Conceived and designed the experiments: XY ZA. Performed the experiments: ZY LW YZ ZA. Analyzed the data: XY ZY LW YZ ZA. Wrote the paper: XY ZA.
Current address: The Center for Disease Prevention and Control, Shijiazhuang, Hebei, The People's Republic of China
APOBEC3G (A3G), a deoxycytidine deaminase, is a potent host antiviral factor that can restrict HIV-1 infection. During Vif-negative HIV-1 replication, A3G is incorporated into HIV-1 particles, induces mutations in reverse transcribed viral DNA and inhibits reverse transcription. However, HIV-1 Vif counteracts A3G's activities by inducing its degradation and by blocking its incorporation into HIV-1 particles. Thus, it is interesting to elucidate a mechanism that would allow A3G to escape the effects of Vif in order to rescue its potent antiviral activity and to provide a possible novel therapeutic strategy for treating HIV-1 infection.
In this study, we generated an R88-A3G fusion protein by fusing A3G to a virion-targeting polypeptide (R14-88) derived from HIV-1 Vpr protein and compared its antiviral effects relative to those of HA-tagged native A3G (HA-A3G). Our study showed that transient expression of the R88-A3G fusion protein in both Vif− and Vif+ HIV-1 producing cells drastically inhibited viral infection in HeLa-CD4-CCR5-cells, CD4+ C8166 T cells and human primary PBMCs. Moreover, we established CD4+ C8166 T cell lines that stably express either R88-A3G or HA-A3G by transduction with VSV-G-pseudotyped lentiviral vector that harbor expression cassettes for R88-A3G or HA-A3G, respectively, and tested their susceptibility to Vif+ HIV-1 infection. Our results clearly reveal that expression of R88-A3G in transduced CD4+ C8166 cells significantly blocked Vif+ HIV-1 infection. In an attempt to understand the mechanism underlying the antiviral activity of R88-A3G, we demonstrated that R88-A3G was efficiently incorporated into viral particles in the presence of Vif. Moreover, PCR analysis revealed that R88-A3G significantly inhibited viral cDNA synthesis during the early stage of Vif+ virus infection.
Our results clearly indicate that R88 delivers A3G into Vif+ HIV-1 particles and inhibits infectivity and spread of the virions among CD4+ T cells. This study provides evidence for an effective strategy to modify a host protein with innate anti-HIV-1 activity and rescue its potent anti-HIV potential in the presence of Vif. Further characterization and optimization of this system may lead to the development of an effective therapeutic approach against HIV-1 infection.
Human immunodeficiency virus type 1 (HIV-1) infection of primary CD4+ T cells, macrophages and some immortalized T cell lines requires the HIV-1 encoded viral infectivity factor (Vif) protein. In the absence of Vif protein, apolipoprotein B mRNA editing enzyme, catalytic polypeptide-like 3G (APOBEC3G; hereafter referred to as A3G), which is a cellular cytidine deaminase, was found to interfere with the replication of retroviruses, including HIV-1
In activated T lymphocytes, A3G is packaged into the progeny virus through interactions with the NC domain of Gag and/or with the viral RNA during virion assembly
Given that A3G exerts potent anti-HIV activity which is neutralized by the HIV-1 Vif protein, characterization of the A3G-Vif interaction is of considerable interest, as it provides a target for novel therapeutic strategies against HIV-1 infection. Recent studies have shown that a single amino-acid substitution of an aspartic acid residue to a lysine at position of 128 of A3G abrogated its interaction with HIV-1 Vif and rescued A3G's antiviral activity
HIV-1 Vpr, a viral auxiliary protein, is efficiently incorporated
We initially sought to develop a strategy to antagonize the Vif-mediated blockade of A3G incorporation, and subsequently to inhibit HIV infection. A fusion protein termed R88-A3G was generated by fusing full-length A3G to the C-terminus of a virion-incorporation domain (R14-88) of HIV-1 Vpr
A). Schematic representation of constructs of HA-A3G and R88-A3G. HA-tag or Vpr14-88 was fused in frame to the N-terminus of Apobec3G (A3G). An HIV-1 protease cleavage site (PCS) was inserted between R88 and A3G. B). HA-A3G or R88-A3G was expressed in 293T cells. 293T cells were transfected with the HA-A3G or R88-A3G expressor. After 48 hours, cell lysates were immunoprecipitated with a mixture of anti-HA and anti-Vpr antibodies followed by Western blotting with anti-A3G antibody. C). Cleavage of R88-A3G in virus produced from HIV-1 expressing cells. 293T cells were cotransfected with HxBru-Vif− provirus and the HA-A3G or R-A3G expressing plasmid. After 48 hours, produced viruses were pelleted from supernatant by ultracentrifugation through a 20% sucrose cushion, lysed, and directly loaded onto 10% SDS-PAGE followed by Western blotting with anti-A3G polyclonal antibody (upper panel) or with anti-p24 monoclonal antibody (lower panel). The positions of R88-A3G and the cleaved product of A3G are indicated at right side of gel.
