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1 Department of Virology, Faculty of Medicine, Imperial College London, St Mary's Campus, Norfolk Place, London W2 1PG, UK
2 The Oxford Protein Production Facility and The Division of Structural Biology, Wellcome Trust Centre for Human Genetics, University of Oxford, Roosevelt Drive, Oxford OX3 7BN, UK
Correspondence
Geoffrey L. Smith
glsmith{at}imperial.ac.uk
| ABSTRACT |
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B signalling. However, analysis of NF-
B signalling in cells infected with recombinant viruses with or without the N1L gene showed no difference in NF-
B-dependent gene expression. Given that N1 promotes virus virulence, other possible functions of N1 were investigated and this revealed that N1 is an inhibitor of apoptosis in cells transfected with the N1L gene and in the context of VACV infection. In support of this finding virally expressed N1 co-precipitated with endogenous pro-apoptotic Bcl-2 proteins Bid, Bad and Bax as well as with Bad and Bax expressed by transfection. In addition, the crystal structure of N1 was solved to 2.9 Å resolution (0.29 nm). Remarkably, although N1 shows no sequence similarity to cellular proteins, its three-dimensional structure closely resembles Bcl-xL and other members of the Bcl-2 protein family. The structure also reveals that N1 has a constitutively open surface groove similar to the grooves of other anti-apoptotic Bcl-2 proteins, which bind the BH3 motifs of pro-apoptotic Bcl-2 family members. Molecular modelling of BH3 peptides into the N1 surface groove, together with analysis of their physico-chemical properties, suggests a mechanism for the specificity of peptide recognition. This study illustrates the importance of the evolutionary conservation of structure, rather than sequence, in protein function and reveals a novel anti-apoptotic protein from orthopoxviruses. Published online ahead of print on 22 March 2007 as DOI 10.1099/vir.0.82772-0.
These authors contributed equally to this work. ![]()
Present address: Crystallography Group, ITQB-Instituto de Tecnologia Química e Biológica, Av. República, EAN, 2784-505 Oeiras, Portugal. ![]()
Present address: Department of Respiratory Medicine, Faculty of Medicine, Imperial College London, St Mary's Campus, Norfolk Place, London W2 1PG, UK. ![]()
Atomic coordinates and structural factors have been deposited at the Protein Data Bank under the accession codes 2uxe and r2uxesf.
| INTRODUCTION |
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Apoptotic signalling pathways are evolutionarily conserved in eukaryotes and Bcl-2 counterparts are present in Drosophila melanogaster, Caenorhabditis elegans and mammals. During their evolution viruses have developed mechanisms to block apoptosis, permitting completion of their replication cycle. Several DNA viruses encode anti-apoptotic Bcl-2-like proteins that were identified through the presence of BH motifs in the primary amino acid sequence (Polster et al., 2004
). Bcl-2-like proteins are encoded by gammaherpesviruses EpsteinBarr virus (Hickish et al., 1994
), Kaposi's sarcoma-associated herpesvirus (Sarid et al., 1997
) and murine gammaherpesvirus 68 (Virgin et al., 1997
), by the alphaherpesvirus Marek's disease virus (Afonso et al., 2001
) and also by African swine fever virus (Neilan et al., 1993
). The genomes of orthopoxviruses such as VACV and variola virus, the causative agent of smallpox do not encode proteins with identifiable BH motifs. However, Bcl-2 counterparts would perhaps be expected given that poxviruses encode numerous immunomodulatory proteins, including serpins, decoy receptors for interleukin (IL)-1
, interferon (IFN)-
, IFN-
and tumour necrosis factor (TNF)-
(Seet et al., 2003
), and employ several anti-apoptotic strategies (for review see Taylor & Barry, 2006
). In addition, avipoxviruses such as fowlpox and canarypox contain identifiable Mcl-1 counterparts (Afonso et al., 2000
; Tulman et al., 2004
), and the VACV F1 protein displays the hallmarks of a functional orthologue as it localizes to mitochondria, inhibits apoptosis and binds pro-apoptotic Bak (Wasilenko et al., 2005
; Fischer et al., 2006
; Postigo et al., 2006
).
