| Literature DB >> 18211691 |
Carol J DeRegis1, Peter B Rahl, Gregory R Hoffman, Richard A Cerione, Ruth N Collins.
Abstract
BACKGROUND: The appendage domain of the gammaCOP subunit of the COPI vesicle coat bears a striking structural resemblance to adaptin-family appendages despite limited primary sequence homology. Both the gammaCOP appendage domain and an equivalent region on betaCOP contain the FxxxW motif; the conservation of this motif suggested the existence of a functional appendage domain in betaCOP.Entities:
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Year: 2008 PMID: 18211691 PMCID: PMC2262067 DOI: 10.1186/1471-2121-9-3
Source DB: PubMed Journal: BMC Cell Biol ISSN: 1471-2121 Impact factor: 4.241
Figure 1Alignment of COPI and AP2 appendage domains. A structure-based sequence alignment of the appendage domains of α- and βAP2 with that of γCOP was generated as described in [16]. Secondary structural elements of the γCOP and the AP2 appendage domains determined previously are indicated above the sequence alignment. The blue arrow denotes the position of the boundary between the platform and the Ig-like (β-sandwich) subdomains. Highlighted in red is where four or more sequences contained a strictly conserved residue at that position. Regions of similarity, calculated using functional amino acid groupings, are boxed in blue. Residues for which no structural information is available were positioned using a primary sequence alignment using the ClustalX 1.83 program and manual inspection. The conserved FxxxW motif is indicated below the sequence alignment in pink. The predicted secondary structural elements for the appendage domain of βCOP, Sec26p are shown beneath the alignment as determined with the PSIPRED confidence level of the assignments shown in the diagram.
Figure 2Functional importance of the βCOP appendage domain. A. Schematic illustrating the characteristics of the various Sec26p truncation constructs used for experiments. B. Plasmids coding for truncated constructs of SEC26, wild type SEC26, or vector only were transformed into the sec26Δ tester strain and spotted onto complete media (YPD) and synthetic complete media (SCD) with 5-FOA at 25, 30, 34, 37, and 40°C. C. Plasmids coding for vector alone or full length or truncated constructs under control of the copper-inducible promoter (P) were transformed into wild type yeast and replica-plated onto minimal media (SD) with and without the addition of Cu2+ (0 or 0.3 mM CuSO4). Growth was followed for three or seven days (3d and 7d respectively). The dominant negative yip1-6 construct was included as a negative control [71]. D. Transformed cells were grown in liquid minimal media with and without the exogenous CuSO4. Cultures were grown to early log phase and adjusted to an OD600 of 0.2. CuSO4 was added at the levels indicated and cells were grown at 30°C with turbidity measured every half hour for 2 days.
Summary of sec26 mutants and genetic interactions with GLO3
| F856A W860A | 40° | YES | YES | |
| T536A D903A D904A ( | 34° | YES | YES | |
| K659R I681V D759V S810P C905S I938V L950S | 37° | YES | YES | |
| S725Y K732N N772I H774R F777Y F799I K915M K964T | 37° | YES | YES | |
| C678S F693S D759G Y823C V838A I842T Y913H | 37° | YES | YES | |
| R672G I727T V743G K807R T877A | 37° | YES | YES | |
| L651Q K659E H839P I846T F863I A959S | 37–40° | YES | YES | |
| K659E K679N I733L Y744C F754S Y832N A851V F863L I893T I938L V973A | 37° | YES | YES | |
| N680T R691W D741G F817Y M859V | 37–40° | YES | YES | |
| F856A W860A D904A C905S | 37–40 | YES | +/- | |
| E633D I733T D741V T769P F802L ( | 37° | YES | +/- | |
| Q661R S740P V806A F907Y F918S | 37° | YES | +/- | |
| S628P I785V M859I L950S D956V H972Y | 37° | YES | +/- | |
| S740P I785T N793S K801E F863S A951T | 37° | YES | no | |