To determine whether R88-A3G exhibits anti-HIV activity in the presence of Vif, we co-transfected 293T cells with R88-A3G or HA-A3G plasmid and either Vif− or Vif+ HIV-1 provirus (HxBru-Vif− or HxBru-Vif+). At 48 hours post-transfection, the progeny viruses were collected and equal amounts of the viruses (adjusted by HIV-1 Gag-p24 levels) were used to infect HeLa-CD4-CCR5-β-Gal cells (
Viruses were produced from 293T cells transfected with 3 µg of HIV-1 HxBru-Vif+ or HxBru-Vif− with 4 µg of HA-A3G or R-A3G expressor. Then, equal amounts of produced viruses (as adjusted by the Gag-p24 level) were used to infect HeLa-CD4-CCR5-β-Gal cells and CD4+ C8166 T cells. A). At 48 hours post-infection, HIV-1 infected cells were detected by MAGI assay (left panel) and counted by Elispot Reader (right panel). B). At 48 hours post-infection, virus production in of C8166 cells were monitored by measurement of HIV-1 Gag-p24gag antigen in the supernatants with p24 ELISA assay (upper panel). Cell-associated HIV-1 Gag-p24 (middle panel) and Vif (lower panel) were detected by Western blotting with anti-p24 or anti-Vif antibodies, respectively. C). pNL4.3-GFP viruses were first produced from 293T cells co-transfected by pNL4.3/GFP provirus with HA-A3G or R88-A3G. Then, equal amounts of pNL4.3-GFP viruses were used to infect C8166 T cells. At 72 hours post-infection, the percentage of infected (GFP-positive) cells was measured by FACS analysis. D). Dose-dependent effect of R88-A3G on HIV-1 infectivity. Different amounts of R88-A3G plasmid (0, 0.2, 1, 2, 4 µg) and pNL4.3-GFP proviral DNA (3 µg) were used to co-transfect 293T cells. Viruses from each transfected cell culture were collected and equal Gag-p24 amounts of viruses were used to infect C8166 T cells. 72 hours later, percentage of infected (GFP-positive) cells was measured by FACS analysis (left panel). Meanwhile, the expression of R88-A3G in the corresponding transfected 293T cells was detected by Western blotting with anti-A3G antibody (right panel).
