Abstract
Functional characterization of protein interactions in mammalian systems has been hindered by the inability to perform complementation analyses in vivo. Here, we use functional replacement of the vesicle docking protein p115 to separate its essential from its nonessential interactions. p115 is required for biogenesis of the Golgi apparatus, but it is unclear whether its mechanism of action requires its golgin and/or SNARE interactions. Short interfering RNA-mediated knockdown of p115 induced extensive Golgi fragmentation and impaired secretory traffic. Reassembly of a structurally and functionally normal Golgi occurred on expression of a p115 homologue not recognized by the short interfering RNA. Strikingly, versions of p115 lacking its phosphorylation site and the golgin-binding domains also restored the Golgi apparatus in cells lacking endogenous p115. In contrast, the p115 SNARE-interacting domain was required for Golgi biogenesis. This suggests that p115 acts directly, rather than via a tether, to catalyze trans-SNARE complex formation preceding membrane fusion.
MeSH Terms
Animals
Binding Sites
Carrier Proteins/physiology
Cattle
Golgi Apparatus/physiology
Golgi Matrix Proteins
HeLa Cells
Humans
Membrane Glycoproteins/metabolism
Membrane Proteins/physiology
RNA Interference
SNARE Proteins
Vesicular Transport Proteins
Viral Envelope Proteins/metabolism
Chemicals
Carrier Proteins
G protein, vesicular stomatitis virus
Golgi Matrix Proteins
Membrane Glycoproteins
Membrane Proteins
SNARE Proteins
Vesicular Transport Proteins
Viral Envelope Proteins
vesicular transport factor p115
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Puthenveedu Manojkumar A
Department of Biological Sciences, Carnegie Mellon University, Pittsburgh, PA 15213, USA.
[email protected]
Linstedt Adam D
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26 references, click to expand
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