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Defining steps in RAVE-catalyzed V-ATPase assembly using purified RAVE and V-ATPase subcomplexes

The vacuolar H(+)-ATPase (V-ATPase) is a highly conserved proton pump responsible for the acidification of intracellular organelles in virtually all eukaryotic cells. V-ATPases are regulated by the rapid and reversible disassembly of the peripheral V(1) domain from the integral membrane V(o) domain,...

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Autores principales: Jaskolka, Michael C., Tarsio, Maureen, Smardon, Anne M., Khan, Md. Murad, Kane, Patricia M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8138766/
https://www.ncbi.nlm.nih.gov/pubmed/33895134
http://dx.doi.org/10.1016/j.jbc.2021.100703
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author Jaskolka, Michael C.
Tarsio, Maureen
Smardon, Anne M.
Khan, Md. Murad
Kane, Patricia M.
author_facet Jaskolka, Michael C.
Tarsio, Maureen
Smardon, Anne M.
Khan, Md. Murad
Kane, Patricia M.
author_sort Jaskolka, Michael C.
collection PubMed
description The vacuolar H(+)-ATPase (V-ATPase) is a highly conserved proton pump responsible for the acidification of intracellular organelles in virtually all eukaryotic cells. V-ATPases are regulated by the rapid and reversible disassembly of the peripheral V(1) domain from the integral membrane V(o) domain, accompanied by release of the V(1) C subunit from both domains. Efficient reassembly of V-ATPases requires the Regulator of the H(+)-ATPase of Vacuoles and Endosomes (RAVE) complex in yeast. Although a number of pairwise interactions between RAVE and V-ATPase subunits have been mapped, the low endogenous levels of the RAVE complex and lethality of constitutive RAV1 overexpression have hindered biochemical characterization of the intact RAVE complex. We describe a novel inducible overexpression system that allows purification of native RAVE and RAVE–V(1) complexes. Both purified RAVE and RAVE–V(1) contain substoichiometric levels of subunit C. RAVE–V(1) binds tightly to expressed subunit C in vitro, but binding of subunit C to RAVE alone is weak. Neither RAVE nor RAVE–V(1) interacts with the N-terminal domain of V(o) subunit Vph1 in vitro. RAVE–V(1) complexes, like isolated V(1), have no MgATPase activity, suggesting that RAVE cannot reverse V(1) inhibition generated by rotation of subunit H and entrapment of MgADP that occur upon disassembly. However, purified RAVE can accelerate reassembly of V(1) carrying a mutant subunit H incapable of inhibition with V(o) complexes reconstituted into lipid nanodiscs, consistent with its catalytic activity in vivo. These results provide new insights into the possible order of events in V-ATPase reassembly and the roles of the RAVE complex in each event.
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spelling pubmed-81387662021-05-24 Defining steps in RAVE-catalyzed V-ATPase assembly using purified RAVE and V-ATPase subcomplexes Jaskolka, Michael C. Tarsio, Maureen Smardon, Anne M. Khan, Md. Murad Kane, Patricia M. J Biol Chem Research Article The vacuolar H(+)-ATPase (V-ATPase) is a highly conserved proton pump responsible for the acidification of intracellular organelles in virtually all eukaryotic cells. V-ATPases are regulated by the rapid and reversible disassembly of the peripheral V(1) domain from the integral membrane V(o) domain, accompanied by release of the V(1) C subunit from both domains. Efficient reassembly of V-ATPases requires the Regulator of the H(+)-ATPase of Vacuoles and Endosomes (RAVE) complex in yeast. Although a number of pairwise interactions between RAVE and V-ATPase subunits have been mapped, the low endogenous levels of the RAVE complex and lethality of constitutive RAV1 overexpression have hindered biochemical characterization of the intact RAVE complex. We describe a novel inducible overexpression system that allows purification of native RAVE and RAVE–V(1) complexes. Both purified RAVE and RAVE–V(1) contain substoichiometric levels of subunit C. RAVE–V(1) binds tightly to expressed subunit C in vitro, but binding of subunit C to RAVE alone is weak. Neither RAVE nor RAVE–V(1) interacts with the N-terminal domain of V(o) subunit Vph1 in vitro. RAVE–V(1) complexes, like isolated V(1), have no MgATPase activity, suggesting that RAVE cannot reverse V(1) inhibition generated by rotation of subunit H and entrapment of MgADP that occur upon disassembly. However, purified RAVE can accelerate reassembly of V(1) carrying a mutant subunit H incapable of inhibition with V(o) complexes reconstituted into lipid nanodiscs, consistent with its catalytic activity in vivo. These results provide new insights into the possible order of events in V-ATPase reassembly and the roles of the RAVE complex in each event. American Society for Biochemistry and Molecular Biology 2021-04-22 /pmc/articles/PMC8138766/ /pubmed/33895134 http://dx.doi.org/10.1016/j.jbc.2021.100703 Text en © 2021 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Jaskolka, Michael C.
Tarsio, Maureen
Smardon, Anne M.
Khan, Md. Murad
Kane, Patricia M.
Defining steps in RAVE-catalyzed V-ATPase assembly using purified RAVE and V-ATPase subcomplexes
title Defining steps in RAVE-catalyzed V-ATPase assembly using purified RAVE and V-ATPase subcomplexes
title_full Defining steps in RAVE-catalyzed V-ATPase assembly using purified RAVE and V-ATPase subcomplexes
title_fullStr Defining steps in RAVE-catalyzed V-ATPase assembly using purified RAVE and V-ATPase subcomplexes
title_full_unstemmed Defining steps in RAVE-catalyzed V-ATPase assembly using purified RAVE and V-ATPase subcomplexes
title_short Defining steps in RAVE-catalyzed V-ATPase assembly using purified RAVE and V-ATPase subcomplexes
title_sort defining steps in rave-catalyzed v-atpase assembly using purified rave and v-atpase subcomplexes
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8138766/
https://www.ncbi.nlm.nih.gov/pubmed/33895134
http://dx.doi.org/10.1016/j.jbc.2021.100703
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