| Literature DB >> 26263895 |
Fabio C Rinaldi1, Michael Packer2, Ruth Collins3.
Abstract
BACKGROUND: Sec4p is a small monomeric Ras-related GTP-binding protein (23 kDa) that regulates polarized exocytosis in S. cerevisiae. In this study we examine the structural effects of a conserved serine residue in the P-loop corresponding to G12 in Ras.Entities:
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Year: 2015 PMID: 26263895 PMCID: PMC4531439 DOI: 10.1186/s12900-015-0041-5
Source DB: PubMed Journal: BMC Struct Biol ISSN: 1472-6807
Fig. 1Comparison of the core domain of Ras superfamily sequences between Rab, Ras and Rho subfamilies. The core domain is aligned showing in uppercase bold, those residues conserved at the 50 % consensus level i.e. at least 50 % sequences show this residue at the position indicated. Bold is also used for positions conserved for positive (+, H, K, R) or negative charge (−, D, E). In lowercase is shown the consensus sequence at non-conserved positions designated according to the amino acid class abbreviation; o (alcohol, S,T), l (aliphatic (I, L,V), a (aromatic, F, H,W,Y), c (charged, D,E,H,K,R), h (hydrophobic, A,C,F,G,H,I,K,L,M,R,T,V,W,Y), p (polar, C,D,E,H,K,N,Q,R,S,T), s (small, A,C,D,G,N,P,S,T,V), u (tiny, A,G,S), t (turn-like, A,C,D,E,G,H,K,N,Q,R,S,T). All residues that are conserved at the 50 % consensus level between the Ras and Rab families are shaded in black. Consensus sequence data were obtained from the SMART database (http://smart.embl-heidelberg.de/) [40] and are derived from 339 Ras domains and 1120 Rab domains. For greater clarification, the G protein conserved sequence elements are shown highlighted in grey. Numbering is arbitrary and intended as a descriptive guide. An asterisk marks the Ras glycine 12 position, this is highly conserved amongst Ras family members and the equivalent residue in at least 50 % of Rab proteins is serine
Bacterial strains used in this study
| Strain number | Bacterial strain | Description | Vector used |
|---|---|---|---|
| RCB4554 | BL21 (DE3) | Sec4pV29 (19–187) | ppSUMO |
| RCB4699 | BL21 (DE3) | Sec4pWT (19–187) | ppSUMO |
| RCB4636 | BL21 (DE3) | Sec2p (51–142) | ppSUMO |
| RCB4727 | BL21 (DE3) | Sec2p (51–182) | ppSUMO |
| RCB5290 | BL21 (DE3) | Sec2p (51–160) | ppSUMO |
| RCB5291 | BL21 (DE3) | Sec2 (1–160) | ppSUMO |
| RCB5117 | DH5α | Sec2p (51–182) mutant 153–157Ala | ppSUMO |
| RCB5119 | DH5α | Sec2p (51–182) mutant 142–147Ala | ppSUMO |
| RCB5121 | DH5α | Sec2p (51–182) mutant F109A | ppSUMO |
| RCB5214 | BL21 (DE3) | Sec4p (19–187) mutant E80A and R81A, | ppSUMO |
| RCB5215 | BL21 (DE3) | Sec2p (51–142) K140C, | ppSUMO |
Data collection and refinement statistics
| Sec4pV29 | Sec4pV29.Sec2p complex | |
|---|---|---|
| Data collection statistics | ||
| Space group | P21 | I222 |
| Unit cell | 116.900 119.280 122.860 | |
| a, b, c (Å) | 31.720, 75.450, 66.230 | |
| β (°) | 91.58 | |
| Wavelength (Å) | 1.54180 | 1.08090 |
| Resolution range (Å) | 28.30–1.90 (2.00-1.90) | 60.00–2.90 (2.90–3.06) |
| No. reflections/no. unique reflections | 39912/23244 | 152363/19373 |
| Redundancy | 1.7 (1.6) | 7.9 (8.1) |
| Completeness (%) | 94.8 (98.3) | 99.8 (100) |
| Rmeas (%) | 7.1 (38.9) | 9.0 (54.5) |
| I/σ (I) | 9.1 (2.3) | 5.1 (1.5) |
| Refinement statistics | ||
| Resolution range (Å) | 28.30–1.90 | 59.64–2.90 |
| no. of reflections (working data/test data) | 21713/1170 | 17371/879 |
| R-factor/R-free (%) | 23.9/29.7 | 25.8/29.5 |
| Protein atoms | 2598 | 2867 |
| Water molecules | 464 | 16 |
| Mean B value/Wilson B value (protein, all atoms) (Å2) | 17.2/22.0 | 51.5/66.8 |
| Mean B value (ligand) (Å2) | 16.3 | 74.2 |
| rmsd bond length (Å) | 0.011 | 0.012 |
| rmsd bond angle (°) | 1.432 | 1.613 |
