Virus-cell interactions. Introduction.
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Biomedical subjects
Publications and source records attributed to J W Jacobberger.
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To examine the pattern of retroviral vector gene expression during early stages of infection, a Moloney murine leukemia virus (M-MuLV)-based vector that transcribes the simian virus 40 (SV40) large T antigen (Tag) gene from the viral long terminal repeat (LTR) was used to infect proliferating rodent fibroblasts. At various times after infection, cells were fixed and stained for Tag by indirect immunofluorescence, and for DNA using propidium iodide. Tag immunofluorescence and DNA content were both quantified by flow cytometry. The results showed that Tag expression was first detected exclusively in the late G1 and early S phases of the cell cycle, approximately 12 h postinfection. The infection was synchronous in that Tag-expressing cells detected at 12 h, in late G1 and early S, moved as a discrete population through S phase, into the G2 + M phases of the cell cycle and then back into G1 during the next 8-10 h. The presence of a synchronous Tag-expressing cell population suggests that, at time of infection, cells in certain phases of the cell cycle were more susceptible to infection than cells in other phases. This may be related to synchronizing events that must occur before viral genes are expressed in infected cells; one such event may be integration of viral DNA into cellular chromosomes (i.e., provirus formation) that requires cells to pass through an M phase.
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Epithelial cell lines from the proximal tubule of SHR and WKY rats were generated by microdissection, cell growth on 3T3 cell feeder layers, and transduction of the SV40 large T-antigen gene. The cell lines that formed confluent, electrically-resistive monolayers (basal conductance 1 to 20 mS/cm2) were selected for further study. Of these, cell lines generated from one rat did not show evidence of T-antigen expression or integration, and apparently immortalized spontaneously. Cell lines from three other rats expressed high levels of T-antigen, and showed evidence of integration of one or more copies of T-antigen. All cell lines formed polarized monolayers with apical microvilli, tight junctional complexes, and convolutions of the basolateral plasma membrane. Most cell lines grew in the absence of extracellular glucose indicating a capacity for gluconeogenesis. Sodium succinate cotransport and P2-purinergic receptor mediated signaling were demonstrated in all lines tested. The cell lines also showed that Na/H exchanger activity is regulated by angiotensin II. The results indicate that these cell lines express a proximal tubular phenotype, and are morphologically and functionally similar to primary cultures. These rat cell lines represent a new, potentially useful cell model for elucidating the cellular and molecular mechanisms of genetic differences in proximal tubule Na+ reabsorption.
OBJECTIVES: New methods are available to immortalize parenchymal cells from exocrine glands and kidney with retention of differentiation. Adaptation of this technology to small, single-donor biopsy material or surgical specimens could provide genetically homogeneous cells for functional analyses and correlation with genetic background and underlying biochemistry. To develop a methodology useful for renal sodium metabolism, epithelial cell line generation was tested in a hypertensive rat model with features similar to salt-sensitive hypertension in humans. This form of hypertension has a large genetic component and is prevalent in African Americans. DESIGN: Protocols were designed to immortalize primary cultures of microdissected proximal tubule epithelial cells from spontaneously hypertensive (SHR) and control, normotensive Wistar-Kyoto (WKY) rats. Immortalization was based on a replication-defective retrovirus coding for SV40 large T-antigen as positive cell cycle regulator. Transport competent cells that grow on porous filters to form confluent monolayers were selected. RESULTS: Several proximal tubule cell lines have been developed from SHR and WKY rats. The cells retain important differentiated features, such as epithelial polarity, low monolayer conductance, and sodium-succinate cotransport. They are suitable for analyses of electrolyte transport by electrophysiology or imaging of intracellular fluorescent indicator dyes, such as sodium-binding benzofuran isophthalate. CONCLUSION: Feasibility of generating epithelial cell lines from defined renal segments was demonstrated. The cells retain important transport function so that analyses of sodium metabolism and the influence of genetic background on it are possible. The methodology is applicable to human specimens.