To further investigate whether R88-A3G exerts an antiviral effect on other HIV-1 strains, we produced pNL4.3-GFP viruses by co-transfecting pNL4.3/GFP+/Vif+ provirus with either HA-A3G or R88-A3G expressor in 293T cells. The level of infection by progeny viruses was analyzed in CD4+ C88166 T cells by determination of the percentage of infected (GFP-positive) cells with FACS analysis. Our results clearly showed that expression of the R88-A3G fusion protein, but not HA-A3G, efficiently blocked Vif+ pNL4.3 virus infection (
To understand the mechanisms whereby R88-A3G, but not HA-A3G, inhibits HIV-1 infection in the presence of Vif, we compared the intracellular expression and virion-incorporation of R88-A3G and HA-A3G. As Vif induces rapid proteasomal degradation of A3G
A). Effect of Vif on the degradation of R88-A3G. HA-A3G or R88-A3G expressor was transfected alone or co-transfected with pcDNA-hVif expressor in 293T cells. At 48 hour post-transfection, cells were pulse radiolabeled with [35S]-methionine for 30 min, and labeled cells were collected and lysed at 0, 1.5 and 5 hours after pulse-labeling. Then, the level of HA-A3G in each lysed-cell sample was detected by anti-HA immunoprecipitation (upper panel). The level of R88-A3G in each lysed-cell sample was evaluated by anti-Vpr immunoprecipitation (middle panel). To detect HIV-1 Vif expression in different transfected cell samples, an aliquot of transfected cells from each culture was lysed and directly loaded onto 12.5% SDS-PAGE followed by Western blotting with anti-Vif antibody (lower panel). B). R88-A3G was efficiently incorporated into viral particles in the presence of Vif. 293T cells were co-transfected with HxBru-Vif+ (3ug) and HA-A3G or R88-A3G expressor (2ug). After 48 hours cells were collected and the produced virus particles were collected from supernatant by ultracentrifugation through a 20% sucrose cushion. Both cell and virus lysate samples were directly loaded onto a 12% SDS-PAGE gel and analyzed by Western blotting with rabbit anti-A3G and anti-p24, as indicated (upper panel). The ratio of R88-A3G or HA-A3G incorporation into the viral particle relative to the total amount of R88-A3G or HA-A3G was also quantified by laser densitometry (lower panel). The data presented herein are the means and standard deviations from two independent experiments.
Based on the above observations, we considered that the remaining non-degraded R88-A3G, but not HA-A3G, could be efficiently incorporated into virus particles in the presence of Vif. Indeed, several previous reports have indicated that, even though a low level of A3G was detected in Vif+ HIV producing cells, Vif may act as an effective barrier to prevent A3G from being incorporated virions virus and thereby completely neutralize the antiviral activity of A3G
The above results indicate that R88-A3G is efficiently incorporated into virions despite the presence of Vif. We next addressed how incorporated R88-A3G affects HIV-1 replication. Firstly, we determined whether the presence of R88-A3G affects HIV-1 maturation during virus production. The levels of virion-associated reverse transcriptase and Gag-p24 were visualized by immunoprecipitation of lysed virus-samples with human anti-HIV serum followed by Western blotting with rabbit anti-RT and anti-p24 antibodies. Similar levels of reverse transcriptase and Gag-p24 were detected in Vif+ and Vif− viruses regardless of HA-A3G or R88-A3G expression during virus production (
A). R88-A3G does not affect virus maturation. HxBru-Vif− and Vif+ viruses produced from 293T cells co-transfected with corresponding provirus and HA-A3G or R88-A3G expressor were pelleted, lysed and processed for immunoprecipitation with human anti-HIV serum. The immunoprecipitates were submitted to 10% SDS-PAGE and analyzed by Western blotting using rabbit anti-anti-RT antibody (upper panel) and anti-p24 antibodies (lower panel). B). R88-A3G inhibits viral cDNA synthesis at early stage of viral infection. Dividing C8166 T cells were infected with equal amounts of different HxBru-Vif+ virus stocks, which were produced from 293T cells co-transfected with the provirus and HA-A3G or R88-A3G expressor. At 12 hours post-infection, 1×106 cells were lysed and the total viral DNA was detected by PCR using HIV-1 LTR-Gag primers, as described in
Several studies have reported that, in the absence of Vif, encapsidated A3G is capable of inhibiting HIV-1 reverse transcription after virus entry, and that this activity is not related to A3G's deaminase activity
Results from the above-mentioned experiments suggest that R88-A3G has effective antiviral activity when it is transiently over-expressed in 293T cells. We also studied whether stable low level expression of R88-A3G in CD4+ T cells exerts a similarly potent anti-HIV activity. First, we generated CD4+ C8166 T cell lines expressing either R88-A3G or HA-A3G fusion proteins by transducing C8166 T cells with a VSV-G pseudotyped lentiviral vector, which contained HA-A3G or R88-A3G transgene, as described in
C8166 T cells (10×106) were transduced with lentiviral vectors containing R88-A3G (pYEF1-R88-A3G-puro), HA-A3G (pYEF1-HA-A3G-puro) transgenes or empty vector (pYEF1-MCS-Puro), and puromycin-resistant cell population was selected by puromycin (0.5 µg/ml). Once the puromycin-resistant cell population was obtained, different analyses were performedfor their characterization. A). To detect R88-A3G and HA-A3G expression in C8166 T cells, transduced cells were infected with HxBru-Vif− and HxBru-Vif+ virus. After 72 hours of infection, the produced viruses in the supernatant were concentrated by ultracentrifugation over 20% sucrose cushions. Then, virus pellets were lysed and resolved by 10% SDS-PAGE followed by Western blotting using anti-A3G and anti-p24 antibodies. B). The CD4 receptor expression levels observed on vector- and R88-A3G-transduced C8166 T cells were analyzed by using anti-CD4 staining and a flow cytometry assay. C). The cell cycle profile of vector- and R88-A3G-transduced C8166 T cells was analyzed by measurement of the cellular DNA content by staining with 30 µg/ml of propidium iodide (PI) and flow cytometry assay. D). To assess the growth of vector- and R88-A3G-transduced C8166 T cells, a WST assay was performed to determine cell viability at different time points. Each experiment was performed in triplicate and repeated at least three times. Results are shown as the mean ± SD of representative experiments.
