Previous Article | Next Article ![]()
Journal of Virology, December 2003, p. 13084-13092, Vol. 77, No. 24
0022-538X/03/$08.00+0 DOI: 10.1128/JVI.77.24.13084-13092.2003
Copyright © 2003, American
Society for
Microbiology. All Rights Reserved.
James E. K. Hildreth,2 Robert F. Siliciano,3 and Katherine L. Wilson1*
Department of Cell Biology,1 Department of Pharmacology and Molecular Sciences,2 Department of Medicine, The Johns Hopkins University School of Medicine, Baltimore, Maryland 212053
Received 2 June 2003/ Accepted 11 September 2003
|
|
|---|
|
|
|---|
28-nm-diameter) structures that
include HIV-encoded matrix (MA) and NC proteins, plus IN, RT, Vpr, host
proteins HMGa1 and BAF, and 3 µm of retroviral DNA
(25,
26). The structure and
composition of the PIC appear to change over time and are incompletely
understood (34). The PIC
translocates rapidly toward the nucleus by engaging
microtubule-dependent motors
(46). In nondividing or
G1-phase cells, several viral proteins including IN, MA, and
Vpr are proposed to mediate PIC entry into the nucleus through the
nuclear pore complexes (5,
15,
23). Once inside the nucleus, the PIC must integrate the viral DNA into a host chromosome to establish a productive infection (41). HIV-1 integration favors regions of chromosomes with active genes, which have more "open" chromatin structure (56). It is not known if this bias for expressed chromatin is trivial (easier access) or deliberate. In contrast, the mechanics of the DNA end processing and joining events for HIV-1 are well characterized (29) and are mediated by IN (17, 59).
PICs isolated
from the cytoplasm of cells infected with either Moloney murine
leukemia virus (MoMLV) or HIV-1 can fully and efficiently integrate
into target DNA in vitro
(16,
19). Interestingly, PICs
that are first extracted with 1 M KCl contain IN but fail to integrate
(12,
38,
39), suggesting that PICs
contain salt-extractable factors required for integration.
Salt-extracted PICs lose a special structure, termed the intasome,
normally present at each end of the viral DNA
(13,
63). A host factor
purified from the cytoplasm of uninfected NIH 3T3 cells was found to
restore intasome structure
(12,
28) when added to
salt-extracted HIV-1 PICs. This factor was a small (10-kDa) human
protein, barrier-to-autointegration factor (BAF), dimers of which bind
directly but nonspecifically to double-stranded DNA
(8,
38,
67). Purified BAF protein
also protects salt-extracted MoMLV PICs against suicidal
autointegration (hence, barrier-to-autointegration factor
[38]). These
findings suggest that BAF has both protective and positive roles early
in HIV-1 infection. As evidence for direct roles, BAF was
recently shown to be a bona fide component of HIV-1 and
MoMLV PICs
(43,
60). A different host
protein named HMGa1 (formerly known as HMG I/Y) is also present in PICs
and promotes integration in vitro but is
500-fold less active
than BAF in vitro (12,
42).
BAF is an evolutionarily conserved, essential chromatin protein in metazoans (64; M. Segura-Totten and K. L. Wilson, unpublished results). When incubated with DNA, BAF dimers oligomerize in groups of ca. six to form higher-order nucleoprotein complexes in vitro (67). BAF also interacts with LAP2ß, a nuclear inner membrane protein (22), and can form complexes with both LAP2 and DNA in vitro (58), suggesting that BAF might link chromatin to the nuclear envelope. BAF recognizes a conserved 40-residue motif, termed the LEM domain (named LEM for LAP2, emerin, and MAN1), which defines a family of nuclear proteins including LAP2, emerin, and MAN1 (7, 61). A subset of BAF resides in the cytoplasm of mammalian cells (30, 43, 57), consistent with its original purification from NIH 3T3 cells (38). A significant fraction of nuclear BAF concentrates near the nuclear envelope in vertebrate cells, where LEM domain proteins are enriched (31, 57, 64). In Caenorhabditis elegans, BAF enrichment near the nuclear envelope requires emerin and MAN1 (44). During mitosis, BAF localizes to chromatin and appears to have a structural role in recruiting emerin during nuclear envelope assembly (27). BAF can influence higher-order chromatin structure either positively (enhanced chromatin decondensation) or negatively (compressing chromatin) in Xenopus nuclear assembly extracts (57). Interestingly, BAF also appears to have direct roles in gene regulation (30, 62). The mechanisms of BAF's functions in healthy uninfected cells are not yet understood.
