Retrograde transport of the mannosyltransferase Och1p to the early Golgi requires a component of the COG transport complex

被引:40
作者
Bruinsma, P [1 ]
Spelbrink, RG [1 ]
Nothwehr, SF [1 ]
机构
[1] Univ Missouri, Div Biol Sci, Columbia, MO 65211 USA
关键词
D O I
10.1074/jbc.M405500200
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The yeast COG complex has been proposed to function as a vesicle-tethering complex on an early Golgi compartment, but its role is not fully understood. COG complex mutants exhibit a dramatic reduction in Golgi-specific glycosylation and other defects. Here we show that a strain carrying a COG3 temperature-sensitive allele, cog3-202, clearly exhibited the glycosylation defect while exhibiting nearly normal secretion kinetics. Two Golgi mannosyltransferases, Och1p and Mnn1p, were mislocalized in cog3-202 cells. In cog3-202 cells Och1-HA was found in lighter density membranes than in wild type cells. In sed5(ts) and sft1(ts) strains, Och1p rapidly accumulated in vesicle-like structures consistent with the delivery of Och1p back to the cis-Golgi on retrograde vesicles via a Sed5p/Sft1p-containing SNARE complex. In contrast to cog3-202 cells, the membranes in sed5ts cells that contained Och1p were denser than in wild type. Together these results indicate that Och1p does not accumulate in retrograde vesicles in the cog3-202 mutant and are consistent with the COG complex playing a role in sorting of Och1p into retrograde vesicles. In wild type cells Och1p has been shown previously to cycle between the cis-Golgi and minimally as far as the late Golgi. We find that Och1p does not cycle via endosomes during its normal itinerary suggesting that Och1p engages in intra-Golgi cycling only. However, Och1p does use a post-Golgi pathway for degradation because a portion of Och1p was degraded in the vacuole. Most surprisingly, Och1p can use either the carboxypeptidase Y or AP-3 pathways to reach the vacuole for degradation.
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页码:39814 / 39823
页数:10
相关论文
共 73 条
[41]  
Nothwehr SF, 1997, J CELL SCI, V110, P1063
[42]   Distinct domains within Vps35p mediate the retrieval of two different cargo proteins from the yeast prevacuolar/endosomal compartment [J].
Nothwehr, SF ;
Bruinsma, P ;
Strawn, LA .
MOLECULAR BIOLOGY OF THE CELL, 1999, 10 (04) :875-890
[43]   Topological restriction of SNARE-dependent membrane fusion [J].
Parlati, F ;
McNew, JA ;
Fukuda, R ;
Miller, R ;
Söllner, TH ;
Rothman, JE .
NATURE, 2000, 407 (6801) :194-198
[44]   Transport-vesicle targeting: tethers before SNAREs [J].
Pfeffer, SR .
NATURE CELL BIOLOGY, 1999, 1 (01) :E17-E22
[45]   The membrane protein alkaline phosphatase is delivered to the vacuole by a route that is distinct from the VPS-dependent pathway [J].
Piper, RC ;
Bryant, NJ ;
Stevens, TH .
JOURNAL OF CELL BIOLOGY, 1997, 138 (03) :531-545
[46]   Identification of Sec36p, Sec37p, and Sec38p: Components of yeast complex that contains Sec34p and Sec35p [J].
Ram, RJ ;
Li, BJ ;
Kaiser, CA .
MOLECULAR BIOLOGY OF THE CELL, 2002, 13 (05) :1484-1500
[47]   A transmembrane ubiquitin ligase required to sort membrane proteins into multivesicular bodies [J].
Reggiori, F ;
Pelham, HRB .
NATURE CELL BIOLOGY, 2002, 4 (02) :117-123
[48]  
ROBERTS CJ, 1991, METHOD ENZYMOL, V194, P644
[49]   PROTEIN SORTING IN SACCHAROMYCES-CEREVISIAE - ISOLATION OF MUTANTS DEFECTIVE IN THE DELIVERY AND PROCESSING OF MULTIPLE VACUOLAR HYDROLASES [J].
ROBINSON, JS ;
KLIONSKY, DJ ;
BANTA, LM ;
EMR, SD .
MOLECULAR AND CELLULAR BIOLOGY, 1988, 8 (11) :4936-4948
[50]  
ROMERO PA, 1989, J BIOL CHEM, V264, P1946