The VACV protein N1 was first described as a secreted protein (Kotwal et al., 1989
) but was shown subsequently to be a 14 kDa intracellular homodimer that is expressed early in the virus life cycle and contributes to virus virulence in mouse intradermal and intranasal models of infection (Bartlett et al., 2002
). Overexpression of N1 was reported to inhibit NF-
B activation downstream of TNF, IL-1 and Toll-like receptors (TLRs) in vitro, and this was suggested to be through direct inhibition of the I
B kinase complex (DiPerna et al., 2004
). Here, we demonstrate that N1 is an inhibitor of apoptosis. Cells expressing N1 following transfection or virus infection were resistant to staurosporine (ST)-induced apoptosis. Consistent with this, N1 in VACV-infected cells co-precipitated the pro-apoptotic Bcl-2 family proteins Bid, Bad and Bax. Lastly, the crystal structure of N1 was determined and showed compelling structural similarity to Bcl-2 family members, although it lacks amino acid sequence similarity to these proteins. The structure also revealed that N1 contains a surface groove that resembles the BH3-binding grooves of other Bcl-2 proteins. Molecular modelling of BH3 peptides of pro-apoptotic Bcl-2 proteins into the N1 groove suggests a mechanism for binding specificity. These results reveal a Bcl-2-like protein in VACV with anti-apoptotic activity and illustrate the importance of structure in the determination of protein function. During the preparation of this article, the crystal structure of N1 was reported by another group who demonstrated that N1 bound BH3 peptides from pro-apoptotic Bcl-2 family proteins Bid, Bim and Bak in vitro (Aoyagi et al., 2007
).
| METHODS |
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N1 and vN1-rev derived from VACV strain Western Reserve (WR) were described previously (Bartlett et al., 2002
Assay for NF-
B activation.
HeLa cells were transfected with a luciferase reporter plasmid, pNF B-Luc, containing NF-
B-binding sites (Stratagene), reseeded and infected with VACV, v
N1 or vN1-rev at 2 p.f.u. per cell for 2 h. Cells were then treated with 100 ng human IL-1
(Peprotech) ml1 for 2 h and lysates were assayed by the luciferase assay system as described by the manufacturer (Promega). Luciferase activity was normalized to the total protein content from the corresponding extract as a transfection efficiency control. Data are expressed as the mean fold induction as a ratio to the mean of the normalized luciferase activity in the mock infection. Two duplicate experiments were carried out with samples in triplicate (Student's t-test; *P<0.05; **P<0.005).
Immunoprecipitation.
HeLa cells were transfected with plasmids expressing HA-tagged Bax, Bad or eiF4E control, and 24 h post-transfection were infected with vN1 or v
N1 at 10 p.f.u. per cell for 6 h. Alternatively, for immunoprecipitation of endogenous Bcl-2 proteins, HeLa cells were infected for 6 h as above. Monolayers were washed twice in PBS. For analysis of N1 interaction with Bad and Bax expressed by transfection, cells were lysed in CHAPS buffer [100 mM NaCl, 10 mM Tris, pH 7.5, 10 % (w/v) glycerol, 1 % CHAPS, 1 mM MgCl2, 1 mM EDTA and 1x protease inhibitor tablet (Roche)]. For analysis of N1 interactions with endogenous levels of Bcl-2 proteins, cells were lysed in HEPES buffer [10 mM HEPES pH 7.4, 150 mM NaCl, 1 mM EDTA, 1 % NP-40, 1x complete protease inhibitor tablet (Roche)]. Lysates were centrifuged at 20 000 g for 15 min at 4 °C and cytosolic extracts were removed, pre-cleared with protein A- or G-Sepharose beads for 1 h at 4 °C and incubated overnight at 4 °C with mouse monoclonal antibody HA.11 (Cambridge Biosciences) or rabbit polyclonal antibodies to Bax, Bad (Cell Signaling Technology), N1 or Bid (R&D Systems). Immune complexes were bound to protein A or GSepharose beads for 1 h at 4 °C, washed four times in lysis buffer, eluted in 2x loading buffer and boiled. Proteins were separated on NuPAGE Bis-Tris (12 % gel; Invitrogen), transferred to PVDF membranes and blotted with anti-HA.11, anti-N1, anti-
-tubulin (Upstate) or anti-Bcl-2 family antibodies. Bound antibody was detected using horseradish peroxidase (HRP)-conjugated anti-rabbit antibodies and visualized using ECL Plus detection (Amersham Biosciences).
Apoptosis assays.