Previous reports suggested that BAF was expressed in all cell types (67), consistent with its proposed essential roles in cell division (27, 57, 67). BAF was not detected in virions in previous studies (38) and was therefore hypothesized to be acquired by newly formed PICs from the cytoplasm (38, 43). However, we found that BAF mRNA and protein were low or not detected in both thymus tissue and resting CD4+ T lymphocytes. Given its proposed role in protecting HIV-1 PICs, we hypothesized that HIV-1 virions might "bring their own BAF." Our results support this hypothesis and further show that BAF binds to both p55 Gag and mature recombinant MA with low micromolar affinities. Direct binding between BAF and MA has important implications for PIC assembly and structure, which are discussed.
|
|
|---|
Purification of resting and activated CD4+ T lymphocytes. (i) Purification of resting CD4+ T lymphocytes. Human peripheral blood mononuclear cells (PBMCs) were purified by Hypaque-Ficoll gradient centrifugation followed by monocyte depletion via adherence. A highly purified population of resting CD4+ HLA-DR- T lymphocytes was obtained by bead depletion of unwanted cells and subsequent sorting as described previously (14). Purity of the resulting CD4+ HLA-DR- T lymphocytes was determined by fluorescence-activated cell sorting (FACS) analysis using phycoerythrin (PE)-conjugated anti-CD4 antibodies and fluorescein isothiocyanate (FITC)-conjugated HLA-DR antibodies (BD Biosciences Pharmingen, San Diego, Calif.).
(ii) Purification of activated CD4+ T lymphocytes. PBMCs were purified by Hypaque-Ficoll gradient centrifugation and activated by adding 5 µg of phytohemagglutinin (PHA) per ml and culturing for 3 days in medium containing interleukin-2 and cytokine-rich supernatant from activated T lymphocytes. On day four, CD8+ T lymphocytes were removed by magnetic bead depletion (Dynabeads M-450 CD8; Dynal Biotech), and CD4+ T lymphocytes were positively selected using magnetic beads followed by bead detachment (CD4 positive isolation kit; Dynal Biotech) per the manufacturer's instructions. The purity and activation status of CD4+ T lymphocytes were determined by FACS analysis using FITC-conjugated anti-CD4 antibodies (Caltag, Burlingame, Calif.), PE-conjugated anti-CD25 antibodies (Coulter-Immunotech, Brea, Calif.), PE-conjugated anti-CD69 antibodies (Pharmingen, San Diego, Calif.), and PE-conjugated HLA-DR antibodies (Coulter-Immunotech).
Preparation and purification of HIV-1 virions and microvesicles. Viruses were purified as described previously (4) from clarified cell culture supernatants by two successive rounds of ultracentrifugation in sucrose density gradients (double banded). Virus-containing fractions were identified by absorption with UV light at 280- and 254-nm wavelengths. Peak UV-absorbing fractions were pooled, diluted to less than 20% sucrose in TNE buffer (10 mM Tris-HCl [pH 7.2], 100 mM NaCl, and 1 mM EDTA in deionized water), pelleted by ultracentrifugation at 100,000 x g, and resuspended in TNE buffer. Samples were stored at -70°C. Microvesicles were isolated from the culture supernatant of uninfected H9 cells as described previously (3). The H9 cell line was obtained from the American Type Culture Collection (Rockville, Md.) and maintained in complete RPMI 1640 medium (GIBCO-BRL, Life Technologies, Gaithersburg, Md.) containing 10% fetal calf serum (HyClone, Logan, Utah) and 10 mM HEPES. The T-tropic virus used in this work was identified according to the virus strain and cell line in which it was propagated (the AIDS Vaccine Program [AVP], Frederick, Md.) as HIV-1MN/H9 and represents a single-cell clone produced by limiting dilutions (52).