| I598N S728T D759V D823G I846T H855L I869L G901R | 37° | YES | no | |
| V623A S628T P636A V757A T779S W860R K887R T895A K933E A962T | 37° | YES | no | |
| L773Q I795T H839L N966Y | 37° | YES | no | |
| Q607L M624V L646P H670P C678S I846T T877I N890S E920V K963E | 34° | YES | no | |
| S626P K655R N793H T803S G818S N836D K868R E929K Q948L K963R | 37–40° | YES | no | |
| E633G N635Y E663G K666R F690L R691W S728L V756D Q776R D921G S932T L950M | 34° | no | YES | |
| F650L G695S H797Q I821N W860L E902G | 34° | no | YES | |
| K655N A665T D676G Q702R Q776H G781C Y822N D844E F863Y R883S | 37° | no | YES | |
| K614R L780H V794E A825V L885M C910R C927S A962S | 37° | no | YES | |
| Q607R K669M I846F M859V F907L F918Y | 40° | no | YES | |
| D697N D704H S740T I820T R831C I842V I928F S932T | 37° | no | YES | |
| S608T D616E D676G F693L D704G S726G P735H E746K H774Y F799L K847I F856Y | 34° | no | YES | |
| I598T R622G A718P T722I P735L K767E H839P T850S N890S D921E N966Y T971A | 37° | no | YES | |
| I615F L646Q K715R F817S F863L K872E M891L L950S | 34–37° | no | YES | |
| R622G K679G A694D A924V C927S V937D | 40° | no | YES | |
| A649E C910R S917P | 37° | no | YES | |
| D676N L730R F754L N772Y A830D I834N D852V S917T F918I | 37° | no | YES | |
| S619F L620V D709E R957G | 40° | no | +/- | |
| V600D F658S L712Q Q753H Q776R N836I T965A | 37° | no | +/- | |
| S628T L712Q P789S V794E D829V I846F I961F2 | 34–37° | no | no | |
| I615F R660G S724C S916P K964E L970H | 40° | no | no | |
| E617V I629S K715I T889S A924V A959H3 | 34° | no | no | |
| I662F V701G H720P V743G K784R F856I K887E | 40° | no | no | |
| L620I M624I L646P T654S T686M I749V V794G N867S K868G | 37° | no | no | |
| S628P A718S I733M P796T A825V Y832F3 | 37–40° | no | no | |
| S628P G798C F802S E866G Y913C | 34° | no | no |
1 restrictive temperature on SCGalactose media
2 also contains additional residues at COOH-terminus 974WTTLS978
3 also contains deletion of COOH-terminal residues 960–973
Figure 3Sec26p mutant allele creation. A. Bar chart showing the relative location and number of each mutated amino acid position identified in the ts allele set created by random mutagenesis. Superimposed is the % identity of each residue derived from a sequence alignment of βCOP sequences in Clustal v1.83. For reference, a grid indicates the positions of amino acid residues that are aligned (according to Figure 1) with solvent exposed residues of γCOP, located within 3Å distance of the FxxxW motif, and identified as a minimal set of functionally important residues through GLO3 interactions. B. Expression of constructs revealed with anti-Sec26p appendage domain antibody. Whole cell lysates were prepared from (Lane 1) wild type cells expressing endogenous Sec26p (109 kDa), (Lane 2) cells expressing GFP-Sec26p as the only copy of Sec26p (136 kDa, pRC2798), (Lane 3) cells over-expressing Sec26p under control of the copper-inducible promoter (P) (42.2 kDa, pRC2630a), or (Lane 4) cells expressing both wild type levels of Sec26p plus over-expressed Sec26p appendage under control of the copper-inducible promoter (P) (pRC2629b). C. Invertase secretion in sec26mutant cells. Several mutant alleles were chosen and invertase secretion was measured after a one hour shift to the restrictive temperature. The graph shows % secretion relative to wild type and an alternative COPI ts mutant, the deletion of sec28 (εCOP subunit). Data plotted is the average of three experiments and confidence intervals shown with error bars. D. Sec26p allele expression levels. Cellular lysates prepared from each of the sec26strains after incubation at 40°C for 1 h to assess Sec26p expression levels at the restrictive temperature. Blots were subsequently probed with an anti-Elp1p (~150 kDa) antibody [70] as a loading control.
