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Journal of Virology, June 2005, p. 7024-7041, Vol. 79, No. 11
0022-538X/05/$08.00+0 doi:10.1128/JVI.79.11.7024-7041.2005
Copyright © 2005, American Society for Microbiology. All Rights Reserved.
C.-K. Lee,1,
K. Kim,1
W. H. Barry,3 and
N. M. Chapman1*
Enterovirus Research Laboratory, Department of Pathology and Microbiology, University of Nebraska Medical Center, Omaha, Nebraska 68198,1 Department of Biology, University of Nebraska, Omaha, Nebraska 68182-0040,2 Division of Cardiology, University of Utah Health Science Center, Salt Lake City, Utah 841323
Received 22 October 2004/ Accepted 25 January 2005
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Enterovirus infections are generally considered to be acute events, with symptoms and virus titers peaking within a few days postinoculation (p.i.) and with virus being cleared by the adaptive immune response (17). However, enterovirus infections can persist under conditions of immunodeficiency (48, 51, 65, 71). Infectious enteroviruses are frequently isolated from pediatric cases of human myocarditis, but isolation from adult cases of the disease has been exceedingly rare (34, 62, 88), perhaps because pediatric cases may be more likely to be diagnosed during the acute infection. Despite an apparent absence of infectious enterovirus that can be isolated from adult cardiomyopathies, the detection of positive- and negative-strand enteroviral RNA in approximately 20% of adults with myocarditis or dilated cardiomyopathy by reverse transcription-PCR (RT-PCR) (87, 116) as well as the detection of enteroviral protein in cardiomyopathic heart muscle (4, 60) provides evidence that enteroviruses can persist and replicate in the heart in the apparent absence of infectious virus. CVB can persist for long periods of time in different strains of mice (22, 55, 69, 95, 104). Interestingly, cardiovirulent CVB3 strains replicate for a longer period in mouse heart tissue than do less-virulent or avirulent strains (21, 109, 110), and cardiovirulent viral RNA can persist for weeks or months in murine heart tissue in the absence of isolable infectious virus (95, 104). Prolonged, low-level replication of CVB in cardiomyocytes has been proposed as a pathogenic mechanism by which host gene expression may be altered in the heart muscle, presumably by inducing changes in host cell RNA transcription and translation (114, 115).
The picornavirus 5' NTR performs critical functions in both viral translation and RNA replication (reviewed in reference 13). Within a specific picornavirus group, the 5' NTR is of a defined length: for example, the 5' NTR of human enterovirus B varies little in length at approximately 740 nucleotides long (20). Naturally occurring deletions or insertions of more than one or two bases have not been observed in enteroviral 5' NTRs. The cloning of an infectious CVB3 cDNA that lacked the initial two 5' uridine residues was reported (56), but sequence analysis of the progeny viral RNA revealed that this terminal deletion (TD) was repaired during initial expression of the virus.
The 5' NTR contains extensive secondary structures, consisting of six defined domains of stem-loop secondary structures (59, 101, 120). The first of these is domain I, which folds in two-dimensional depictions into a trifoliate or cloverleaf-type structure (see Fig. 5A) (3). In CVB3, domain I is defined by a stem formed when nt 2 to 9 pair with nucleotides 80 to 87 (stem a). Within the domain, three stem-loop structures (b to d) radiate from a single junction-loop (96). A wealth of information shows that the cloverleaf (domain I) is essential for enterovirus RNA replication (2, 3, 11, 84, 106, 111, 118). Many mutations engineered into domain I are considered lethal, as assessed by their failure to produce viral plaques or to cause a cytopathic effect (CPE) upon indicator monolayer cells in culture (3). Mutations induced in the cloverleaf, or deletions of the entire domain, result in ablation of negative-strand RNA replication in cell extracts (11) or Xenopus laevis oocytes (36). Mutational analysis of poliovirus (PV) domain I indicates that deletions are likely to reduce replication, perhaps reducing it to the level at which CPE is not observed (3). Mutations in stem-loop b of domain I can prevent cytopathic virus replication (2, 3) and RNA replication (3, 84), while mutations induced in stem-loop d have been shown to prevent binding of the PV 3CD protein and to decrease initiation of negative-strand RNA replication (11, 36). Stem-loop b of the PV1 cloverleaf binds poly(rC) binding protein (PCBP) (84) which completes a ternary complex including the cloverleaf and the viral 3CD protein (which binds stem-loop d) (35, 42). This ternary complex competes with a complex essential for initiation of viral protein synthesis that is formed between PCBP and domain IV in the internal ribosome entry site (IRES) (76, 89); this competition may reduce translational initiation of positive-strand RNA such that replication of negative-strand viral RNA is not impeded by the presence of translating ribosomal complexes (10, 36). An interaction of domain I with the 3' NTR has also been shown to be necessary for negative-strand viral synthesis (11, 42), an interaction which may be mediated through an interaction of PCBP with poly(A) binding protein (42). Encapsidation of newly synthesized positive-strand viral RNA molecules has been suggested to be linked to viral RNA replication via interaction with components of the replication complex (79) which may involve domain I in this process.
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FIG. 5. 5'-terminal deletions of domain I maintain remaining cloverleaf structure as assessed by chemical modification. (A-C) Chemically modified sites for nt 1 to 104 of CVB3/28 (A), nt 1 to 93 of TD8 (B), and nt 1 to 51 of TD50 (C). Arrows indicate sites of kethoxal (gray arrows with dots at ends), DMS (black arrows), and CMCT (open arrows) modification. (D) Representative 12% sequencing gel of primer extension for domain 1 on RNA samples using primer PE108. RNA was prepared in vitro from subclones containing the 5' NTRs of pRibozCVB3/28 (CVB3/28), pRibozCVB3/TD8 (CVB3/TD8), and pRibozCVB3/TD50 (CVB3/TD50). Un, unmodified RNA; K, kethoxal-modified RNA; D, DMS-modified RNA; C, CMCT-modified RNA. Representative modified positions are indicated. Primer extension with dideoxynucleotides was also performed to generate a sequence ladder (U, G, C, A).
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Inoculation of mice. A/J male mice (6 weeks old; Jackson Laboratories, Bar Harbor, ME) were inoculated intraperitoneally (i.p.) with 5 x 104 TCID50 units of CVB3 in 0.1 ml of unsupplemented media. C3H/HeJ male mice (4 weeks old; Jackson Laboratories) were inoculated i.p. with 1 x 105 TCID50 units in 0.1 ml of unsupplemented media. Infectious titers in heart tissues were determined as described previously (21, 108). B6.CB17-Prkdcscid/SzJ (4-month-old) and C3H/HeJ (4-week-old) male mice (Jackson Laboratories) were inoculated i.p. with 5 x 104 relative TCID50 (rTCID50) units (described below) of the specific CVB3/TD strain. One-quarter of the heart tissue was frozen for isolation of nucleic acids by homogenization in Trizol as described below (Invitrogen), and one-quarter was used for culture. Half of the heart tissue was fixed in formalin for paraffin embedding, sectioning, and staining with hematoxylin and eosin (112).
Cell culture of heart homogenates. Twenty-five to fifty milligrams of heart tissue was homogenized in 0.4 ml cell culture medium, frozen and thawed, and cleared by centrifugation. HeLa cells (1 x 105) were inoculated with 50% of the heart homogenate for 30 min at 37°C, washed three times with 0.1 M NaCl, and refed with fresh medium. Cultures were harvested after 72 h by freeze-thaw lysis and cleared by centrifugation. Virus was passed by infection of 2 x 105 HeLa cells with 50% of the supernatant and harvested as described above.