Western blotting for BAF, CD45, and p24 (capsid [CA]). Before loading on gels, HIV-1 virion samples and purified BAF protein were heated to 60°C for 5 to 10 min in sodium dodecyl sulfate (SDS) sample buffer supplemented with 5% ß-mercaptoethanol. We then loaded 106 resting or activated CD4+ T lymphocytes per lane on NuPAGE gels (Invitrogen Corp., Carlsbad, Calif.) with SDS and 4 to 12% polyacrylamide. After electrophoresis, proteins were transferred to nitrocellulose filters at 100 V for 45 min in transfer buffer (50 mM Tris [pH 7.5], 380 mM glycine, 0.1% SDS, and 20% methanol). After blocking with phosphate-buffered saline (PBS) containing 5% nonfat powdered milk (Safeway) and 0.1% Tween 20, filters were incubated at 4°C overnight with anti-BAF rabbit serum 3273 diluted 1:1,000 (57). Blots were then washed three times (15 min each time), incubated with horseradish peroxidase-conjugated goat anti-rabbit antibodies (1:5,000 dilution; Pierce, Rockford, Ill.), and washed three times in PBS containing Tween 20 for 15 min each. Proteins were visualized by enhanced chemiluminescence and exposure to Hyperfilm MP (Amersham Biosciences, Piscataway, N.J.).
To probe for BAF protein in purified HIV-1 virions, equal amounts of protein were loaded per lane on NuPAGE gels (Invitrogen Corp.), resolved by SDS-polyacrylamide gel electrophoresis (SDS-PAGE), transferred to filters, and probed with antibodies against BAF (as described above), CA protein (1:7,000 dilution) (AVP), or CD45 (BD Biosciences, Palo Alto, Calif.) (1:5,000 dilution). All primary antibodies were diluted in PBS containing 0.1% Tween 20 and 5% milk and processed as described above. Fresh and recently frozen virions gave the best BAF signal; we speculate that BAF is slowly degraded in frozen samples.
Blot overlays. Purified proteins (p55 Gag, IN, and RT) were obtained from the National Institutes of Health (NIH) AIDS Research and Reference Reagent Program. MA and CA were also produced recombinantly in Escherichia coli transformed with plasmids obtained from the NIH AIDS Research and Reference Reagent Program. Proteins or crude bacterial lysates were separated on SDS-10% polyacrylamide gels, transferred to nitrocellulose membranes (Schleicher and Schuell Bioscience, Keene, N.H.), and blocked for 1 h in PBS containing Tween 20 and 5% nonfat dry milk. Blots were then washed twice in blot rinse buffer (BRB) (10 mM Tris-HCl, 150 mM NaCl, 1 mM EDTA, 0.1% Tween 20) for 5 min at 22 to 24°C and incubated overnight with 20 µCi of 35S-labeled BAF diluted 1:200 into BRB containing 0.1% fetal calf serum (final volume, 3 ml). Probe 35S-labeled BAF was synthesized in eukaryotic transcription and translation extracts as described previously (37). Blots were washed twice in BRB, dried, and exposed to Hyperfilm MP.
Binding assays. (i) Microtiter well binding assay. Purified p55 Gag was obtained from the NIH AIDS Research and Reference Reagent Program. Recombinant BAF was synthesized in E. coli and purified as described previously (57); for a detailed protocol, contact K. L. Wilson. Known amounts of protein, namely, p55 Gag or BAF (2 µg per well) or bovine serum albumin (BSA) (as negative control) in binding buffer (20 mM HEPES [pH 7.4], 110 mM potassium acetate, 2 mM magnesium acetate, 1 mM EGTA), were adsorbed to microtiter wells, and then 3% BSA was added to block nonspecific binding sites. In fact, 1.8 pmol of Gag and 10 pmol of BAF dimer actually bound to the well. Wells were not allowed to dry. Increasing concentrations of soluble 35S-labeled BAF or 35S-labeled MA, transcribed and translated in rabbit reticulocyte lysates, were incubated with immobilized p55 Gag or BAF, respectively, or the corresponding BSA-coated control wells. After the wells were washed three times with binding buffer, bound proteins were eluted with 5% SDS and quantified by scintillation counting as described previously (30). 35S-labeled BAF and 35S-labeled MA did not bind significantly to BSA controls (data not shown).