We have demonstrated previously that SV40 T antigen and serum regulate the length of G1 in exponentially growing NIH-3T3 cells in part by inhibiting density dependent negative cell cycle regulation. In these studies it was suggested that T antigen positively regulated G1 in a density independent manner as well. In this report we show that, 24 h after treatment, TGF-beta 1 perturbs the cell cycle of exponentially growing fibroblasts in a manner similar to T antigen. However, prior to 24 h, TGF-beta 1 produced a negative response, elongating the G1 phase of the cell cycle that was followed by a positive response, both of which were density independent. This biphasic response was measured between 0 and 12 h post-treatment and was relative to responses from serum. This switch from an early inhibitory effect to a late stimulatory effect was associated with changes in Rb phosphorylation, the timing and magnitude of which indicated that Rb may be directly regulating TG1 rather than reporting changes in the population. This is further substantiated by abrogation of the inhibitory effect by expression of wild-type SV40 T antigen and retention of the effect in cells that express an Rb-binding mutant of T antigen (K1). The biphasic regulatory effects of TGF-beta 1 were also displayed in WI-38 and IMR-90 human fibroblasts. This suggests that this biphasic effect is a property of fibroblasts.
The methodologies for isolating cell lines have become very powerful, particularly in terms of retaining differentiated features of the parent cells. Cell lines can be developed from primary or early passage cells as well as from transgenic animals that carry an immortalizing gene. Cell lines from epithelia have been selected for their polar orientation, tight junction formation, and expression of differentiated markers or functions. These cell lines provide useful models for studying cell biology of specific tissues, tumorigenicity, genetic abnormalities, or to help screen for effective methods of gene therapy.
We have investigated the transformed phenotype of neonatal mouse cortical astrocytes immortalized by retrovirus-mediated transfer of the SV40 large T antigen gene. Expression of T antigen was driven by the Moloney murine leukemia virus long terminal repeat. Cell lines were selected based on coexpression of neomycin resistance, which provides a selection method believed to be unbiased for transformation state. Astrocyte cell lines derived in this manner express T antigen over a relatively narrow range (approximately 4-fold), are contact inhibited, are able to enter a quiescent state in the presence of growth factors, and do not readily form colonies in soft agar. Compared to mortal astrocytes, the population growth rate is increased 3-fold, saturation densities are 4-fold higher, and the genome is relatively unstable as measured by the presence of DNA-aneuploid stem lines and by changes in DNA ploidy over time. However, changes in transformation phenotype occur at a low rate, making the cell lines amenable to experimentation. Most often, the growth phenotype remained unchanged during months of culture. Transfection of an epidermal growth factor receptor (EGFR) gene was used to generate a subline that was conditionally transformed (colony formation in soft agar was dependent on transforming growth factor alpha). v-raf transfection was used to generate constitutive transformation. Thus, these cell lines appear to be excellent experimental models for progressive transformation. With them, untested hypotheses of brain tumor progression derived from human genetic studies may be tested experimentally.
Transforming growth factor beta (TGF beta) is a potent inhibitor of epithelial cell growth. In the present study TGF beta 1 modulation of human ectocervical epithelial cell growth and differentiation is evaluated using an HPV16-immortalized human ectocervical cell line, ECE16-1. These cells were found to contain a high-affinity receptor for TGF beta 1 (Kd = 75 pM). TGF beta (10-500 pg/ml) suppressed ECE16-1 growth and [3H]thymidine incorporation in a dose-dependent manner. Growth inhibition was reversible at TGF beta 1 concentrations of 100 pg/ml or less. At higher concentrations of TGF beta 1, treatment for longer than 2 days induced irreversible growth inhibition. In addition to its effects on cell growth, TGF beta 1 treatment increased apoptosis in ECE16-1 cells as measured by an increase in cornified envelope formation, flow cytometry, and DNA fragmentation. Apoptosis was enhanced at doses > or = 100 pg/ml. There was a highly significant increase in the activity of tissue transglutaminase, an enzyme believed to play an important role in apoptosis. This increase in transglutaminase activity was paralleled by a TGF beta 1-stimulated increase in fibronectin levels. Transglutaminase and fibronectin have been shown to associate during tissue remodeling. These data suggest that TGF beta 1 may act as an important paracrine/autocrine factor to stimulate normal cervical remodeling and to limit HPV16-immortalized cervical cell progression by stimulating apoptosis. The induction of fibronectin and tissue transglutaminase suggests that the TGF beta 1 pathway of cell death differs from that of normal ectocervical epithelial cell differentiation, which is mediated by epidermal transglutaminase.
