphat J, et al. (2009) Phospholipid association is essential for dynamin-related protein Mgm1 to function in mitochondrial membrane fusion. J Biol Chem 284(42):28682-6 PMID:19703904
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  • Bueler SA and Rubinstein JL (2008) Location of subunit d in the peripheral stalk of the ATP synthase from Saccharomyces cerevisiae. Biochemistry 47(45):11804-10 PMID:18937496
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  • Lau WC, et al. (2008) Cryo-EM structure of the yeast ATP synthase. J Mol Biol 382(5):1256-64 PMID:18722382
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  • Rubinstein JL, et al. (2005) ATP synthase from Saccharomyces cerevisiae: location of subunit h in the peripheral stalk region. J Mol Biol 345(3):513-20 PMID:15581895
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