(ii) Coimmunoprecipitation in vitro. Different amounts of purified proteins were mixed and incubated for 30 min at 22 to 25°C to allow binding. We then added 100 µl of immunoprecipitation (IP) buffer (20 mM HEPES [pH 7.9], 150 mM NaCl, 10 mM EDTA, 2 mM EGTA, 0.1% Nonidet P-40 [NP-40], 10% glycerol, 1 mM dithiothreitol, 1 mM phenylmethylsulfonyl fluoride [PMSF], 20 µg of leupeptin per ml) to each sample. MA was immunoprecipitated using polyclonal serum (AVP) and incubated 1 h at 4°C. Washed protein A Sepharose beads (50 µl per sample; Amersham/Pharmacia Biotech, Piscataway, N.J.) were added, and samples were incubated overnight at 4°C and centrifuged at 2,000 rpm (Eppendorf 5415C) for 5 min to pellet beads. Pellets were washed four times with IP buffer. Bound proteins were eluted by boiling in 30 µl of 2x SDS sample buffer, resolved by SDS-PAGE, and immunoblotted as described above.
(iii) Immunoprecipitation from cell lysates. Transfected HeLa cells were rinsed twice with PBS, incubated with 200 µl of lysis buffer (150 mM NaCl, 50 mM Tris [pH 8.0], 1% NP-40, 1 mM PMSF, 20 µg of leupeptin per ml) and collected by scraping. The entire lysate was transferred into a 1.5-ml tube and centrifuged at 14,000 rpm for 1 min (22 to 25°C) to remove cellular debris. Each 200-µl cell lysate was precleared by incubation with protein A Sepharose beads (20 µl) at 4°C for 30 min. The supernatant (precleared lysate) was then divided into aliquots. Each IP reaction mixture consisted of 10 µl of precleared lysate plus 4 µl of MA antibody, which were incubated overnight at 4°C and then supplemented with 20 µl of protein A Sepharose beads (Amersham/Pharmacia Biotech), incubated for 2 h at 4°C, and centrifuged at 2,000 rpm (Eppendorf centrifuge 5415C) for 5 min. Pelleted beads were washed four times with lysis buffer. Bound proteins were extracted by boiling in 30 µl of 2x SDS sample buffer, resolved by SDS-PAGE, and immunoblotted as described above.
|
|
|---|
![]() View larger version (56K): [in a new window] |
FIG. 1. Expression
of BAF mRNA in human tissues. (A) Agarose gel analysis of
semiquantitative RT-PCR experiments done using two multiple tissue
panels of first-strand cDNAs. Similar amounts of BAF cDNA (273 bp) were
amplified from heart (H), brain (B), placenta (Pl), lung (Lu), liver
(Li), skeletal muscle (Sk), kidney (K), pancreas (Pa), spleen (S),
prostate (P), testis (Tes), ovary (Ov), small intestine (SI), and colon
(C). BAF mRNA was not detected in thymus (Th) or peripheral blood
leukocytes (PBL). Control experiments using primers specific to
housekeeping enzyme GAPDH verified that all tissues amplified similar
amounts of the 800-bp GAPDH fragment, confirming RNA integrity in these
samples. (B) Western blot of protein lysates from resting
(R) and day 4 in vitro-activated (A)
CD4+ T lymphocytes probed with preimmune (Pre) or
immune (Im) rabbit serum against human BAF. Monomeric BAF migrates at
11 kDa on gels (57).
