Unique self-palmitoylation activity of the transport protein particle component Bet3: A mechanism required for protein stability
- 22 August 2006
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 103 (34) , 12701-12706
- https://doi.org/10.1073/pnas.0603513103
Abstract
Bet3 is a component of the transport protein particle complex involved in vesicular trafficking to and through the Golgi complex. X-ray structural analysis of human and mouse Bet3 revealed a hydrophobic tunnel inside the protein, which is occupied by a fatty acid linked to cysteine-68. We show here that Bet3 has strong self-palmitoylating activity. Incubation of purified Bet3 with [3H]palmitoyl-CoA (Pal-CoA) leads to a rapid and stoichiometric attachment of fatty acids to cysteine-68. Bet3 has an intrinsic affinity for Pal-CoA, and the palmitoylation reaction occurs at physiological pH values and Pal-CoA concentrations. Moreover, Bet3 is also efficiently palmitoylated at cysteine-68 inside vertebrate cells. Palmitoylation can occur late after Bet3 synthesis, but once the fatty acids are bound they are not removed, not even by disassembly of the Golgi complex. Narrowing the hydrophobic tunnel by exchange of alanine-82 with bulkier amino acids inhibits palmitoylation, both in vitro and inside cells, indicating that the fatty acid must insert into the tunnel for stable attachment. Finally, we show that palmitoylation of Bet3 plays a structural role. CD spectroscopy reveals that chemically deacylated Bet3 has a reduced melting temperature. As a consequence of its structural defect nonacylated Bet3 does not bind to TPC6, a further subunit of the transport protein particle complex, and is degraded inside cells.Keywords
This publication has 43 references indexed in Scilit:
- Global Analysis of Protein Palmitoylation in YeastPublished by Elsevier ,2006
- Crystal structure of bet3 reveals a novel mechanism for Golgi localization of tethering factor TRAPPNature Structural & Molecular Biology, 2004
- The human SNARE protein Ykt6 mediates its own palmitoylation at C-terminal cysteine residuesBiochemical Journal, 2004
- Determination of Protein-Bound Palmitate Turnover Rates Using a Three-Compartment Model That Formally Incorporates [3H]Palmitate RecyclingBiochemistry, 2004
- Primary sequence requirements for S‐acylation of β2‐adrenergic receptor peptidesFEBS Letters, 2001
- Palmitoylation of the 25-kDa synaptosomal protein (SNAP-25) in vitro occurs in the absence of an enzyme, but is stimulated by binding to syntaxinBiochemical Journal, 2000
- Acyl-CoA Binding Proteins Inhibit the Nonenzymic S-Acylation of Cysteinyl-Containing Peptide Sequences by Long-Chain Acyl-CoAsBiochemistry, 1997
- Autoacylation of G Protein α SubunitsJournal of Biological Chemistry, 1996
- Cysteine-Containing Peptide Sequences Exhibit Facile Uncatalyzed Transacylation and Acyl-CoA-dependent Acylation at the Lipid Bilayer InterfaceBiochemistry, 1994
- Fatty acylation promotes fusion of transport vesicles with Golgi cisternae.The Journal of cell biology, 1990