HeLa cells were mock-infected or infected with wild-type VACV (vN1), v
N1 or vN1-rev (Bartlett et al., 2002
) viruses at 2 p.f.u. per cell for 2 h, or transfected with pCI-based expression vectors for N1, C40S mutant and Bcl-xL together with a CD20 surface marker using Fugene 6 (Roche). Infected cells were stimulated with 1 µM ST for 2 h or left untreated as indicated. Transfected cells were selected using anti-CD20-coated magnetic beads on a magnetic-activated cell sorter (MACS) column 24 h post-transfection. Cells were replated in fresh medium, incubated for a further 24 h at 37 °C and then stimulated with 1 µM ST for 4 h. Cell lysates were tested for caspase 3/7 activity and caspase 3/PARP cleavage using antibodies that detected the cleaved 17 (p17) and 89 kDa (p89) fragments, respectively, as described previously (Cooray et al., 2003
). Equivalent loading was verified by blotting for
-tubulin (Upstate). Measurement of the change in mitochondrial potential (
m) was carried out using the potentiometric dye JC-1 as described previously (Cossarizza et al., 1993
). Briefly, cells were treated with ST, collected, washed in PBS and stained with 2 µM JC-1 dye (Invitrogen) at 37 °C for 30 min. Cells were washed in PBS and stained with anti-CD20 APC antibody (BD Pharmingen) for 20 min on ice. Cells were then washed in PBS, resuspended in FACS buffer [PBS with 2 % (v/v) FBS] and analysed by flow cytometry (FACScan; Becton Dickinson).
Subcellular fractionation.
Subcellular fractionation was carried out as described previously (Seth et al., 2005
). Briefly, HeLa cells were mock-infected or infected with vN1 or v
N1 at 10 p.f.u. per cell for 6 h. Cells were washed with cold PBS and homogenized by douncing 20 times in 10 mM Tris/HCl pH 7.5, 2 mM MgCl2, 10 mM KCl, 250 mM sucrose, 0.5 mM DTT and protease inhibitor cocktail. Nuclei were cleared from homogenates by centrifugation at 500 g for 10 min at 4 °C. Supernatants were then centrifuged at 5000 g for 10 min at 4 °C to collect crude mitochondria (M). Supernatants were centrifuged at 15 000 g to separate cellular organelles/membranes (O) and cytosol (C). Mitochondrial and organelle pellets were resuspended and rehomogenized in lysis buffer. Proteins were separated on NuPAGE Bis-Tris (12 % gel; Invitrogen), transferred to PVDF membranes and blotted with antibodies against N1, cytochrome c (BD Biosciences) or Bcl-xL (Cell Signaling Technology). Specific antibody binding was detected using an HRP-conjugated anti-rabbit antibody and visualized using ECL Plus detection.
Protein expression and crystallization.
The VACV N1L gene was cloned into pET24a and expressed as a C-terminally His-tagged protein as described previously (Bartlett et al., 2002
). To prevent protein aggregation and heterogeneity, a C40S mutation was introduced using the QuikChange site-directed mutagenesis kit (Stratagene), with primers N1LmutF 5'-GGTAGATGACGGCGATGTAAGCACATTGATTAAGAACTGAGA-3' and N1LmutR 5'-TCTCATGTTCTTAATCAATGTGCTTACATCGCCGTCATCTACC-3'. Native and selenomethionine (Se-Met) proteins were expressed in Escherichia coli B834(DE3). For Se-Met incorporation, a single colony was grown overnight in 100 ml base medium (Molecular Dimensions) containing 40 mg L-methionine l1. Bacteria were collected by centrifugation, washed and used to inoculate a 1 l culture containing 40 mg L-selenomethionine l1. Cultures were grown to an absorbance (A600) of 0.6 and protein expression was induced by the addition of 1 mM IPTG for 16 h at 20 °C.
The mutant N1 protein was purified by nickel-ion-affinity chromatography and gel filtration on a Superdex75 column (Amersham Biosciences). It was then concentrated to
14 mg ml1 in 50 mM Tris/HCl pH 8.5, 150 mM NaCl. Crystallization experiments were performed using a Cartesian robot (Brown et al., 2003
; Walter et al., 2003
). Crystals of N1 mutant were grown at 21 °C by vapour diffusion in 100 nl+100 nl sitting drops equilibrated against 0.2 M Na/K phosphate, 0.2 M NaCl and 10 % PEG 8000, pH 6.2. Crystals belonged to the space group P21 (a=71.7 Å, b=109.0 Å, c=70.1 Å,
=110.6 °) with six copies of N1 in the asymmetric unit (Table 1
). Data were collected at 100 K, using 20 % glycerol as the cryo-protectant.