Recognition of BAF was specific, because no signal was obtained when
immune antibodies were pretreated with peptide antigen
(Im+pep). (C) Agarose gel analysis of
semiquantitative RT-PCR experiments performed using RNA purified from
CD4+ T lymphocytes at the indicated times after
activation. M, molecular size
markers.
|
We next used RT-PCR to assay BAF and GAPDH mRNA levels in purified CD4+ T cells as a function of time after activation (Fig. 1C). Low mRNA levels were detected for BAF and GAPDH at time zero (Fig. 1C); these low signals, which might be due to contaminating cells, decreased during the first 24 h after activation but then increased by day 2. By day 4, mRNA levels increased almost twofold for BAF and sixfold for GAPDH compared to the levels at time zero (Fig. 1C). A previous study of cyclin A expression (36) suggested that isolated resting T lymphocytes enter G1 phase of the cell cycle 2 to 3 days after activation. Thus, by both criteria (mRNA and protein), BAF expression was low in resting CD4+ T-lymphocyte populations and increased when cells became metabolically active and reentered the cell cycle.
BAF is present in HIV-1 virions. Since BAF is hypothesized to be essential for the integrity of retroviral PICs, its apparent absence from thymus tissue and very low levels in resting CD4+ T lymphocytes suggested two possibilities: either HIV-1 can newly infect only activated CD4+ T lymphocytes, which express BAF protein, or BAF is preincorporated into HIV-1 virions. To revisit the latter possibility, we probed immunoblots of sucrose gradient-purified HIV-1 virions (HIVMN) obtained from the culture medium of infected H9 cells. Our first experimental results suggested that BAF was abundant in HIV-1 virions (data not shown). However, virion preparations can include many contaminating host proteins present in microvesicles, which are shed from cells and copurify with virions (3).
To rigorously determine whether BAF was virion associated, we isolated virus particles from infected H9 cells, and in parallel, we isolated microvesicles from uninfected H9 cells. Equal amounts of protein from each preparation were either left untreated or digested for 14 h with subtilisin, a nonspecific protease (52). Virion core particles are shielded from digestion by the virus membrane. In contrast, protease digestion removes >95% of contaminating nonviral cellular debris and makes microvesicles lighter, allowing them to be removed by centrifugation (51). We therefore centrifuged each sample through 20% sucrose to separate virions from proteolyzed debris and microvesicles. The pellets were resolved by SDS-PAGE and immunoblotted using antibodies against human BAF, virus-encoded p24 (CA) protein, and microvesicle marker protein CD45 (18, 48, 51). These markers verified the identity of each fraction, confirmed that viral protein p24 (CA) was quantitatively protected from proteolysis and showed that the exposed microvesicle protein CD45 was sensitive to proteolysis, as expected (Fig. 2A). Importantly, most of the BAF in HIV-1 virions was protected from proteolysis and copurified with CA, whereas microvesicle-associated BAF failed to pellet after proteolysis (Fig. 2A). On SDS-polyacrylamide gels, virion-associated BAF migrated predominantly as a 10-kDa protein, consistent with its monomeric mass. These results demonstrated for the first time that BAF is present in HIV-1 virions.
![]() View larger version (47K): [in a new window] |
FIG. 2. BAF
is present in HIV-1 virions at low levels. (A) HIV-1 virions
produced from HIVMN-infected H9 cell lines were either mock
treated (-) or digested with the nonspecific protease
subtilisin (+). In parallel, microvesicles were prepared from
uninfected H9 cells and either mock treated (-) or treated with
subtilisin (+). Protein extracts from all samples were then
analyzed by immunoblotting using antibodies to human BAF, CD45
(microvesicle marker), and p24 (HIV-1 capsid protein) ( -BAF,
-p24, and -CD45, respectively). (B)
Stoichiometry of BAF in the virion. Protein extracts from
subtilisin-digested HIV-1 virions and known amounts of recombinant IN,
MA, and BAF proteins were immunoblotted using antibodies specific for
each protein. The number of molecules per unit volume of purified
virions was calculated and expressed as a ratio relative to
BAF.