RT-PCR and viral sequence analysis. Viral RNA from cell culture stocks or homogenates of murine heart was isolated using Trizol LS reagent (Invitrogen) per the manufacturer's instructions. cDNA was transcribed with Superscript II (Invitrogen) in 20-µl reaction mixtures. Briefly, cDNA was synthesized in a 20-µl reaction volume containing RNA from 0.25 ml of virus stock or 5 x 104 HeLa cells inoculated 48 h previously with a CVB3/TD strain. Reaction mixtures contained RNA, an antisense primer (3END or E1; Table 1) at 0.125 optical density at 260 nm (OD260) units/ml, 0.5 mM deoxynucleoside triphosphates (dNTPs), and 100 U/µl Superscript II in a buffer containing 50 mM Tris-HCl (pH 8.3), 75 mM KCl, 3 mM MgCl2, and 2 mM dithiothreitol (DTT). RT reaction mixtures were incubated at 42°C for 60 min; RT was then inactivated by incubation at 75°C for 10 min. After chilling on ice, RT reaction mixtures were diluted fivefold with nuclease-free water.
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TABLE 1. Names, annealing sites, and sequences of primers used in this study
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For long-distance (LD) PCR (to amplify amplimers 1 to 8 kb in length), Elongase enzyme mix (Invitrogen) was used in 50-µl reaction volumes, containing 10 µl of diluted cDNA, 1 µl of Elongase polymerase mix (Invitrogen), 0.4 mM dNTPs, sense and antisense primers at 0.125 OD260 units/ml, 60 mM Tris-SO4 (pH 9.1), 18 mM (NH4)2SO4, and 2 mM MgSO4. LD PCR was carried out using the following cycling conditions: 1 min at 94°C; 1 cycle of 30 s at 94°C, 30 s at 50 to 57°C, and 30 s at 68°C; 35 cycles of 30 s at 94°C, 30 s at 50 to 57°C, and 7 min and 30 s at 68°C; and a finish of 10 min at 68°C. Amplimers were analyzed on 1% agarose gels. Southern blots of gels were probed with oligomeric sequences located within the expected amplimer. Oligomeric probes were 5' end labeled with [
-32P]ATP (3,000 Ci/mmol; Amersham, Piscataway, NJ) as described previously (25). Using primer E1 for reverse transcription and E1 and E2 for amplification (Table 1), the sensitivity of detection of RNA from virus was 600 to 700 molecules of in vitro-transcribed CVB3 RNA (data not shown). DNA sequencing was carried out from cloned DNA or from amplified fragments at the core facility at the University of Nebraska at Lincoln or manually using the Thermonuclease Sequenase Radiolabeled Terminator cycle sequencing kit (USB Corp., Cleveland, OH) per instructions in the kit with analysis on denaturing gels as described previously (44).
Determination of CVB3/TD strain titers by real-time RT-qPCR. CVB3/TD strains did not produce CPE; we therefore quantitated the amount of CVB3/TD in stocks using reverse transcriptase mediated real-time quantitative PCR (qPCR) (43). T7 RNA polymerase transcripts (positive-sense) transcripts were synthesized from a BamHI-digested plasmid containing nt 302 to 691 of the pCVB3/28 genome in pCR2.1-TOPO (Invitrogen). Transcripts were treated with RNase-free DNase I (Ambion, Austin, Tex.) and purified by ethanol precipitation, and concentration was determined spectrophotometrically. Complementary DNAs were synthesized from the dilutions of RNA transcripts or from CVB3/TD viral RNA (from 10 µl of virus stock) in reverse transcriptase reactions as described above containing the primer E1 (Table 1). cDNA reactions were diluted fivefold with water, and 10 percent of cDNA was used with E1 and E2 (Table 1) at 0.125 OD260 units/ml in DyNAmo SYBR green qPCR mix (Finnzyme, Finland) according to the manufacturer's instructions. Cycling times were as follows: 1 cycle at 95°C for 15 min; 45 cycles at 95°C for 20 s, 55°C for 20 s, and 72°C for 20 s; and a final extension at 72°C for 10 min. qPCRs to generate a standard curve were carried out using an Opticon 2 DNA engine (MJ Research). As the titer of the CVB3/TD stocks cannot be measured by cytopathic effect, the concentration of positive-strand viral RNA in each stock was determined and compared to the concentration in a CVB3/28 stock of known titer. Comparison of results from CVB3/TD RNAs with the parental CVB3/28 of known TCID50 titer determined the relative titer of the concentrated CVB3/TD stocks. Because qPCR measures genome copies, not infectious units, we devised the term rTCID50 to describe CVB3/TD titers. Real-time PCR quantitation of the parental CVB3/28 at concentrations of 2 x 104 to 2 x 107 generated numbers of molecules from 230 to 95 per TCID50, generating an average number of positive-strand viral genomes of 173 (standard deviation, 57.6), corresponding to the rTCID50 unit. This ratio of positive-strand genomes per infectious unit falls within the range reported for PVs (30 to 1,000 particles/PFU [93]), assuming that each viral particle contains a positive-strand genome.
Determination of 5'-terminal sequences of viral genomes. The 5'-terminal sequences of genomic RNAs of a stock of CVB3/28 and a lysate of 1.5 x 105 cells of the fifth passage of heart homogenate of AJ mice at day 18 p.i. (AJ18 P5) were reverse transcribed using primer 998 (Table 1) with SuperScript II reverse transcriptase as described above. RNA was hydrolyzed using 0.2 N NaOH at 37°C for 20 min, then neutralized by addition of Tris-HCl (pH 7.5) and 0.2 N HCl. Following purification of single-strand cDNA using Geneclean (Qbiogene, Carlsbad, CA), G tailing of the cDNA was carried out using 1.5 U/µl terminal deoxynucleotide transferase (TdT; Promega) in cacodylate buffer (1 M potassium cacodylate, 0.25 M Tris-HCl (pH 7.6), 2 mM dithiothreitol, 1 mM dGTP, 2 mM MnCl2) at 30°C for 1.5 h (107). Tailed cDNA was diluted 100-fold with sterile deionized H2O and purified using Geneclean (Qbiogene). PCRs were carried out as described above for shorter fragments using Taq DNA polymerase and the primers DC-Tail and E1 (Table 1). PCR-amplified fragments were purified (StrataPrep PCR purification kit; Stratagene) and ligated into pPCR-Script-Amp using the pPCR-Script-Amp kit (Stratagene) according to the manufacturer's instructions. Plasmids containing the 5'-NTR sequences were then sequenced using the internal primer E7 (Table 1).
Cloning and transfection of 5'-TD CVB3 genomes. An infectious clone of CVB3/28 (109) with an upstream cytomegalovirus (CMV) promoter in a plasmid vector was generated by amplifying the CMV promoter from pcDNA3.1 (Invitrogen) with primers 5CMV and 3CMV (Table 1) to add a NotI site downstream. This DNA was ligated into the 1.9-kb PvuII/SspI restriction fragment of pCR-Script-Amp (Stratagene) to generate pCRCMV. The 8.5-kb PvuI-StuI restriction fragment of pCVB3-28 (109) containing the full-length infectious cDNA copy of the CVB3 genome with an upstream T7 RNA polymerase promoter was cloned into the 1.7-kb PvuII-PvuI fragment of pCR-Script-Amp (Stratagene) to generate pCRCVB3-28. The 1.1-kb NotI-PvuI fragment of pCRCMV (containing the CMV promoter) was then ligated into the 9.3-kb NotI-PvuI fragment of pCRCVB3/28 to generate an infectious CVB3 genome with an upstream CMV promoter and T7 RNA polymerase promoter (pCMVCVB3-28). To clone the 5'-terminally deleted 5' NTRs into the pCMVCVB3-28 cDNA genome, cDNAs from pass 5 HeLa cultures of AJ day 18 heart homogenate (as described above) were amplified with primer 998 and with primer S2TD8, S2TD13, S2TD18, S2TD31, or S2TD50 (Table 1). Amplimers were ligated into pCMVCVB3-28 using a SacII site inserted into each of the S2 primers and the SmaI site at nucleotide 891 of the CVB3/28 sequence (GenBank accession no. AY752944) to generate the recombinant deleted genomes (CVB3/TD). The CVB3/TD8 (7 nt deleted), CVB3/TD13 (12 nt deleted), CVB3/TD18 (17 nt deleted), CVB3/TD31 (30 nt deleted), and CVB3/TD50 (49 nt deleted) genomes begin at CVB3 nt 8, 13, 18, 31, and 50 respective to the parental CVB3 sequence (see Fig. 4B).