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| RESULTS AND DISCUSSION |
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B following stimulation by IL-1 or Toll-like receptor agonists (DiPerna et al., 2004
B-dependent gene expression in VACV-infected cells, where N1 would be expressed at natural levels. HeLa cells were transfected with an NF-
B-responsive reporter gene and subsequently were either mock-infected or infected with a wild-type VACV (vN1), a recombinant VACV engineered to lack the N1L gene (v
N1) or a revertant VACV (vN1-rev) in which the N1L gene was reinserted into the deletion mutant at its natural locus (Bartlett et al., 2002
B gene expression showed that in mock-infected cells the addition of IL-1
increased gene expression six- to sevenfold, but infection by all three viruses reduced this greatly and to a similar extent (Fig. 1
B-responsive gene expression. This might have been because there are other NF-
B signalling inhibitors encoded by VACV (Haga & Bowie, 2005
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) and caspase 3/7 activation (Fig. 2a, b
N1) (Bartlett et al., 2002
N1-infected cells (Fig. 3b
N1-infected cells were still resistant to ST-induced apoptosis, consistent with the presence of other VACV apoptotic inhibitors (Taylor & Barry, 2006
N1-infected cells the proportion of cytochrome c in the cytosol versus the mitochondria was increased compared with mock-infected and vN1-infected controls (Fig. 3c
-tubulin levels verified equal loading.
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N1 and extracts were immunoprecipitated with antibodies against Bad, Bax, Bid, Bak and Bim. Alternatively, cells were transfected with plasmids expressing HA-tagged Bad, Bax or control protein eiF4E, infected with vN1 or v
N1 viruses, and immunoprecipitated with anti-HA or anti-N1 antibodies. Immunoprecipitates were analysed by immunoblotting with anti-N1 or anti-HA antibodies. N1 interacted with endogenous levels of Bad, Bax and Bid (Fig. 4a
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-helices (Fig. 5b
5 forms the hydrophobic core of the structure and is surrounded by the other helices. Comparison of N1 with Bcl-xL using program SHP (Stuart et al., 1979
s out of 114 with root-mean-square deviation (rmsd) 2.4 Å, and revealed secondary structure elements representing the BH motifs of Bcl-2 family members equivalent to those in Bcl-xL (Fig. 5d
1
2 loop of N1 is considerably shorter (8 residues) than in Bcl-xL (63 residues), a feature shared with other viral Bcl-2 counterparts (Huang et al., 2003
3 and
4, which lie roughly anti-parallel in the ligand-free structure of Bcl-xL, but are almost orthogonal in N1. This change affects the surface topology of N1, producing a groove, which is discussed below. Bcl-xL contains a longer
5 helix and shorter
5
6 loop than N1. Furthermore,
6 runs into an extra helix in Bcl-xL, whilst in N1 the structure is shortened, a compact loop enabling interaction between
6 and
7. The C-terminal hydrophobic
-helix of Bcl-xL, Bcl-w and Bax localizes these Bcl-2 proteins to mitochondria where they regulate the permeability of the outer mitochondrial membrane (Martinou & Green, 2001
Properties of the N1 BH3-binding groove and dimer interface
The predominantly acidic surface of N1 (Fig. 6a
) contains a surface groove formed by helices
2,
3,
4 and the N terminus of
5 (Fig. 5b
). In anti-apoptotic Bcl-2 family members, corresponding hydrophobic grooves serve as binding sites for the BH3 motifs of pro-apoptotic members (Sattler et al., 1997
; Petros et al., 2000
; Liu et al., 2003
). For Bcl-xL, unbound and peptide bound structures (Liu et al., 2003
) reveal that on peptide binding helix
3 is displaced, opening the groove to accommodate the peptide (Fig. 5c
). In contrast, the N1 groove has an open conformation that could readily bind BH3 regions of pro-apoptotic Bcl-2 proteins. Notably, N1 superimposes better on the Bcl-xLBim open-groove conformation (rmsd 2.4 Å) than the unbound closed-groove conformation (rmsd 2.8 Å). In Bcl-xL, residues from the BH1, BH2 and BH3 motifs are crucial for binding peptides from Bad (Petros et al., 2000
), Bak (Sattler et al., 1997
) and Bim (Liu et al., 2003
), usually by forming hydrophobic pockets in the groove. In N1, two of these hydrophobic residues (L27 and L42, located in
2 and
3) are conserved (Bcl-xL residues L90 and L108, respectively), some others are similar (L30A93, L33F97, V39F105, I66W137 and I75F146; the first residue in each pair is that of N1), whereas others are charged (D38A104, R58V126, K70V141 and R71A142). Overall, the N1 groove is distinguished by these charged residues (Fig. 6ac
) and by the absence of the characteristic NWGR sequence found at the N terminus of
5 in other Bcl-2 structures (Petros et al., 2004
) [whilst the N is conserved (N65) and W is replaced by the chemically similar I66, the GR pair are replaced by acidic residues E67 and D68, Fig. 5d
]. These changes suggest that contacts between the N1 groove and BH3 ligands would differ from the paradigm provided by the Bcl-xLBim peptide complex (Liu et al., 2003
). Residues I, L, I and F at points 1, 5, 8 and 12 in the BH3 motif (Figs 6d
, 7
) provide key anchor points in the hydrophobic Bcl-xL pockets (Figs 6b
, 7
). These anchors appear generic; similar hydrophobic residues being used in binding to Bak and Bad peptides (Sattler et al., 1997
; Petros et al., 2000
) (position 5 is strictly conserved).