Prior to studying the resistance of an R88-A3G expressing cell line to HIV-1 infection, we characterized the possible impact of stable expression of R88-A3G on cell growth and expression of an HIV receptor, CD4. CD4 surface receptor expression on R88-3G- and vector-transduced C8166 T cell lines were measured by anti-CD4 staining and FACS analysis. This analysis showed no difference between the two transduced C8166 T cell lines (
HIV-1 Vpr has been shown to induce cell cycle arrest at the G2/M phase
We then assessed the resistance of R88-A3G-transduced C8166 T cells to HIV-1 infection. Vector-, HA-A3G- or R88-A3G-transduced cells (1×106 cells) were infected with equal amounts of Vif+ HIV-1 virus (pNL4.3-GFP). At 72 hours post-infection, virus-containing supernatants (passage 1) were collected. Similar volumes (1 ml) of infectious supernatant were used to infect fresh and corresponding C8166 cell lines (passage 2). At 3 days post-infection, the same volumes (1 ml) of infectious supernatant were collected and used to infect corresponding C8166 cell lines (passage 3). The HIV-1 Gag-p24 levels in supernatants collected from corresponding cultures for each passage were measured by an HIV-1 p24 ELISA. The results of this assay indicate that initial infection of R88-A3G-transduced cells with Vif+ HIV-1 (passage 1) resulted in viral production that was approximately 50% of that observed for vector-transduced cells (
A). Equal amounts of pNL4.3-GFP virus were used to infect vector-, HA-A3G-, or R88-A3G-transduced C8166 cell lines. After 48 hours of infection, virus-containing supernatants (passage 1) were collected, and the same volume of infectious supernatant was used to infect fresh and transduced C8166 cells (passage 2). The same procedure was performed again until virus-containing supernatants at assage 3 were obtained. Then, levels of HIV-1 Gag-p24 antigen in supernatants from passages 1, 2, and 3 were measured by HIV p24 ELISA assay. B). To test the effect of R88-A3G on virus infectivity, equal amounts (adjusted by Gag-p24 level) of virus from passage 1 were used to infect fresh R88-A3G-transduced C8166 cells. At different time points, the supernatants were collected and the HIV Gag-p24 level was measured to monitor virus replication. Also, at day 6 post-infection, the percentage of HIV-infected (GFP-positive) cells was evaluated by the flow cytometry assay (C).