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FIG. 4. Multiple deletions from the 5' end exist in cardiac viral populations late in infection. (A) cDNA was dG tailed with TdT, then enzymatically amplified with primers DC-TAIL and E1 (Table 1). Amplimers were cloned and then sequenced using primer E7. Parental CVB3/28 RNA was assayed similarly for comparison. Arrows indicate the 5' termini of the CVB3/TD genomes. (B) Sequences of 5' ends of CVB3/28 and CVB3/TD8, -13, -18, -31, and -50.
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Structure determination of RNA domain I in the CVB3 5' NTR.
Experimental determination of RNA structure was performed using chemical modification analysis (33a, 72a). T7 RNA transcripts of ribozyme pCVB3-28, TD8, and TD50 were generated from subclones of the genome linearized by digestion with Ecl136II (cleaves at nt 749 in the CVB3/28 genome). For chemical modification reactions, 15 µg RNA was denatured at 80°C in 100 µl of dimethylsulfate (DMS)/kethoxal buffer (40 mM potassium-cacodylate [pH 7.2], 10 mM MgCl2, 50 mM NH4Cl, 0.75 mM DTT) for ß-ethoxy-
-ketobutyraldehyde (kethoxal) or DMS modifications or in 50 µl of carboiimide metho-p-toluene sulfonate (CMCT) buffer (40 mM potassium borate [pH 8.0], 10 mM MgCl2, 50 mM NH4Cl, 0.75 mM DTT) for 1-cyclohexyl-3-(morpholinoethyl)CMCT modification. Reaction mixtures were slowly cooled to 42°C and then chilled on ice. For the kethoxal modification, 5 µl of a 1.5 M solution of kethoxal (USB Corp.) was added to the RNA and incubated at 37°C for 30 min. For the DMS modification, 2 µl of a 20% DMS solution in 95% ethanol was added to the RNA and incubated at 37°C for 10 min. For the CMCT modification, 50 µl of a solution containing 42 mg/ml of CMCT dissolved in CMCT buffer was added to the RNA and incubated for 10 min at 37°C. Kethoxal reactions were stopped by adding 50 µl of 150 mM sodium acetate-250 mM potassium borate, pH 7.0. DMS reactions were stopped by adding 25 µl of 1 M Tris-HCl (pH 7.5)-1 M ß-mercaptoethanol-0.1 M EDTA, and CMCT reactions were stopped by adding 300 µl of 95% ethanol. Modified RNA was recovered by ethanol precipitation. Sites of modification were identified by primer extension with reverse transcriptase (120). Primers were 5' labeled using [
-32P]ATP and T4 polynucleotide kinase (Promega) (25) with 100 pmol of oligonucleotide, 100 µCi of [
-32P]ATP (4,000 Ci/mmol), and 10 U of T4 polynucleotide kinase for 40 min at 37°C and inactivated for 20 min at 60°C. Oligonucleotides used for the primer extension reactions were PE62, PE108, PE127, PE128, PE129, PE130, PE162, PE227, PE351, PE627, and E1 (Table 1). For the primer extension reactions, a labeled oligonucleotide was annealed to 1 µg of modified or unmodified RNA in annealing buffer (50 mM Tris HCl [pH 8.3], 40 mM KCl) by heating at 80°C for 2 min followed by cooling to 42°C. Primer extension mixtures were composed of 2 µl of annealing mixture, 2 µl of extension mixture (100 mM Tris [pH 8.3], 80 mM KCl, 12 mM MgCl2, 4 mM of each dNTP) and 1 U of avian myeloblastosis virus (AMV) reverse transcriptase (Life Sciences, St. Petersburg, FL). To generate a sequence ladder, 2 µl of an annealing mixture containing unmodified RNA was added to each of four reaction volumes containing one of the four different termination mixtures (50 mM Tris HCl [pH 8.3], 40 mM KCl, 6 mM MgCl2, 1 mM of each dNTP, 0.1 mM of one dideoxynucleotide triphosphate) and 1 U of AMV reverse transcriptase. All reaction mixtures were incubated at 42°C for 20 min and then stopped with 2 µl 95% formamide containing 20 mM EDTA, 0.05% bromophenol blue, and 0.05% xylene cyanol. Reaction mixtures were frozen at 70°C for no longer than 1 week prior to electrophoresis. For each primer extension, samples were electrophoresed on 12% polyacrylamide/urea sequencing gel in Tris-borate EDTA buffer at 60 W for both 4 and 6 h. Modified bases were located by comparison to the sequencing tracts, and then the intensities of bands of unmodified and modified RNAs were compared to locate positions in which chemical modification resulted in termination of the elongating cDNA.
Strand-specific hybridization to virus RNA.
CVB3 strains collected by ultracentrifugation were resuspended in 2% of the original volume of 100 mM NaCl-10 mM Tris (pH 7.5)-1 mM EDTA. Virus was treated with 0.5 U/µl RNase A and 200 U/µl RNase T1 (RNase Cocktail; Ambion) at 37°C for 30 min. Viral RNA was prepared with Trizol LS (Invitrogen). T7 RNA (positive-sense) and T3 RNA (negative-sense) polymerase runoff transcripts were synthesized from an XhoI (T7)- or NotI (T3)-digested plasmid containing nt 1 to 2011 of the pCVB3/28 genome cloned in the NotI and XhoI sites of pBlueScriptII SK+ (Stratagene) and treated with RNase-free DNase I (Ambion). Viral RNA and transcripts were blotted in duplicate on Nytran-N (Schleicher and Schuell Bioscience, Keene, NH) (117). Primer E1 was used for detection of positive-strand viral RNA; primer 5Puff was used to detect negative-strand RNA (Table 1). Primers were labeled with [
-32P]ATP using T4 kinase as described previously (25), to obtain a specific radioactivity of 1 to 2 x 108 cpm/µg for each probe. Each blot was washed twice for 10 min in 3 M tetramethyl ammonium chloride at 60°C (29). Hybridization signals on autoradiograms were quantified using Kodak 1D image analysis software (Eastman Kodak, Rochester, NY).
To determine whether negative-strand RNA is encapsidated, virus stocks (CVB3/28, CVB3/TD8, and CVB3/TD50) were purified by CsCl density centrifugation. Virions in cell culture lysates were concentrated by ultracentrifugation through 30% sucrose as described, chloroform extracted, and then collected again through sucrose. Virus preparations were resuspended in 100 mM NaCl, brought to 1.34 g/ml in CsCl, and then centrifuged at 45,000 rpm in a Beckman SW55Ti rotor for 45 h at 25°C. Density of gradient fractions was determined by measuring refractive indices. Fractions were diluted fivefold in sterile deionized water. The titers of fractions of the CVB3/28 gradient were determined on HeLa cell monolayers by TCID50 analysis (112) to determine the peak of infectivity. Parental CVB3/28 infectious titer peaked at 1.348 g/ml, while the CVB3/TD8 titer peaked at 1.331 g/ml and the CVB3/TD50 titer peaked at 1.344 g/ml as determined by measuring the optical density at 260 nm (infectious titer could not be determined by CPE). Three micrograms of RNA prepared from peak fractions with Trizol (Invitrogen), T7 and T3 RNA polymerase transcripts, or mixtures of transcripts (99:1, 50:50, and 1:99, respectively) were annealed with biotinylated oligonucleotide KS1 (for positive-strand RNA isolation) or KS2 (for negative-strand RNA isolation) in 0.1 M NaCl at 75°C for 5 min and slow cooled to anneal. The RNA:biotinylated primer complex was isolated using 10 to 15 µg of Dynabeads M-280 streptavidin (Dynal Biotech, New York, NY) according to the manufacturer's protocol. After rinsing the beads with diethyl pyrocarbonate-treated water, complexes were disassociated at 95°C for 5 min, and beads were removed magnetically to free RNA of the biotinylated oligonucleotide. An RT-PCR assay of the Dynabead rinses demonstrated no detectable RNA. Purified RNA was used for the synthesis of cDNA with KS1 (for positive-strand RNA reverse transcription) or with KS2 (for negative-strand RNA reverse transcription) as described above. Ten percent of the purified cDNA was amplified as described with KS1 and KS2, electrophoresed on 1.5% agarose gels, and visualized with UV as described.