|
100 copies of
IN and
2,000 MA per virion
[20]). We
therefore conclude that BAF is present at very low copy number in
virions, with at least one dimer per virion. Given the errors inherent
in such estimates, we suggest that individual virions contain
approximately zero to three BAF
dimers. BAF binds directly to p55 Gag. How is BAF recruited into HIV-1 virions? BAF is not known to bind RNA, and we found no evidence in database searches for a LEM domain in any HIV-1-encoded protein. Because BAF binds DNA and protects intasome structures in the PIC, we hypothesized that it might associate with either IN or RT, which are also DNA-associated components of the PIC. To test this model, different amounts of purified IN (32) and RT (40) proteins, plus the viral structural precursor p55 Gag as a control, were resolved by SDS-PAGE, transferred to filters, and probed with 35S-labeled BAF (Fig. 3A). BAF showed only background binding to bands containing as much as 1 µg of purified RT or IN (Fig. 3A). However, BAF gave a strong signal with the 55-kDa Gag polyprotein, even at the lowest level tested (125 ng [Fig. 3A]). We concluded that BAF binds directly to p55 Gag, a structural protein with key roles in virion assembly (21).
![]() View larger version (42K): [in a new window] |
FIG. 3. BAF
binds directly to p55 Gag. (A) Blot overlay assay. Purified
p55 protein (125, 250, and 500 ng), RT (250, 500, and 1,000 ng) and IN
(250, 500, and 1,000 ng) proteins (prot.) were resolved by SDS-PAGE,
transferred to filters, and probed with 35S-labeled BAF. The
autoradiograph is shown. (B) In vitro coimmunoprecipitation
assay. Recombinant p55 Gag protein (500 ng) was incubated with
(+) or without (-) 200 ng of recombinant BAF and then
immunoprecipitated using protein A beads with (+) or without
(-) antibodies against BAF (BAF Ab). One-tenth of each pellet
(P) and 10% of each corresponding supernatant
(S) fraction were resolved by SDS-PAGE and immunoblotted with
antibodies specific for either BAF or the MA domain of p55 Gag.
(C) Binding affinity. The affinity of BAF for p55 Gag was
determined in microtiter well assays. Increasing concentrations of
35S-labeled BAF were incubated with constant amounts of
recombinant p55 Gag (1.8 pmol) immobilized in microtiter wells.
Double-reciprocal plots (not shown) were used to determine the affinity
constant as described previously
(30). (D)
Endogenous BAF coimmunoprecipitates with p55 Gag in human (HeLa) cell
extract. Full-length Gag (pCiGagPRE) was expressed in HeLa cells, and
protein lysates (L) from transfected cells were incubated
with protein A beads alone (Protein A) or protein A beads plus
antibodies against MA ( -MA Ab). A fraction (15%) of the
supernatant (S) and 30% of each immunoprecipitate
(P) were resolved by SDS-PAGE and immunoblotted for BAF.
Transf.,
transfected.
|
The equilibrium binding affinity of BAF dimers for Gag was 1.1 µM (Fig. 3C), determined using a microtiter assay with BSA-coated wells as negative controls (30) (see Materials and Methods). This affinity was comparable to BAF's affinity for lamin A (1 µM) and about sixfold weaker than its affinity for emerin (200 nM [30]).
We
next determined whether BAF and Gag interact in vivo. HeLa cells were
transfected with pCiGagPRE (J. Wong and R. F. Siliciano,
unpublished data), in which codons were optimized for efficient
translation of Gag protein in mammalian cells. Cells were lysed
36 h after transfection, and whole-cell lysates were
incubated with either protein A beads alone or with protein A beads
plus antibodies against the MA domain of Gag. Beads were then pelleted,
and the corresponding pellet and supernatant fractions, along with
starting lysate were resolved by SDS-PAGE and immunoblotted for
endogenous BAF (Fig. 3D).
Controls showed that most BAF remained soluble in the absence of
antibody (Fig. 3D), as
expected. Interestingly, antibodies against MA quantitatively
coimmunoprecipitated a slow-migrating (
50-kDa) form of BAF
from cell lysates (Fig.
