Keyword search (4,163 papers available)

"Brett CL" Authored Publications:

Title Authors PubMed ID
1 Sphingolipids containing very long-chain fatty acids regulate Ypt7 function during the tethering stage of vacuole fusion Zhang C; Calderin JD; Hurst LR; Gokbayrak ZD; Hrabak MR; Balutowski A; Rivera-Kohr DA; Kazmirchuk TDD; Brett CL; Fratti RA; 39307308
BIOLOGY
2 Thermotolerance in S. cerevisiae as a model to study extracellular vesicle biology Logan CJ; Staton CC; Oliver JT; Bouffard J; Kazmirchuk TDD; Magi M; Brett CL; 38711329
BIOLOGY
3 A two-tiered system for selective receptor and transporter protein degradation Golden CK; Kazmirchuk TDD; McNally EK; El Eissawi M; Gokbayrak ZD; Richard JD; Brett CL; 36215320
BIOLOGY
4 Acetate and hypertonic stress stimulate vacuole membrane fission using distinct mechanisms Gokbayrak ZD; Patel D; Brett CL; 35834522
BIOLOGY
5 Distinct features of multivesicular body-lysosome fusion revealed by a new cell-free content-mixing assay. Karim MA, Samyn DR, Mattie S, Brett CL 29135058
BIOLOGY
6 The Na+(K+)/H+ exchanger Nhx1 controls multivesicular body-vacuolar lysosome fusion. Karim MA, Brett CL 29212874
BIOLOGY
7 Rab-Effector-Kinase Interplay Modulates Intralumenal Fragment Formation during Vacuole Fusion. Karim MA, McNally EK, Samyn DR, Mattie S, Brett CL 30269949
BIOLOGY
8 A Cell-Free Content Mixing Assay for SNARE-Mediated Multivesicular Body-Vacuole Membrane Fusion. Karim MA, Samyn DR, Brett CL 30317513
BIOLOGY
9 Visualization of SNARE-Mediated Organelle Membrane Hemifusion by Electron Microscopy. Mattie S, Kazmirchuk T, Mui J, Vali H, Brett CL 30317518
BIOLOGY
10 The intralumenal fragment pathway mediates ESCRT-independent surface transporter down-regulation. McNally EK, Brett CL 30560896
BIOLOGY

 

Title:Sphingolipids containing very long-chain fatty acids regulate Ypt7 function during the tethering stage of vacuole fusion
Authors:Zhang CCalderin JDHurst LRGokbayrak ZDHrabak MRBalutowski ARivera-Kohr DAKazmirchuk TDDBrett CLFratti RA
Link:https://pubmed.ncbi.nlm.nih.gov/39307308/
DOI:10.1016/j.jbc.2024.107808
Publication:The Journal of biological chemistry
Keywords:Elo3HOPSSNAREVps33Ypt7
PMID:39307308 Category: Date Added:2024-09-23
Dept Affiliation: BIOLOGY
1 Department of Biochemistry, University of Illinois Urbana-Champaign, Urbana, IL, USA.
2 Department of Biology, Concordia University, Montreal, QC, Canada.
3 Department of Biology, Concordia University, Montreal, QC, Canada. Electronic address: Christopher.Brett@concordia.ca.
4 Department of Biochemistry, University of Illinois Urbana-Champaign, Urbana, IL, USA; Center for Biophysics & Quantitative Biology, University of Illinois Urbana-Champaign, Urbana, IL, USA. Electronic address: rfratti@illinois.edu.

Description:

Sphingolipids are essential in membrane trafficking and cellular homeostasis. Here, we show that sphingolipids containing very long-chain fatty acids (VLCFAs) promote homotypic vacuolar fusion in Saccharomyces cerevisiae. The elongase Elo3 adds the last two carbons to VLCFAs that are incorporated into sphingolipids. Cells lacking Elo3 have fragmented vacuoles, which is also seen when WT cells are treated with the sphingolipid synthesis inhibitor Aureobasidin-A. Isolated elo3? vacuoles show acidification defects and increased membrane fluidity, and this correlates with deficient fusion. Fusion arrest occurs at the tethering stage as elo3? vacuoles fail to cluster efficiently in vitro. Unlike HOPS and fusogenic lipids, GFP-Ypt7 does not enrich at elo3? vertex microdomains, a hallmark of vacuole docking prior to fusion. Pulldown assays using bacterially expressed GST-Ypt7 showed that HOPS from elo3? vacuole extracts failed to bind GST-Ypt7 while HOPS from WT extracts interacted strongly with GST-Ypt7. Treatment of WT vacuoles with the fluidizing anesthetic dibucaine recapitulates the elo3? phenotype and shows increased membrane fluidity, mislocalized GFP-Ypt7, inhibited fusion, and attenuated acidification. Together these data suggest that sphingolipids contribute to Rab-mediated tethering and docking required for vacuole fusion.





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