Western blot analysis of viral proteins in infected cells. HeLa cells were inoculated with parental CVB3/28 at a multiplicity of infection of 50 or with equivalent rTCID50 of the CVB3/TD virus as quantified by real-time qPCR, washed three times with 0.1 M NaCl, and refed with fresh medium. Cell lysates were harvested at various times after inoculation in reducing Laemmli buffer (58) and then were electrophoresed in 14% polyacrylamide gels with sodium dodecyl sulfate (Novex, San Diego, CA) and blotted onto Immobilon-P membranes (Millipore, Bedford, MA) (19). Blots were probed with a 1:1,500 dilution of the primary polyclonal horse anti-CVB3 neutralizing antibody (American Type Culture Collection, Manassas, VA), which detects CVB3 capsid protein VP1 (18). The primary antibody was detected using peroxidase-conjugated rabbit anti-horse immunoglobulin G (Jackson ImmunoResearch Laboratories, West Grove, PA) at a dilution of 1:125,000. Results were visualized using ECL-Plus and Hyperfilm (Amersham, Arlington Heights, IL). NucleoVision Gel Documentation System and software (GelExpert version 3.5; Nucleo Tech) were used for analysis.
For detection of VPg, RNase-treated virus stocks were prepared by CsCl density centrifugation. Briefly, freeze-thaw lysates of HeLa cells infected with virus were treated with RNase A/T1 (as described above) to remove residual cellular RNA. Virions in lysates were concentrated by ultracentrifugation through a 30% sucrose cushion as described, chloroform extracted, and then collected again by centrifugation though sucrose. Virus was resuspended in 100 mM NaCl, brought to 1.34 g/ml in CsCl, and centrifuged to equilibrium at 30,000 rpm in a Beckman SW41 rotor for 72 h at 8°C. CsCl-purified virus was diluted fivefold in water, and RNA was extracted with Trizol (Invitrogen). A 1.4-µg portion of each RNA sample was treated with 0.5 U/µl RNase A and 200 U/µl RNase T1 (RNase Cocktail; Ambion) and/or proteinase K (5 µg/ml), or 1.4 µg was left untreated. Samples were diluted with an equal volume of 2x reducing Laemmli buffer (58), electrophoresed in 14% polyacrylamide gels with sodium dodecyl sulfate (Novex) and blotted onto Immobilon-P (Millipore) (19). A rabbit polyclonal antibody against PV1 VPg was the kind gift of Bert Semler (University of CaliforniaIrvine): antibody N10 was raised against the 10 amino terminal amino acids of VPg (73). Western blots were probed with a 1:500 dilution of either anti-VPg antibody, followed by peroxidase-conjugated goat anti-rabbit immunoglobulin G (Jackson ImmunoResearch Laboratories) at a dilution of 1:150,000. The secondary antibody was detected using ECL-Plus as described above.
Protein covalently linked to RNA from pRibozCVB3/TD8 and TD50 virions was prepared for amino-terminal sequence analysis by electrophoresis of viral RNA in sodium dodecyl sulfate-containing 14% polyacrylamide gels (Novex) at 125 V for 30 to 40 min followed by electrophoretic blotting to Immobilon-P membranes (Millipore) at 15 V for 30 min. Blots were washed three times with phosphate-buffered saline. Blots were stained in Coomassie blue solution until bands clearly appeared. The blots were washed three times with water for 5 min each and dried. Protein was sequenced by Edman degradation at the University of Nebraska Medical Center Protein Structure Core Facility (Omaha, NE).
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FIG. 1. Passage of CVB3 in ACM on HeLa cells shows that viral RNA persists without apparent CPE. (A) Lanes 1 to 5, HeLa cells infected with supernatants of ACM passage 1 to 5; lane 6, uninfected HeLa cells. Cells were fixed and stained with crystal violet. (B) Agarose gel of amplimers generated by RT-PCR from HeLa cell cultures as shown in panel A. Total RNA was isolated from each ACM supernatant-infected cell culture for use as template in an RT-PCR with primers E1 and E8. Expected size for an E1/E8 amplimer is 582 bp. Lanes 1 to 5, HeLa cells infected with ACM passages 1 to 5; lane 6, uninfected HeLa cells; lane 7, HeLa cells without RNA; lane 8, HeLa cells with CVB3/28 RNA. The arrow indicates a 600-bp band. (C) Gel shown in panel B was analyzed by Southern blotting and probed with T4 kinase 32P-labeled primer E3. Film was exposed for 16 h at 75°C. (D) Agarose gel of amplimers generated by RT-PCR from HeLa cell cultures with primers ID9 and 3END (4.2 kb) (lanes 1 to 9) or with primers S and RN (5.5 kb) (lanes 10 to 18). The arrow indicates a 3-kb band. Lanes 1 and 10, HeLa cells infected with CVB3/28; lanes 2 and 11, HeLa cells only; lanes 3 to 7 and 12 to 16, ACM passages 1 to 5; lanes 8 and 17, HeLa cells without viral RNA; lanes 9 and 18, HeLa cells with CVB3/28 RNA. (E) Relative positions in the CVB3 genome of primers used.
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Generation of noncytopathic CVB3 strains during replication in the mouse heart. Having observed that a noncytolytic CVB3 quasispecies had evolved following infection of, and passage in, ACM, we tested whether this were reproducible in vivo. For this experiment, we used A/J mice, which are known to permit long-term viral RNA persistence (92), and C3H/HeJ mice, which supply a model of acute CVB-induced myocarditis (112). Mice were inoculated i.p. with CVB3/28 and then were killed at different times p.i. to ascertain how long virus persisted in the heart tissue of each mouse strain. Hearts were excised and homogenized in tissue culture medium, after which the presence of virus in the supernatants was assayed on HeLa cells or CVB3 RNA was detected by RT-PCR. Infectious virus was waning in hearts of A/J mice by 14 days p.i. (Table 2), and by 28 days p.i., cytopathic infectious CVB3 was no longer detectable in A/J mouse hearts. However, RT-PCR analysis of heart RNA in these same mice detected viral RNA in all mice through 28 days p.i. and in one mouse of a group of nine at 53 days p.i. (Table 2). Complete absence of cytopathic CVB3 in hearts of C3H/HeJ mice was observed at 21 days p.i., 1 week earlier than in A/J mice (Table 2), although CVB3 RNA was detected in four of four hearts at 21 days p.i. by RT-PCR. These results were consistent with, and confirmed past reports of, CVB RNA persisting in murine hearts after the time that infectious virus can no longer be detected (92, 95).
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TABLE 2. HeLa cell passage of CVB3-infected A/J mouse heart homogenates replicates CVB3 in the absence of cytopathic effecta
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FIG. 2. Infection of HeLa cells with homogenate of CVB3-infected AJ heart at day 18 does not induce cytopathic effect but does replicate CVB3 RNA. (A) HeLa cultures inoculated with homogenates of hearts at days 14 p.i. (AJ14) and 18 p.i. (AJ18) passed once (P1) and five times (P5) in HeLa as described in Materials and Methods, inoculated with parental virus (CVB3/28) or uninfected cell culture (CC). Cells were stained with crystal violet. (B and C) Total RNA purified from HeLa-passaged AJ14, AJ18, CVB3/28-inoculated HeLa cells, and uninfected cells were used for RT-PCR with the primer 3END and with primers S (B) or E8 (C) (Table 1). The arrow indicates a 3-kb band. Lane M, 1-kb DNA ladder; lanes 1 and 2, AJ14 P1 and 5; lanes 3 and 4, AJ18 P1 and 5; lanes 5 and 6, CVB3/28; lanes 7 and 8, uninfected cell culture. (D) Relative positions in the CVB3 genome of primers used.