Fig. 2Sec4pV29 shows decrease sensitivity to the activation by Sec2p. a Intrinsic nucleotide dissociation in presence of 0.3 mM GDP. 0.3 μM of either Sec4pwt (black), Sec4pV29 (red) or Sec4pE80A,R81A (blue) preloaded with mantGDP was excited at 360 nm and the emission signal was detected at 450 nm. The assays were done at room temperature with buffer containing 20 mM Tris HCl pH 7.5, 100 mM NaCl and 5 mM MgCl2. The plots represent one of the three measurements acquired. b mantGDP dissociation from 0.3 μM of either Sec4pwt (black) or Sec4pV29 (red) was measured by the reduction in fluorescence intensity after mixing excess of unlabelled GDP (300 μM) plus 66nM Sec2p51–182. Assays were performed at 16 °C with buffer containing 20 mM Tris HCl pH 7.5, 100 mM NaCl and 5 mM MgCl2
Fig. 3Superposition of the P-loop and SWII region between molecule A of Sec4pwt (grey) (6) and molecule (a) (orange) and (b) (purple) of Sec4pV29
Fig. 4Crystal structure of the ternary complex Sec4pV29.GDP.Sec2p. a Overall structure of the complex showing the presence of the GDP molecule bound in the active site. b Fo - Fc map contoured at 3σ (grey) indicates the presence of the nucleotide
Fig. 5a Superposition between Sec4pV29.GDP.Sec2p and Sec4pWT.phosphate.Sec2p using the Cα atoms of the Sec4p binding site of Sec2p (residues 100–120). The V29 mutant shows a slight shift in the active site. The P-loop, nucleotide and other regions of the protein shift for about 1 Å in the direction of Sec2p. This shift causes a slightly more closed conformation in comparison with the wild type complex Sec4pWT.phosphate.Sec2p. b Superposition between Sec4pV29.GDP.Sec2p and Sec4pWT.phosphate.Sec2p performed using the P-loop (Cα residues 26–33) of Sec4p. In this superposition the residue Ile50 of Sec4pV29 shifts toward the active site, coming very close to one of the waters that coordinate the magnesium ion. Waters are represented by red spheres. Residues that participate on the magnesium coordination are shown
Fig. 6Sec2p truncations affecting nucleotide dissociation activity. MantGDP dissociation from Sec4p was measured by reduction in fluorescence intensity after mixing excess of unlabeled GDP (300 μM) plus: buffer (black) or 500nM of different truncations of Sec2p (a). Analysis of how mutations on amino acid region 142–160 of Sec2p affect the stimulation of nucleotide dissociation of Sec4p are shown on (b). All assays were done using 1 μM Sec4p19–187 preloaded with mantGDP. The superposition between the complexes Sec4p.GDP.Sec2p and Sec4p.Sec2p is shown on (c). Regions of Sec2p that were truncated for the crystallization of Sec4p.GDP.Sec2p complex are colored in brown in the Sec2p structure of the complex Sec4p.Sec2p (reference). Leucine residues suggested to be important for the GEF activity of Sec2p are labeled
Fig. 7Sec2 residues 1–142 are sufficient and necessary for cell viability; a construct containing this region of Sec2 can provide the sole source of SEC2 function in a tester strain on 5-FOA media. Truncation of the first fifty residues abolishes this effect, which is evident in the absence of colonies on the 5-FOA media in the Sec2 51–142 construct. Vector only and SEC2 wild type constructs are shown for reference
Fig. 8Disulfide bond introduction between Sec2p monomers increases protein activity. MantGDP dissociation from Sec4p was measured by reduction in fluorescence intensity after mixing excess of unlabeled GDP (300 μM) plus: buffer or 250nM of different Sec2p constructs. The mutant K140C increases the rather low dissociation rate Sec2p51–142. When DTT (50 mM) is added to the buffer solution the dissociation level drops close to the wild type level. The addition of DTT to the truncation Sec2p51–182 is not deleterious to the protein activity. All assays were performed with 1 μM Sec4p19–187 preloaded with mantGDP