3D; see Discussion). We
concluded that Gag and BAF associate in vivo and that their
interactions in vitro were therefore physiologically
relevant.
BAF binds directly to mature
MA.
The Gag polyprotein is
responsible for building virions at the cell surface, and each immature
virion contains
2,000 copies of Gag. After virions are
released from cells, most Gag proteins are proteolyzed to generate four
mature proteins: CA (24 kDa), MA (17 kDa), NC (7 kDa), and p6 (6 kDa)
(reviewed in reference
21).
cDNAs encoding mature CA and MA were available; to
determine whether BAF binds directly to either CA or MA, these proteins
were expressed in bacteria
(45,
66), resolved by
SDS-PAGE, and either transferred to filters and probed with
35S-labeled BAF, or stained with Coomassie blue (Fig.
4A). BAF bound specifically to MA, despite larger amounts of CA on the
filter.
![]() View larger version (27K): [in a new window] |
FIG. 4. BAF
binds directly to MA with low micromolar affinity. (A) BAF
binds directly to MA, but not CA, in blot overlay assays. Different
volumes of protein lysate from induced (+ IPTG) or uninduced
bacteria (- IPTG) containing plasmids encoding either MA or CA
were resolved by SDS-PAGE. Gels were either transferred to filters and
probed with 35S-labeled BAF or stained with Coomassie blue
to verify equal protein loads. (B) MA binds BAF in
coimmunoprecipitation assays. Purified recombinant MA (200 ng) was
incubated with (+) or without (-) 200 ng of recombinant
BAF and then immunoprecipitated using protein A beads with or without
antibodies against MA. A fraction (15%) of each pellet
(P) and 30% of each supernatant (S) were
resolved by SDS-PAGE and immunoblotted for BAF and MA, as indicated
with antibodies to BAF ( -BAF) and MA ( -MA).
(C) The equilibrium affinity of MA for BAF was determined in
microtiter well assays by adding increasing concentrations of
35S-labeled MA to constant amounts of recombinant BAF
immobilized in microtiter wells. Double-reciprocal plots (not shown)
were used to determine the affinity constant as described previously
(30).
|
|
|
|---|
50 kDa) of BAF (see below).
Third, we found that BAF binds directly to two HIV-encoded proteins,
p55 Gag and MA, with low micromolar affinities. BAF thus joins a
growing number of host proteins known to be incorporated into HIV-1
virions, including cyclophilin A, elongation factor 1
, actin,
several actin-binding proteins (ezrin, moesin, and cofilin) and
signaling proteins ERK2 and Lck
(49). Host proteins are
proposed to have roles in virus assembly or postentry functions
(49). Our results for BAF
favor the latter model; BAF is unlikely to be essential for HIV-1
virion assembly per se, because it is a minor component (zero to three
dimers per virion) that might be absent from a subset of virions. We
therefore hypothesize that HIV-1 virions incorporate BAF either (i) by
accident, due to BAF's affinity for the MA domain of Gag, or (ii)
on purpose, to promote PIC survival in resting CD4+
T lymphocytes (which lack BAF), or because BAF has a role in reverse
transcription complexes or PIC assembly prior to the
acquisition of cytoplasmic BAF.
BAF as a host
component of HIV-1 virions.
Our findings suggest that BAF is a host
component of HIV-1 virions, recruited (at least in part) through its
affinity for the MA domain of Gag. In uninfected cultured cells, 30 to
50% of BAF is present in the cytoplasm
(30,
43). However, an
important subset of cells is deficient in BAF, namely, resting
CD4+ T lymphocytes and blood monocytes, which
comprise
5% of peripheral blood leukocytes. Thus, if
HIV-1 enters a resting T lymphocyte, which is metabolically quiescent,
the PIC must be able to survive low rates of reverse transcription and
a potentially long latency period prior to cell activation and
integration (53). Because
BAF enters with the virus, we propose that BAF might also contribute to
the earliest stages of PIC formation, by first interacting with MA and
subsequently also interacting with retroviral DNA. In other words, BAF
may facilitate the structural transition from reverse transcription
complex to preintegration complex on the basis of its sequential
interactions with MA and DNA.