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To map the 5'-sequence alteration or deletion, five overlapping 5'-end primers and a constant internal antisense primer (998 [Table 1]) were used to amplify viral RNA from AJ day 18 heart homogenates and AJ18-infected HeLa cell cultures (Fig. 3A). The lack of amplification with primers S (Fig. 3A, lanes 3, 7, and 11) and S2 (Fig. 3A, lanes 4, 8, and 12) and the presence of amplification with primers S3 (Fig. 3A, lanes 5, 9, and 13) and S4 (Fig. 3A, lanes 6, 10, and 14) demonstrated that the defect was localized to approximately the first 50 nucleotides of the genome. That the amplified cDNA was from CVB3 was confirmed by detection of amplimers generated by each primer set on a Southern blot with an internal oligomeric probe (Fig. 3A); no amplification in AJ18 heart or passages with the S and S2 primers was detected by Southern blotting (Fig. 3A, lanes 3, 4, 7, 8, 11, and 12). For a control of amplification, RNA from HeLa cells inoculated with CVB3/28 were used as templates for RT-PCR with each primer set and analyzed by gel electrophoresis and Southern blotting (Fig. 3B). RNA from the first passage of AJ14-infected HeLa cells (Fig. 2) was similarly amplified and analyzed (Fig. 3C). As expected from earlier results which showed the CVB3 RNA in these cells maintained an intact 5' terminus, all primer pairs amplified cDNA and were indistinguishable from amplifications of RNA from CVB3/28-infected cultures. Amplification of cDNA from RNA of the fifth passage of AJ18 virus in HeLa cells was successful only with the 5' primer S3, located at nt 33 to 61, and S4, located at nt 45 to 74 (Fig. 3D); primers located between nt 1 and 49 (S, S1, or S2 [Table 1]) failed to amplify. This failure was confirmed by Southern blotting (Fig. 3D). These results suggested that the extent of the alteration to the 5' terminus might range from approximately 30 to 50 bases inward from the 5' end.
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FIG. 3. Primers at the 5' end of the viral RNA sequence fail to amplify cDNA from day 18 heart homogenates or heart homogenate passages. (A) RT-PCR of RNA from AJ d18 p.i. heart homogenate (AJ18 Hrt) or from cultures of homogenate passed once (AJ18 P1) and five times (AJ18 P5)t in HeLa cells. cDNA was amplified using different 5' primers and a constant downstream primer, 998. Lane M, 1-kb marker (the arrow shows a 1-kb band); lane 1, RT-PCR of CVB3/28 RNA with S-998 amplimer (1,021 bp); lane 3, negative control RT-PCR; lanes 3, 7, and 11, primer S; lanes 4, 8, and 12, primer S2; lanes 5, 9, and 13, primer S3; lanes 6, 10, and 14, primer S4. Southern blot analysis (lower panel) with primer E3REV confirms that amplified cDNA is CVB3. (B-D) RT-PCR analysis shows that 5' termini can be amplified from 105 HeLa cells infected with parental CVB3/28 (B) and AJ14 P5 (RNA heart homogenate from a mouse killed 14 days p.i. and passed five times in HeLa cells) (C) but not from AJ18 P5 (D). Bottom portions of panels B to D show Southern blots of gel probed with E3REV. Lanes M, 100-bp markers (each arrow shows a 600-bp band). Lane 1, negative control; lanes 2 to 7, infected cell RNA. Different 5' end primers were assayed with the downstream primer E1. Lanes 1 and 2, 5' primer is S; lane 3, 5' primer is S1; lane 4, 5' primer is S2; lane 5, 5' primer is S3; lane 6, 5' primer is S4; lane 7, 5' primer is E8 (Table 1). (E) Relative positions in the CVB3 genome of primers used.
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Complete sequence analysis of the cloned CVB3/TD 5'-NTR sequences revealed two nucleotide substitutions by comparison to the parental CVB3/28: a C
U transition at nt 31 in the CVB3/TD8, CVB3/TD13, and CVB3/18 clones and another at nt 124 in all CVB3/TD clones. These changes were found in each of the clones sequenced for each NTR. Computer-aided analysis (MFOLD 3.1) (67, 121) predicted that the mutation at nt 31 would not disrupt secondary structure, as this change in stem-loop b of the cloverleaf is base paired to a G at nt 13. This change also occurs in other CVB3 genomes (56, 108), consistent with a commonly occurring sequence variation. The change at nt 124 was not predicted to be in a base-paired region of domain II (33).
Defining the RNA secondary structure of the altered CVB3/TD genomes. Using a structure predicted for the parental CVB3 domain I (Fig. 5A, nt 1 to 100) (120), we modeled the structure in the shortest (CVB3/TD8, nt 1 to 93) (Fig. 5B) and longest (CVB3/TD50, nt 1 to 50) (Fig. 5C) deletions. Chemical modification of CVB3 RNA of the 5' NTR was utilized to test the validity of these structures (typical data are shown in Fig. 5D). Under the conditions used for analysis, the chemicals modify single-stranded bases that are accessible to solvent. Kethoxal modifies G, DMS modifies C and A, and CMCT modifies U and, to some extent, G (102). Thus, modified positions are shown not to be base paired. The modification data (Fig. 5A to C) are compatible with the predicted structures in all but the most 3' 12 nucleotides which may be involved in a tertiary interaction (W. Tapprich and J. Bailey, personal communication). For both parental CVB3/28 (Fig. 5A) and CVB3/TD8 (Fig. 5B), the loop region of stem-loop b was chemically accessible, beginning with a CMCT modification at position 19U. Nucleotides 19U, 20G, 21A, 22U, 23C, 24C, and 25C form a hairpin loop in the cloverleaf, and all are exposed to solvent. The stem region of stem-loop c was protected, as is position 39A in the loop region. A very light modification at 40U was followed by a strong hit at base 41U. Modifications at nt 48U and 49A confirm the bulge-loop in stem d. This entire sequence containing stem a, stem-loop b, and stem c is missing in TD50 (Fig. 5C), but from here to the end of stem-loop d, all three molecules display the same structure. After the 48U-49A bulge-loop, the RNA then closes for the remainder of the stem region in stem-loop d. Nucleotides 54 to 56 in this stem are predicted to be available for modification as part of an internal loop opposite nt 71 to 73. However, nuclear magnetic resonance analysis indicates that these bases participate in noncanonical pyrimidine-pyrimidine pairs (32, 80). Our probing results are consistent with this arrangement for all three molecules. The proposed tetraloop at the end of stem-loop d was exposed, with modifications between 63A and 65G. In TD8 (Fig. 5B), nt 80 to 86, which cannot be base-paired to nt 2 to 7 to create stem a, were accessible as might be expected. Similarly, in TD50 (Fig. 5C), nt 78 to 86 cannot be base paired to nt 2 to 7 and 46 to 47, and again these positions showed modification. Interestingly, in both TD8 and TD50, as in CVB3/28, the long stretch of presumably single-stranded bases between nt 89 and 104 was protected from modification. Thus, despite the dramatic deletions, the higher-order folding interactions in this region were maintained. We also probed the structure of the rest of the 5' NTR from CVB3/28, TD8, and TD50. Outside of domain I, we were unable to detect any structural differences (data not shown).