To rule out the possibility that the reduction or loss of virus transmission in the following passages may be a result of the reduced virus production, we evaluated viral replication kinetics in R88-A3G- or vector-transduced cells by infecting cells with equal amounts of the viruses, which were normalized by Gag-p24 levels produced by the corresponding cell lines (passage 1). At every 2-day interval, Gag-p24 ELISA and the FACS analysis were performed to assess virus replication. The results of these assays revealed that progeny viruses produced from R88-A3G-transduced cells lost their replication potential over an 8-day period (
We assessed whether R88-A3G blocks HIV-1 infection in human PBMCs. Equal amounts of pNL4.3-GFP viruses produced from vector- or R88-A3G-transduced C8166 cells (in
Equal amounts of pNL4.3-GFP viruses produced from vector- or R88-A3G-transduced C8166 cells (in
The cellular cytidine deaminase A3G is a powerful innate antiviral factor that restricts HIV-1 infection in resting peripheral blood CD4+ T-lymphocytes
It is known that Vif reduces the intracellular level of A3G in virus-producing cells by inducing rapid A3G degradation
The inhibition of R88-A3G on Vif+ virus infectivity was examined by measuring its effect on viral reverse transcription synthesis. Viruses produced by R88-A3G-expressing cells were defective at reverse transcription (
Our initial experiments revealed that co-expression of R88-A3G and HIV-1 in 293T cells significantly inhibited progeny virus infectivity regardless of the presence of Vif protein. Importantly, these experiments raise the concern that the effect of R88-A3G is, at least in part, due to its over-expression during viral production. Therefore, it is necessary to assess whether a lower level of R88-A3G expression in CD4+ T cells renders cells resist to viral infection. To that end, we introduced R88-A3G into CD4+ C8166 T cells by use of a lentiviral vector. These transduced CD4+ T cell lines expressed very low levels of the R88-A3G fusion protein, such that we could not detect R88-A3G protein expression in these cells. Instead, we detected R88-A3G in concentrated viruses released from these cells (
Overall, this study demonstrates a novel strategy to modify a host innate anti-HIV protein and rescue its potent anti-HIV potential, even in the presence of Vif. Further characterization and optimization of this system may lead to development of an effective therapeutic approach against this deadly viral infection.
The cDNA of human APOBEC3G (A3G) was kindly provided by Dr. S.K. Petersen-Mahrt
To generate a lentiviral vector for T cell transduction, a pEF1-pcs-puro vector was first constructed based on a HIV-based vector pHxEGFPWP
Human embryonic kidney 293T cells and HeLa-CD4/CCR5 β-Gal cells were maintained in Dulbecco's Modified Eagles Medium (DMEM) supplemented with 10% fetal calf serum (FCS) and 1% penicillin and streptomycin. The CD4+ C8166 T cell lines were maintained in RPMI-1640 medium containing 10% FCS and 1% penicillin and streptomycin PBMCs were isolated from the blood of healthy adult volunteers by sedimentation in Ficoll-Hypaque (Sigma-Aldrich Canada, Inc., Oakville, Ontario). Isolated PBMCs were stimulated with 0.1% phytohemaglutinin (PHA) and maintained in RPMI 1640 supplemented with 5% IL-2. DNA transfection of 293T cells was performed with standard calcium phosphate DNA precipitation method.
Antibodies used in immunoprecipitation or Western blotting are as follows. The purified rabbit anti-hA3G (Cat# 10201), anti-RT (Cat# 6195) and anti-Vif (Cat#2221) polyclonal antisera were obtained through the NIH AIDS Research and Reference Reagent Program. The anti-HA monoclonal antibody was purchased from Sigma. The rabbit anti-Vpr antibody and HIV-1 positive human serum 162 were described previously
To test the effect of R88-A3G and HA-A3G on HIV-1 infection, 293T cells were co-transfected with corresponding HIV-1 proviral DNA and R88-A3G or HA-A3G plasmids. Supernatants were collected at 48 hours post-transfection and subjected to ultra-centrifugation (32,000 rpm for 1 hour at 4°C) to pellet the virus. Quantification of virus stocks was determined by Gag-p24 measurements using an HIV-1 p24 ELISA Kit (purchased from the AIDS Vaccine Program of the Frederick Cancer Research and Development Center) or by an RT activity assay
To evaluate virus infection in HeLa-CD4/CCR5-β-Gal cells, equal amounts (adjusted by Gag-p24 levels) of virus were used to infect cells in 24-well plates. At 48 hours post-infection, the number of β-Gal positive cells was detected by the MAGI assay, as described previously
To infect CD4+ C8166 T cells and human PBMCs, equal amounts of viruses were incubated with susceptible cells at 37°C for 4 hours. Then, the cells were washed and incubated with fresh medium. At different time points, viral production levels were monitored by measurement of HIV-1 Gag-p24 antigen in each infected culture supernatant by HIV-1 Gag-p24 ELISA. To evaluate the infection mediated by pNL4.3-GFP HIV-1 virus, infected cells were fixed with PBS-4% paraformaldehyde and detected by fluorescence-activated cell sorter (FACS; Becton Dickenson FACS Calibur) analysis or observed under fluorescence microscopy.