Figure 4Phenotype of . A. Schematic of strategy to create appendage domain mutants for suppressor screening. ts alleles created as described in Materials and Methods were subcloned into the vector pRS305 for one-step gene disruption and replacement to create integrated genomic sec26 alleles. B. The sec26Δ tester strain was transformed with each of the sec26mutant plasmids and plated on synthetic complete media (SCD) with 5-FOA to counter-select for the wild type SEC26 plasmid (not shown). The resultant strains were plated at 30, 34, 37, and 40°C to demonstrate the temperature sensitive phenotype of each mutant (top row). Each strain was transformed with a GLO3 expressing plasmid under control of the galactose-inducible promoter (P) and plated on SCG at the above listed temperatures to evaluate the ability of GLO3 to suppress the ts phenotype (bottom row). The data is also summarized in Table 1. C. The sec26Δglo3Δ tester strain was transformed with each of the sec26mutant plasmids and streaked onto SCD + 5-FOA to assess growth when sec26was expressed as the only copy of SEC26 in the glo3Δ background. One representative plate is shown. Data for all sec26 alleles is summarized in Table 1. D. Diagram showing the numbers of residues identified at the intersection of at least three of the Groups I-IV together with the residue number in Sec26p. E. Mapping of residues identified in Figure 4D onto the known structure of γCOP appendage domain. The γCOP appendage structure is depicted as a ribbon diagram with α-helices in red and β-strands in yellow. The calculated molecular surface (transparent grey) is overlaid on the ribbon diagrams. Selected residues (K766, T759, A638, D867) were identified from the alignment shown in Figure 1 as the equivalent of the Sec26p residues chosen as described in Figure 4D and shown in blue. For clarity, the residues surrounding and including the FxxxW motif are shown in additional colors: pink (F772), light blue (W776), green (A775), and orange (V779). The appendage is shown from a "side" view (center image) with the NH2-terminal α-helix projecting toward the viewer. The image was then rotated 90° for the "front" view (left image), 90° for the "back" view (right image), and 90° towards the viewer for the "top" view (top image). Each of the selected residues has surface exposure.
Figure 5Glo3p-GFP localization in the presence of over-expressed Sec26p appendage. A. Functionality and localization of Glo3p-GFP. The functionality of the COOH-terminally tagged Glo3p-GFP construct (pRC3341A) was checked by transformation into the heterozygous diploid (MATa/α his3Δ0/his3Δ0 leu2Δ0/leu2Δ0 ura3Δ0/ura3Δ0 MET15/met15Δ0 LYS2/lys2Δ0 GLO3/glo3Δ::HIS3 GCS1/gcs1Δ::KANR). Following sporulation, haploid strains deleted for the genomic copies of GLO3 and GCS1, were identified. Viable haploids that were His+ and KANR were also positive for Glo3p-GFP and 5-FOA sensitive. Cells cotransformed with Glo3p-GFP and Sec21p-RFP or Sec7-RFP show coincidence of the green and red fluorescent signal in the punctate pattern typical of the Golgi of S. cerevisiae. B. Glo3p-GFP was expressed in a diploid glo3Δ/glo3Δ gcs1Δgcs1Δ background. This strain was transformed with a plasmid for over-expression of the Sec26p (residues E594-V973; pRC2629b) or Sec21p appendage (residues L676-Q935; pRC2628a) by a copper-inducible promoter (P). Cells were grown to early log phase, the cultures were divided, and treated with or without 0.7 mM CuSO4 for 3 hours at room temperature prior to microscopy. C. Selected sec26mutant strains (sec26-1, sec26-2, and sec26) were transformed with the glo3 truncation and point mutation constructs under control of Pand plated on SCG as a dilution series to evaluate the suppressive ability of the constructs. D. GLO3 suppression of sec26(sec26-1 and sec26-2) requires the ISS motifs located in the COOH-terminus of Glo3p. Mutant sec26 strains were transformed with the indicated constructs and tested for suppression as in 5C. The mutant ISS motif glo3 construct contained alanines at positions 388–390 and 420–422.
S. cerevisiae strains used in this study
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