Characterization of CVB3/TD strains in cell culture. To determine the role of the 5' deletions in the noncytopathic phenotype, recombinant infectious CVB3/TD cDNA clones containing the 5'-end deletions were constructed using the infectious cDNA copy of the CVB3/28 genome (109). Each CVB3/TD virus strain produced viral RNA in HeLa cells transfected with the CVB3/TD virus cDNA clones as measured by RT-PCR assay (using primers S3 and E1 [Table 1]) (Fig. 6B) but did not produce CPE in HeLa cells (Fig. 6A) even after five passages in HeLa cells. The RT-PCR results displayed in Fig. 6B used RNA from the fifth passage in HeLa cells as the template for RT and demonstrate that the deletions are not repaired by passage in successive replications in cell culture (compare S3 and E1 with S and E1 or S2 and E1). RT-PCR amplification of cDNA with a range of 5'-terminal primers indicates that stocks of progeny CVB3/TD8 and TD13 from the infectious cDNA clones could be amplified with the primers S and S2 (Table 1) despite the fact that these primers did not amplify cDNA from the mixed population of genomes present in the HeLa cell culture passage of the AJ18 heart homogenates (compare results shown in Fig. 6B, lanes 1 and 2, and Fig. 3D, lanes 2 and 4). It is not surprising that these primers can amplify cDNA from the clonal, concentrated populations of CVB3/TD8 and TD13; primer S (nt 1 to 20) and primer S2 (nt 21 to 49) substantially overlap the remaining sequences of the 5' ends of these TD genomes. Clearly the 7- and 13-nucleotide deletions were present in the AJ18 population, as these deletion mutants were originally cloned from amplified, tailed cDNA generated from an AJ18 HeLa culture (Fig. 4). The lack of amplification with the S and S2 primers (Fig. 3D) seen in pass 5 cultures of AJ18 is likely to be due to a smaller template population. In order to obtain sufficient cDNA for tailing and cloning, a threefold-greater amount of AJ18P5 culture was used for reverse transcription (see Materials and Methods). Although the RT-PCR amplifications of AJ18P5 (Fig. 3D) and of the CVB3/TDs at pass 5 were not matched for template concentration, a strong amplification with S3 was detected for the AJ18P5 culture and for all the CVB3/TD cultures. The sensitivity of RT-PCR using E1 and S, S2, or S3 is similar: approximately 400 molecules of CVB3 RNA can be detected. The fact that no increase in concentration was needed to detect viral RNA with S3 (nt 33 to 61) suggests that genomes with deletions of 30 and 49 nucleotides are well represented in the AJ18P5 viral RNA population.
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FIG. 6. Replication of recombinant CVB3/TDs in HeLa cell culture and RT-PCR. (A) Each deleted 5'-NTR sequence was cloned into pCMVCVB3/28 (CVB3/TD8, CVB3/TD13, CVB3/TD18, CVB3/TD31, and CVB3/TD50). Transfection of cDNA in HeLa cell cultures maintained a noncytopathic phenotype and the respective deletions through five passages of HeLa cells by supernatants. Monolayers were fixed and stained with crystal violet. (B) Viral RNA from each CVB3/TD (pass 5) was analyzed by RT-PCR with primers specific for sequences at or near the 5' end. Primers used are indicated. The arrow indicates a 600-bp marker. Lane M, 100-bp DNA ladder; lane +, CVB3/28; lane 1, CVB3/TD8; lane 2, CVB3/TD13; lane 3, CVB3/TD18; lane 4, CVB3/TD31; lane 5, CVB3/TD50. (C) Map of primer positions on CVB3 genome.
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FIG. 7. CVB3/TD strains are neutralized by anti-CVB3 polyclonal serum and infect cells to produce viral proteins. (A) Cultures of 105 HeLa cells were inoculated with 103 TCID50 units of CVB3/28 (lane 28), 107 rTCID50 TD8 (lane 8), 104 rTCID50 TD13 (lane 13), 105 rTCID50 TD18 (lane 18), 105 rTCID50 TD31 (lane 31), 106 rTCID50 TD50 (lane 50), or 0.1 ml of heart homogenate taken 18 days p.i. (lane AJ). Total RNA was prepared after 72 h for RT-PCRs with primers KS1 and KS2 (amplimer size, 390 bp). Lane M, 100-bp marker; lane +, CVB3/28 viral RNA RT-PCR; lane -, negative control RT-PCR; lane CC, uninfected cell control. The arrow indicates a 400-bp marker. (B) Same as in panel A, except CVB3 antiserum (1:500) was added to virus stocks in infections, washes, and medium. (C) Cultures of 105 HeLa cells were inoculated with 106 TCID50 units of CVB3/28 (lane 28), 107 rTCID50 TD8 (lane 8), 107 rTCID50 TD50 (lane 50), or uninfected cell control (lane CC). Cells were harvested at 7 h, resuspended in Laemmli buffer, electrophoresed, and analyzed by Western blotting, and viral proteins were detected as described in Materials and Methods. Mobility of molecular weight markers of 150, 75, 50, and 37 is noted. (D) Same as in panel C, but cells were harvested at 26 h p.i.
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FIG. 8. CVB3/TD strains package negative-strand RNA. (A) Dilutions of T7 RNA polymerase-transcribed positive-strand RNA and (B) T3 RNA polymerase-transcribed negative-strand RNA from a linearized CVB3 subclone were slot blotted. (C) RNA was prepared from virus stocks pretreated with RNase as described in Materials and Methods using 104, 103 and 102 TCID50 units of CVB3/28 (CVB3 10,000, 1,000, and 100, respectively) or 107 rTCID50 TD8, 107 rTCID50 TD13, 105 rTCID50 TD18, 108 rTCID50 TD31, or 108 rTCID50 TD50. Blots were probed with 32P-labeled E1 (positive strand) or 5Puff (negative strand). (D) Strand-specific RNAs (+, positive; -, negative) were purified from T7 and T3 RNA polymerase transcripts of a subclone of CVB3/28 cDNA, mixtures of transcripts, and RNA of CsCl gradient-purified CVB3/28, CVB3/TD8, and CVB3/TD50 as described in Materials and Methods. RNA (0.3 µg) was used for each preparation. cDNAs prepared from these RNAs were amplified with KS1 and KS2, electrophoresed, and visualized as described in Materials and Methods. Lane M, 100-bp ladder. The arrow indicates a 600-bp band.
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VPg is covalently attached to the CVB3/TD genomic RNA. As part of the process of picornavirus replication, the viral protein, VPg, is uridylated (103). Uridylated VPg is thought to serve as a protein primer (85) for transcription either by an interaction with residues in the poly(A) tract of the positive strand to initiate negative-strand RNA replication or with the two 3'-terminal adenosine residues of the negative strand to initiate positive-strand RNA replication, resulting in covalent attachment of VPg protein to the 5' end of the viral RNA (1, 97). However, we had observed that three of the five CVB3/TD genomes do not have a 5'-terminal uridine residue (Fig. 4). To determine whether the virion RNA of CVB3/TDs had VPg attached, we employed an antibody generated from immunization with a peptide containing the 10 N-terminal amino acid sequences of protein 3B from PV1 (73). Alignments of this region of 3B in PV1 and CVB3 revealed two changes in CVB3 relative to the PV sequence (Fig. 9A) (73). Virion RNA of PV1 (Fig. 9B, lane 1), CVB3/28 (lane 2), CVB3/TD8 (lane 3), and CVB3/TD50 virions (lane 4) was RNase treated, electrophoresed, and blotted. The N10 anti-VPg antibody detected a protein on Western blots of CVB3 RNA which migrated at the same size as that from PV (Fig. 9B). VPg was detected with N10 from the two CVB3/TD samples (Fig. 9B, lanes 3 and 4), at the same mobility as the PV and CVB3 control VPg proteins (lanes 1 and 2). Samples were digested with proteinase K to remove protein and then electrophoresed as before; no signal was detected with samples from CVB3/28, CVB3/TD8, and TD50 when probed with the N10 antibody (Fig. 9B, lanes 5 to 7). In the absence of both RNase and proteinase treatment, N10 detected a high-mobility band in both CVB3/TD8 and TD50 virion RNA (Fig. 9B, lanes 8 and 9) as expected for VPg with the attached virion RNA. As a further test of the protein's identity, protein covalently linked to RNA from CVB3/TD8 and CVB3/TD50 virion preparations was isolated from gels and sequenced. The first five amino terminal amino acids for each sample were determined as NH2-GAYTG, consistent with the VPg from CVB3 (Fig. 9A). These results indicate that the CVB3/TD virion RNAs are VPg linked. As equivalent amounts of viral RNA were used for PV1 Sabin, CVB3/28, and the two TD viruses, the similar intensity of the signal for VPg for the four RNase-treated samples (Fig. 9B, lanes 1 to 4) indicates that a similar amount of viral RNA has VPg attached. This observation suggests that VPg is linked to both the positive- and negative-strand encapsidated RNA, since CsCl-purified TD8 and TD50 have a positive- to negative-strand ratio of 3:1 (Fig. 8C) and attachment to the negative strand alone would diminish the signal visibly. If VPg is attached to the positive strand of TD8 and TD50 (which have 5'-terminal AG and GC, respectively [Fig. 4]), VPg attachment can occur independently of a 5'-terminal diuridine sequence.