BAF
interactions with Gag in vitro versus in vivo.
Direct binding between BAF and Gag was
shown by two methods (blot overlay and coimmunoprecipitation of
purified proteins) and confirmed by coimmunoprecipitation of endogenous
BAF from cells that overexpress p55 Gag. BAF binds Gag with an
equilibrium binding affinity of 1.1 µM. We estimate that the
concentration of BAF in HeLa cell cytosol is
7 nM
(30). In cells, Gag
proteins aggregate in groups of
2,000 at numerous sites on the
cell surface, each of which can self-assemble into a retrovirus-like
particle in cells that express no other HIV-encoded proteins. We
therefore predict that Gag is sufficient to recruit BAF into assembling
virions. The number of BAFs per virion will be dictated by two numbers:
the concentration of BAF in cytoplasm (7 nM) and its affinity for Gag
(1.1 µM). The cytoplasmic concentration of BAF is far too low
for BAF to saturate Gag; the binding curve predicts that one or a few
molecules of BAF will bind per
2,000 copies of Gag. Assuming
that their affinity is the same in vivo, the concentration of BAF would
have to be 157-fold higher (e.g., 1.1 µM) for there to be
1,000 copies of BAF per virion. Thus, our measured affinities
are compatible with the experimentally determined low numbers (ca. zero
to three) of BAF per virion.
Despite the agreement between our
current in vitro and "in virion" results, our
assumption that the BAF-Gag binding affinity is constant in vivo may
need to be reexamined in future. We recently found that in HeLa cells,
endogenous BAF is posttranslationally modified at several sites (L.
Bengtsson and K. L. Wilson, unpublished data), potentially
explaining the presence of several different slower-migrating forms of
BAF in SDS-polyacrylamide gels
(57). In cells, Gag bound
preferentially to the most abundant (
50-kDa) slow-migrating
form of BAF, whereas HIV-1 virions contained the 10-kDa form of BAF.
The modification status of slow-migrating forms of BAF are not yet
understood. However, we speculate that BAF might be removed
or modified by enzymes present in HIV-1 virions
(11,
50).
Implications for PIC assembly and structure. MA comprises the N-terminal domain of p55 Gag and is located close to the plasma membrane due to myristoylation of its N-terminal Gly residue. After proteolytic cleavage, most MA remains near the virion membrane. A missense mutation at a highly conserved residue (L20K) in MA disrupts an early event in infection, suggesting that MA might be important for the integrity or stability of the PIC (35). Interestingly, about 1% of MA molecules in the virion are phosphorylated on their C-terminal Tyr residue (Y132) by a membrane-associated kinase (10, 24). Tyrosine phosphorylation causes MA to bind IN (25), suggesting a mechanism by which phosphorylated MA might associate with IN, which is abundant in cytoplasmic reverse transcription complexes (47). Thus, binding to MA might be an effective way for BAF to associate with reverse transcription complexes prior to their maturation into PICs. However, it is important to note that HIV-1 can replicate under certain conditions in the absence of MA (55). Thus, MA-BAF interactions cannot be essential for the PIC under all conditions of infection.
Irrespective of the role of MA, future work will aim to determine whether virion-associated BAF is needed to establish an HIV-1 infection, since BAF's presence in the virion might be incidental. Nevertheless, the major conclusion from the present work is that BAF, regardless of its source (virion associated or cytoplasmically acquired), can bind protein components of the PIC, in addition to DNA. This may lead to new insights into PIC assembly and function.
This work was supported in part by NIH grant R01-GM48646 (to K.L.W.) and a pilot grant from the Johns Hopkins Center for AIDS Research (CFAR).
Present
address: Stowers Institute for Medical Research, Kansas City, MO
64110. ![]()
|
|
|---|
This article has been cited by other articles:
| |||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||
Copyright © 2009 by the American Society for Microbiology. For an alternate route to Journals.ASM.org, visit: http://intl-journals.asm.org | More Info»