Abstract

Docked vacuoles are believed to undergo rapid lipid mixing during hemifusion and then a slow, rate-limiting completion of fusion and mixing of lumenal contents. Previous genomic analysis has suggested that Bem1p, a scaffold protein critical for cell polarity, may support vacuole fusion. We now report that bem1Delta strains have fragmented vacuoles (vps class B and C). During in vitro fusion reactions, vacuoles from bem1Delta strains showed a strong reduction in the rate of lipid mixing when compared with vacuoles from the BEM1 parent. The reduction in the overall rate of fusion with bem1Delta vacuoles was modest, consistent with lipid mixing as a non-rate-limiting step in the pathway. Although the fusion of either BEM1 (wild-type) or bem1Delta vacuoles is stimulated by recombinant Bem1p, the lipid mixing of docked bem1Delta vacuoles is highly dependent on rBem1p under certain reaction conditions. Bem1p-stimulated lipid mixing is blocked by well characterized fusion inhibitors including lipid ligands and antibodies to Ypt7p, Vps33p, and Vam3p. Although full-length Bem1p is required for maximal stimulation, a truncation mutant comprising the SH3 domains and the Phox homology (PX) domain retains modest stimulatory activity. In contrast to an earlier report (Han, B. K., Bogomolnaya, L. M., Totten, J. M., Blank, H. M., Dangott, L. J., and Polymenis, M. (2005) Genes Dev. 19, 2606-2618), we did not find phosphorylation of Bem1p at Ser-72 to be required for Bem1p-stimulated fusion. Taken together, Bem1p is a positive regulator of lipid mixing during vacuole hemifusion and fusion.

Highlights

  • We study membrane fusion using the vacuole of Saccharomyces cerevisiae

  • We propose that Bem1p regulates lipid mixing during homotypic vacuole fusion

  • We find that Bem1p stimulates the lipid mixing step of vacuole fusion

Read more

Summary

Introduction

We study membrane fusion using the vacuole of Saccharomyces cerevisiae. Our in vitro fusion assay employs two populations of vacuoles that, upon lipid and content mixing, generate alkaline phosphatase activity [21]. Our in vitro fusion assay employs two populations of vacuoles that, upon lipid and content mixing, generate alkaline phosphatase activity [21]. Bem1p Stimulates Vacuole Fusion strains show a dramatic reduction in the rate of lipid mixing.

Results
Conclusion
Full Text
Paper version not known

Talk to us

Join us for a 30 min session where you can share your feedback and ask us any queries you have

Schedule a call