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FIG. 9. CVB3/TD viruses have VPg covalently attached to genomic RNA. (A) Alignment of amino-terminal sequences of VPg between CVB3/28 and PV1. Differences are boxed. (B) Viral RNA was purified from stocks of the CVB3/28, TD8, and TD50 viruses (105 TCID50 units) and analyzed by Western blotting. Blots were probed with antibody to PV1 VPg (N10) as described in Materials and Methods. RNA treated with RNase A/T1: PV1 Sabin (lane 1), CVB3/28 (lane 2), CVB3/TD8 (lane 3), and CVB3/TD50 (lane 4); RNA treated with RNase A/T1 and proteinase K: CVB3/28 (lane 5), CVB3/TD8 (lane 6), and CVB3/TD50 (lane 7); untreated RNA: CVB3/TD8 (lane 8) and CVB3/TD50 (lane 9).
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FIG. 10. Inoculation of mice with CVB3/TD results in persistent cardiac virus infections. (A) Total RNA from homogenates of day 175 p.i. hearts of C3H/HeJ mice inoculated with CVB3/TD8 or TD50 was assayed by RT-PCR for the presence of CVB3 RNA with KS1 and KS2. Southern blot analysis (lower panel) with primer E3 confirms that amplified cDNA is CVB3. (B) Heart homogenates were assayed for cellular mRNA with 5-GADPH and 3-GADPH. Southern blot analysis (lower panel) with primer 5-GADPH. (C, D, E) HeLa cells (105) were inoculated with homogenates of day 175 p.i. hearts of C3H/HeJ mice inoculated with CVB3/TD8 (C) or TD50 (D) or with 106 TCID50 units of CVB3/28 (E). Total RNA from 72-h (C, D) or 24-h (E) cultures was assayed by RT-PCR for the presence of CVB3 RNA with KS1 and S, S1, S2, S3, or S4; electrophoresed; and visualized as described in Materials and Methods. Southern blot analysis (lower panels) with primer E3 confirms that amplified cDNA is CVB3. Lane M, 100-bp ladder; lane +, CVB3/28 viral RNA; He, HeLa cell total RNA; lane -, no RNA. The arrow indicates a 600-bp band.
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Picornavirus infections are generally considered to be acute and cleared rapidly by the host adaptive immune response, yet long-term persistence in animals and humans has been demonstrated (4, 54, 60, 87, 92, 95, 104, 116). The mechanism by which long-term picornavirus persistence occurs in the presence of an intact immune system remains unclear. It has been shown that DI virus populations, described for many virus families (28, 30, 98, 99) can persist for long periods of time in cell cultures. Spontaneously occurring picornavirus DI populations from cell culture systems demonstrate variously sized deletions in the capsid protein (P1) coding region of the viral genome (57), although defective viruses in foot-and-mouth disease have been shown to have deletions in the leader protein-encoding region (37). Further, defective interfering picornavirus populations have not been observed in animals or humans (99). In this study of coxsackievirus replication in cardiac cells in culture and in mice, the virus evolves to a population of partially deleted genomes.
The relatively rapid movement from a cytolytic to a noncytolytic phenotype, accompanied by the disappearance of detectable wild-type 5' genomic termini and their replacement by diverse TD 5' genomic termini, is consistent with predicted rapid changes in quasispecies populations when environmental conditions are altered (30, 66). An alternative possibility is that a slower accumulation of the deleted genomes occurred over the time between inoculation of the parental virus and the appearance of the CVB3/TD genomes. However, given the low yield of virus shown by the clonal CVB3/TD strains, we believe it is unlikely that a parental CVB3 population coexists with a minor population of TD-like genomes, since the latter should be at a significant replicative disadvantage and would soon be eliminated from the virus population. In vivo, the adaptive immune response to the CVB3 infection which clears the productive (cytolytic) wild-type CVB3 may confer a selective advantage to the more slowly replicating CVB3/TD variants. In vitro, the selection for these defective viruses in ACM may be related to the short period of viability of these primary cultures (48 to 72 h) (113): the protocol for serial passage of these viruses may have favored genomes which were packaged but still intracellular when the freeze-thaw lysis was performed.
A striking degree of structural conservation exists in domain I of TD genomes, despite differences in the deletion lengths. The results of chemical probing suggest that folding of structural elements within the domain I cloverleaf is determined locally; those genomes with stem-loop b sequences adopt the same structure regardless of the presence of stem a; the same is true for stem-loop c and stem-loop d. The stability of RNA structure in stem-loop d is quite remarkable, particularly in CVB3/TD50, and includes the non-Watson-Crick pyrimidine-pyrimidine pairs in the internal loop first indicated by the nuclear magnetic resonance analysis of Ohlenschläger and colleagues (80). In our structural analysis of the entire 5' NTR, we found no indications of structural perturbation downstream of the cloverleaf in any of the TD genomes. Thus, as suggested by others (11, 14, 42), elements of the 5' NTR responsible for IRES function and replication are largely independent.
Artificially created deletions of 5' termini of enteroviral genomes have been shown to be deleterious for viral replication (11, 106). Enterovirus cloverleaf domain I is an essential structured region for viral RNA replication (11, 84, 106). Mutations in stem-loop b of domain I have been demonstrated to prevent cytopathic virus replication (2, 3) as well as RNA replication (3, 84), while insertions and deletions in stem-loop d can prevent binding of PV 3CD protein (2). Domain I appears to be critical for initiation of negative-strand RNA replication (11, 42, 106). We have observed that all clonal CVB3/TD strains replicate so slowly that uninfected cells soon predominate in infected cultures, thereby preventing apparent CPE (data not shown). Thus, just the deletion of the 5'-terminal 7 nt (which occurs in each of the CVB3/TD strains characterized here) can attenuate replication. It is noteworthy that although stem-loop b contains a PCBP binding site (84), the absence of this region in CVB3/TD31 and TD50 does not further accentuate the replication-defective phenotype of these viruses. As the residual stem-loop d in the CVB3/TD domain I can bind the CVB3 3C protein (119), we speculate that this structure can form a replication complex with 3CD to permit sufficient negative-strand replication. The absence of a cloverleaf PCBP binding site may decrease viral RNA circularization via the cloverleaf ternary complex, believed to be important for RNA replication (42). However, interactions of the CVB3 IRES with host proteins such as PCBP may allow sufficient circularization of genomes for replication: engineered PV genomes lacking the IRES do not efficiently replicate RNA (75). It is clear that the cloverleaf domain is an important region for viral RNA replication since the CVB3/TD genomes have a more extreme phenotype than even engineered PV genomes with complete deletions of the 3' NTR (16): PV genomes in which the 3' NTR has been deleted nonetheless replicate in culture to titers within 10% of those of wild-type (parental) virus and induce widespread CPE in infected cultures.