|
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1 and
6 (Fig. 5a
5 and
6 (O'Neill et al., 2006
Charged residues in the N1-binding groove may contribute to BH3-binding specificity
To investigate if N1 might bind BH3 peptides, we first modelled Bad, Bak and Bim peptides into the N1 groove. Structural superposition (Stuart et al., 1979
) of N1 and the mouse Bcl-xLBim complex positioned the Bim peptide into the N1 groove. The Bad and Bak peptides were then superposed on Bim. This modelling procedure resulted in minor steric clashes between the peptides and the groove (e.g. R71 with G98 of the Bim peptide) that could be relieved by slight rearrangements. In each model, the central portion of the groove is occupied by the core sequence motif of the peptides representing the conserved BH3 motif (Fig. 6c
). However, the pockets that locate the hydrophobic anchor residues (which are entirely hydrophobic in Bcl-xL) are, in N1, lined by both hydrophobic and charged residues (for instance D38, V39, R71 and I75 for the L94 pocket, Fig. 6c
). As the N1 groove is constitutively open, such changes may be a strategy to avoid the unfavourable thermodynamic consequences of exposed hydrophobic patches on the protein surface. Collectively, these observations predict that N1 might bind the pro-apoptotic Bcl-2 proteins via their BH3 motifs, consistent with the biochemical data presented above (Fig. 4
). Furthermore, the BH3 motifs of the pro-apoptotic Bcl-2 proteins Bad, Bax and Bid are markedly less hydrophobic than those of Bak, Bim and Hrk due to differences in the residues flanking the core BH3 motif (Fig. 7
). This difference might explain why interactions between N1 and endogenous Bad, Bax and Bid, but not Bak or Bim were detected by immunoprecipitation. In contrast, in vitro binding of N1 to BH3 peptides from Bid, Bim and Bak, but not Bad, was reported by Aoyagi et al. (2007)
, but these interactions were not confirmed by analysis of whole proteins. These differences may reflect the different methods used. It is possible that, like N1, cellular Bcl-2 proteins also achieve selectivity by sensing the sequence of BH3 motif flanking regions.
Conclusions
Functional analysis demonstrates that N1 inhibits apoptosis both in transfected cells and in VACV-infected cells and, consistent with this, biochemical analysis shows that N1 binds pro-apoptotic Bcl-2 family proteins Bad, Bax and Bid. The crystal structure of N1 reveals that it is a dimeric Bcl-2-like protein with a surface groove that is constitutively open and that is predicted by molecular modelling to bind BH3 motif peptides of pro-apoptotic Bcl-2 family members. The surface groove also indicates how N1 might bind BH3 peptides selectively, and this has implications for cellular Bcl-2 protein interactions. The lack of significant sequence similarity between N1 and other Bcl-2 family proteins suggests that retention of the structure is a result of strong evolutionary pressure, and underlines the importance of structural information in understanding the molecular functions of proteins. It remains possible that other viral or cellular Bcl-2 family proteins exist that will only be identified through structural analysis. N1 is the first VACV protein shown to be a Bcl-2 family member and represents another example of VACV anti-apoptotic proteins.
| ACKNOWLEDGEMENTS |
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Received 6 December 2006;
accepted 6 March 2007.
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