Production of VSV-G pseudotyped lentiviral vectors: Pseudotyped lentiviral vector stocks were produced by co-transfection of 293T cells with pYEF1-R88-A3G-puro or pYEF1-HA-A3G-puro vector, the HIV packaging plasmid pCMVΔR8.2
Transduction and puromycin selection: VPs (equivalent to 100 to 300 ng of Gag-p24) were incubated with C8166 T cells for overnight. After washing, transduced and non-transduced cells were incubated with fresh RPMI containing puromycin (0.5 µg/ml). The transduced C8166 T cells were under selection of puromycin for at least 10 days. As a control, non-transduced cells were likewise submitted to selection and did not survive beyond day 4 under the same concentration of puromycin. The cell cycle profile of transduced cells was analyzed as previously described
Cell proliferation assay: The number of surviving cells was measured by the 4-[3-(4-iodophenyl)-2-(4-nitrophenyl)-2H-5-tetrazolio]-1,3-benzene disulfonate (WST-1) assay (Roche). Briefly, pYEF1-MCS-puro and pYEF1-R88-A3G-puro transduced cells were cultured at a density of 15×103 cells/well in 96-well plates and incubated at 37°C. At different time points, WST (10 µl/well) was added in the culture and the cells were incubated for 4 hours at 37°C. After shaking thoroughly for 1 min, the absorbance was measured at 490 nm using a microplate (ELISA) reader.
To perform pulse-chase radiolabeling experiments, 293T cells were transfected with HA-A3G or R88-A3G expressor alone or co-transfected with pcDNA-hVif expressor. After 40 hours, cells were incubated for 30 min with starve medium (DMEM without methionine, plus 10% dialyzed FBS). Then the cells were pulse-labeled for 30 min with 200 µCi of [35S]-methionine (Perkin Elmer). At the end of labeling, the radiolabeled medium was removed, and cells were washed with medium containing an excess of un-labeled methionine and incubated in complete DMEM for various times at 37°C. Labeled cells were then pelleted, lysed and immunoprecipitated using human anti-HA or anti-Vpr antibody. Immunoprecipitates were then resolved by 10% SDS-PAGE followed by autoradiography.
To analyze protein expression in cells and/or in viral particles, cell lysates or lysed viral samples were directly loaded onto 10% SDS-PAGE gel and different protein levels were analyzed by Western blot with corresponding antibodies. The HRP-conjugated donkey anti-rabbit IgG, sheep anti-mouse IgG and anti-human IgG (Amersham Biosciences) were used as secondary antibodies, and protein bands were then visualized by using an enhanced chemiluminescence kit (PerkinElmer Life Science, Boston, MA).
C8166 T cells were infected with equal amounts of HxBru-Vif+ viruses produced from 293T cotransfected with HA-A3G or R88-A3G. Prior to infection, viruses were treated with 340U/ml DNAse (Invitrogen, Inc.) for 1 hour in 37°C to remove residual plasmid DNA. After 2 hours of infection, cells were washed with PBS and cultured in RPMI medium. At 12 hours post-infection, equal numbers (1×106 cells) of cells were collected, and DNA was extracted using a QIAmp DNA Blood Mini kit, following the manufacturer's instructions (QIAGEN, Valencia, Calif.). The DNA samples were processed for detecting total viral DNA synthesis by using LTR-Gag primers, as described previously
We thank Dr. S.K. Petersen-Mahrt and Dr. E.A. Cohen for kindly providing A3G cDNA and pNL4.3-GFP/Nef provirus, respectively. Also, we are grateful to Dr. G. Kobinger for providing the HIV-based vector pHxEGFPWP. We also thank Drs. W.C. Greene, S.L. Grice, D. Gabuzda, A.S. Bour, K. Strebel, and M. Emerman for providing anti-A3G, anti-RT, anti-Vif antibodies, pcDNA-hVif, and HeLa-CD4/CCR5-β-Gal cells, which were obtained through the AIDS Research Reference Reagent Program, Division of AIDS, NIAID, NIH. We thank Dr. Keith Fowke and Mr. John Rutherford for their technical support.