Alterations of positive/negative viral RNA strand ratios have been linked with CVB persistence, as shown by in situ hybridization in murine heart muscle (54) or by strand-specific RT-PCR in skeletal muscle (104) and in persistence of PV following experimental infection of the murine central nervous system (38). Deletions of 1 to 3 nt at the 5' terminus or mutations in the first 6 nt of PV1 have been shown to alter positive- to negative-strand ratios in in vitro replication (100). We observed negative-strand RNA, as well as positive-strand RNA, in populations of CVB3/TD virions that had been incubated with RNase. The ratios of positive to negative strands in the preparations ranged between 3:1 and 12:1; this was a remarkable finding in that negative-strand RNA was not detectable in parental CVB3 virions prepared in the same manner. Assay of CsCl-banded CVB3/TD virions confirmed that negative-strand RNA was packaged. The logic of specific viral RNA packaging has dictated a packaging signal, a sequence or RNA structure which initiates the assembly of the capsid pentamers into a complete virion. No such specific signal has yet been identified in the human enteroviruses, although the generation of replicons with substitutions of foreign proteins in the P1 region which can be encapsidated in trans indicates that such a signal cannot be present in the capsid encoding region (47, 70, 90, 91). In PV, only newly synthesized genomes are packaged (79). It seems likely that the high packaging specificity for the positive strand in wild-type CVB3 and in PV1 (78) is linked to the efficiency of positive-strand RNA replication, which is decreased by the 5'-end deletions in the CVB3/TD strains. If, as has been suggested previously (79), the specificity of packaging is via viral replication proteins bound to positive-strand RNA, perhaps through interactions with the 5' terminus of the genome, only newly replicated viral RNA can be packaged. It is interesting that one PV replication protein, 2C, has been shown to bind to a double-stranded sequence at the 3' end of the negative-strand viral RNA (8) and stem-loop b (9), sequences which are partially or completely deleted in the CVB3/TDs. If the replication complex binding to these deleted genomes is altered, it may make negative- and positive-strand replication almost equivalent in efficiency. One consequence of this might be promiscuous packaging of both strands of viral RNA in the virions of CVB3/TDs.
Enteroviral RNA is covalently bound at the 5' terminus to the viral protein, VPg (1). Because uridylated VPg acts as a protein primer in the replication of enterovirus RNA by the RNA-dependent RNA polymerase 3D, VPg remains covalently attached at the 5' terminus. Encapsidated enteroviral RNA contains VPg, while cellular enteroviral positive-strand RNA used as mRNA is not (77). The CVB3/TD8, TD13, and TD50 genomes have 5' termini that are not U. Only the CVB3/TD18 genome begins with 5'-UU, while CVB3/TD31 begins with a single U residue (5'-UA). Thus, the 3'-terminal AA of the negative strand, which would interact in priming of enteroviral RNA synthesis by uridylated VPg (93), is not represented as 5'-UU in 4/5 of the CVB3/TD genomes. Despite these findings, VPg was easily detected by Western blot analysis in CVB3/TD8 and TD50 RNA, two genomes without 5'-terminal uridine residues. Since a quarter of the encapsidated RNA is negative-strand RNA, the signal might be reduced if only negative-strand RNA had attached VPg despite the presence of negative-strand viral RNA. However, the level of VPg detected in relation to the amount of encapsidated viral RNA was not decreased in the CVB3/TDs, indicating that the encapsidated positive-strand RNA is likely to have VPg attached despite the lack of the 5'-terminally repeated U residues. Sequence analysis of the VPg encoding region (3B) as well as the cis-acting replication element (CRE) region in the virus population from cultures of day 18 A/J heart homogenate (defined as nt 4364 to 4422, by analogy to PV RNA) (39) revealed no differences between the CVB3/TD RNAs and the parental CVB3/28 RNA (data not shown). The CRE, a stem-loop RNA structure in the coding sequence of enterovirus nonstructural protein 2C (39, 68), has been shown to function in VPg uridylylation. A slide-back model has been proposed for the CRE-based uridylylation of VPg (86) in PV1 in which interactions between VPg and 3D polymerase prime the linking of uridine to VPg through interactions with adenosine residues in the loop of the CRE. Thus, sites at which mutations might alter VPg uridylylation were not mutated in the CVB3/TDs. A 5'-terminal U residue is not conserved in the TDs (Fig. 4B). As poliovirus VPg can be linked to any of the nucleotides (although VPgpU is greatly favored in concentration [86]), VPg linked to nonuridine nucleotides may be used as a primer for synthesis of positive-strand RNA when the negative-strand template lacks 3'-terminal uridine residues. However, as the TD population does not favor U as the 5'-terminal residue as would be expected if positive-strand replication were primed by CRE-generated VPgpUpU, it can be assumed that the process of addition of nucleotides to the protein primer must occur at a site other than CRE in these mutants due to the lack of the complete 5' cloverleaf, possibly at the 3' end of the negative strand.
It is assumed that such deletions may constantly be occurring at some level in infected cells, due to pausing or premature termination of nascent RNAs. Are the TD genomes synthesized randomly, so that any number of different deletions occur, or is there a selection for relatively few classes of deletions which can promote successful replication? Do short deletions give rise to longer deletions? We may speculate on the mechanism based on an interpretation of the current results in which enzymatic amplification of intact 5' termini was not possible with the mixed population present in the AJ day 18 heart cultures but was possible when using RNA extracted from clonal populations of CVB3/TD8 and TD13. Failure to amplify the TD8 and TD13 genomes from a mixed, naturally occurring population suggests that these may be in much lower abundance than other genomic ends. If the CVB3/TD8 and TD13 genomes were, in fact, present in low abundance in the AJ18 population, this might indicate movement of the population toward the genomes containing greater deletions. We have established that the 5' deletions are not repaired during passage of clonal CVB3/TD strains in cell culture; therefore, we assume that for these strains, there is little or no evolutionary movement back to the wild type under these conditions. Inoculation of CVB3/TD strains into mice similarly did not result in reversion to a wild-type cytopathic phenotype. However, inoculation of mice with CVB3/TD8 produced cardiac virus which could not be amplified by primers specific for the first 20 nt of the CVB3 genome by RT-PCR amplification, unlike CVB3/TD8. Although the numbers of mice were too small to determine a consistent trend, this result, which suggests further evolution of the 5' end, can occur, probably by further deletion. Consequently, we suggest that the TD genomes are proceeding through sequence space in directions away from the wild-type virus. As the portion of stem-loop d preserved in the largest deletion that we have characterized (CVB3/TD50, a deletion of 49 nucleotides from the 5' genomic terminus) is the minimum for forming a complex of 3CD with RNA of the 5' end of the positive strand (32, 119), larger deletions may well be nonviable. Consistent with this, our structural analysis shows that the stem-loop d portion of TD50 is structurally indistinguishable from the stem-loop d in the full-length molecule.
While the viability in the natural environment of enteroviruses with significant replication deficits is expected to be quite low due to the inability of such virus populations to compete successfully with wild-type virus, defective replication may nonetheless provide an avenue for prolonged viral genetic survival under specific circumstances. We did not observe inflammatory disease in any hearts from mice inoculated with a CVB3/TD strain. Persistence of CVB in the heart muscle by this mechanism following infection by a cardiovirulent virus might, however, also encourage long-term persistence of the inflammatory disease initially induced by the wild-type virus infection. The concept of viral persistence through selection of variants from the viral quasispecies in the face of active immunity is known (reviewed in reference 30). The results presented here document the emergence of a unique enterovirus quasispecies either in murine cell culture or in experimentally infected mice. It remains to be shown whether these genomic deletions can be detected in enteroviral RNA isolated from human cases of myocarditis and dilated cardiomyopathy.
We thank J. Butler, P. Karki, and J. S. Leser for excellent technical assistance. We also thank F. Schiff of the ERACE Foundation, the Stein family, M. Guthrie, and E. Barnett for their generosity in supporting this work in memory of loved ones.
Present address: University of Nebraska Medical Center, Omaha NE 68198. ![]()
Present address: Department of Laboratory Medicine, Korea University Guro Hospital, Guro-gu, Guro-dong 80, Seoul, Korea 152-050. ![]()
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