Duelling functions of the V-ATPase.

نویسندگان

  • Cameron C Scott
  • Christin Bissig
  • Jean Gruenberg
چکیده

The V-ATPase, the major cellular proton pump, is comprised of the peripheral sector V1 catalysing ATP hydrolysis and the membrane integral sector V0 translocating protons. Ten years ago, Andreas Mayer’s group made the surprising observation that proteolipids of the V0 transmembrane sector are implicated in membrane fusion, but deeper analysis proved to be difficult—mostly because V-ATPase disruption is lethal. Based on a screen for V0 separation-of-function mutants in yeast, a study published in this issue of The EMBO Journal now provides direct evidence that the V0 sector regulates the core fusion machinery during the lipid-mixing step of vacuolar fusion. Cells are filled with membrane-enclosed compartments that continuously exchange materials via cargo-containing membrane vesicles that form on the donor compartment and deliver their cargo to the target compartment by membrane fusion. Membrane fusion therefore controls fundamental cellular processes, including the maintenance of intracellular compartments and membrane transport in the vacuolar apparatus of eukaryotic cells. Thus, it is not surprising that the membrane fusion machinery was studied extensively in past years, leading to a very comprehensive mechanistic view on how SNAREs (soluble NSF maleimide-sensitive factor), Rabs and the HOPS (homotypic fusion and vacuole protein sorting) complex mediate membrane fusion (Wickner, 2010). Nevertheless, the picture is not yet complete. Some time ago, a highly intriguing study by Andreas Mayer’s group implicated the V0 transmembrane sector of the V-ATPase in membrane fusion (Peters et al, 2001). V0 consists of six subunits, the a, d and e subunits and three c subunits called proteolipids, which are named after their very hydrophobic property that makes them soluble in organic solvents, without carrying a lipid modification. Limitations for further analysis that arose from the severe V-ATPase disruption phenotypes have now been overcome by an elegant yeast screen for vacuole fusion by Andreas Mayer’s laboratory (Strasser et al, 2011). They randomly mutagenized the proteolipid subunits of the V0 sector and screened in vivo for mutants having normal proton pump activity but fragmented vacuoles, indicative of a vacuole fusion defect. Subsequent extensive biochemical analysis on cell-free yeast vacuoles revealed that the identified mutants maintained normal SNARE interactions, but membrane fusion was impaired before lipid and content mixing. Interestingly, mutants were found in all three proteolipid subunits and the mutated residues are conserved in higher eukaryotes. Furthermore, mutations are clustered in the proteolipid transmembrane domains at the subunit interfaces, leading to the hypothesis that they might affect subunit interactions. This notion is supported by the following results: first, identified mutants stabilized interactions between the V0 and V1 ATPase sectors, a phenotype that was also observed by knockdown of the V0 interacting SNARE. Second, one of the identified mutants showed impaired proteolipid oligomerization. And third, the in-frame hybrid of two proteolipid subunits led to fragmented vacuoles in vivo and a strong vacuole fusion defect in vitro. Collectively, these results strongly suggest that the V0 subunits act as an entity requiring a specific conformation that is impaired by mutations of the transmembrane domain of proteolipids, that depends on SNARE interactions and that requires conformational freedom of the individual subunits. Evidence of this notion, that the V-ATPase directs membrane fusion independently from the canonical proton translocation activity, has been mounting. Specifically, observations show that the V0 sector is involved in membrane fusion during synaptic vesicle exocytosis (Hiesinger et al, 2005) and phagocytosis (Peri and Nusslein-Volhard, 2008). In addition, the study by Strasser and colleagues provides a possible molecular explanation for several reports linking known constituents of the membrane traffic machinery to the V0 subunits. This includes physical interactions with synaptophysin (Klemmer et al, 2009) and synaptobrevin (Di Giovanni et al, 2010), as well as Rab7 (McCray et al, 2010). Furthermore, in Drosophila melanogaster, the V0 sector has been convincingly shown to influence membrane trafficking through physical interactions with syntaxins independent of effects mediated by the establishment of a proton gradient (Williamson et al, 2010). And recently in mice, a specific mutation in the a3 subunit of V0 has been described that uncouples proton translocation from VATPase-dependent aspects of osteoblast function (Ochotny et al, 2011). But the recent work from Strasser et al also indicates that these independent functions of the V0 sector can influence each other, which is potentially quite exciting. They present persuasive data that SNARE binding to the V0 sector destabilizes V0/V1 assembly, suggesting that the V0 sector undergoes a SNARE-induced switch from a translocationThe EMBO Journal (2011) 30, 4113–4115 | & 2011 European Molecular Biology Organization | All Rights Reserved 0261-4189/11 www.embojournal.org

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عنوان ژورنال:
  • The EMBO journal

دوره 30 20  شماره 

صفحات  -

تاریخ انتشار 2011