Transforming growth factor beta (TGF beta) is a pluripotent modulator of cell function and an important suppressor of cervical epithelial cell proliferation. In the present study, we examine the effects of TGF beta 1 on the level and activity of the epidermal growth factor receptor (EGFR) in HPV-16 immortalized cervical epithelial cells. In ECE16-1 cells, increased EGFR levels are observed within 24 h after initiation of TGF beta 1 treatment and levels continue to increase with time. This increase is correlated with a TGF beta 1-dependent decrease in proliferation rate. Scatchard analysis indicates that the population of EGFR sites induced by TGF beta 1 have a low affinity for EGF (Kd = 4.08 nM) compared to the receptors present prior to TGF beta 1 treatment (Kd = 0.3 and 1.6 nM). TGF beta 1 treatment also reduces EGFR kinase autophosphorylation activity. Cell cycle studies indicate that TGF beta 1-treated cells arrest in the G1 phase of the cell cycle and that regulation of EGFR level was independent of cell cycle stage in both TGF beta 1-treated and untreated cells. However, EGFR level was related to the G1 phase time. Parallel studies indicate that a TGF beta 1-dependent increase in p53 level is also correlated with increased time spent in G1. These results suggest that TGF beta 1 inhibition of ECE16-1 cell proliferation may act both by the replacement of high affinity/high kinase activity EGFR sites with low affinity/low kinase activity EGFR sites and a p53-mediated cell cycle arrest.
Jurkat cells stably expressing high levels of the HIV-1 Tat protein were generated after transfection with an Epstein-Barr virus-based episomal replicon and selection in hygromycin B. The Jurkat Tat transfectants exhibited a longer doubling time when compared to Jurkat cells or Jurkat cells transfected with the control parent plasmid. Cell cycle analysis revealed comparable durations of each phase of the cell cycle in the Tat and control transfectants. Flow cytometric analysis using Hoechst 33342 and propidium iodide staining revealed that the Tat transfectants exhibited a higher percentage of apoptotic cells when compared to the control transfectants (29.1 +/- 3.1 vs. 11.43 +/- 3.1%). Incubation of Jurkat cells with recombinant HIV-1 Tat protein resulted in induction of apoptosis. The HIV-1 Tat protein induces apoptosis in a CD4-positive T cell line. Tat-induced programmed cell death may contribute to the lymphocyte depletion seen in persons infected with HIV-1.
The proliferation rate of mammalian cells is regulated normally in the G1 phase of the cell cycle. During this phase, it is convenient to assign positive and negative roles to the molecular programs that regulate the duration of G1 and the phase transition from G1 to S phase. Density-dependent inhibition of cellular proliferation results in an increase in the duration of G1. This form of regulation is due to both secreted factors and cell-cell contact. Serum is mitogenic to a variety of mammalian cell types. Because quiescent cells enter S phase as a result of serum addition to culture media, serum is usually regarded as a source of positive regulatory growth factors. We have measured the length of the G1, S and G2+M phases of NIH 3T3 cells during exponential growth as a function of cell density and serum concentration. The G1 length increases during exponential growth as a function of density while S and G2+M are relatively constant. Further, this increase in G1 phase time, or density mediated negative regulation, is inhibited by increasing serum concentration. This phenotype is saturable between 10% to 20% serum. Serum concentrations above 2.5% are able to increase the rate of cell cycling (decrease the G1 phase time) by inhibiting density dependent negative regulation of NIH 3T3.
The ability of neonatal astrocytes to promote neurite outgrowth in vitro and in vivo diminishes as astrocytes mature. This property correlates with the developmental loss of the central nervous system's ability to regenerate after injury. Cell lines representative of immature and mature astrocytes would be useful for studies to determine differences between these two populations. Previous work on immortalization of bipotential neural/glial precursors and fully differentiated glial cells suggests that immortalization of astrocytes at timed intervals of culture may yield cell lines trapped in different maturation states. To test this, neonatal mouse cortical astrocytes were immortalized by retrovirus-mediated transfer of the SV40 T antigen (Tag) gene at 2, 6 and 17 days of culture. The clonal cell lines express Tag and are contact-inhibited. Three phenotypes that change as a function of astrocyte maturation were examined to determine the fidelity with which the cell lines represent immature and mature astrocytes. These were: (1) cell morphology, growth pattern and size, (2) level of glial fibrillary acidic protein (GFAP) expression, and (3) neurite outgrowth promotion. First, immature and mature lines resemble mortal type 1 astrocytes of corresponding ages with respect to morphology and growth pattern, and retain a quantitative difference in cell size (mature cells are larger). Second, the pattern of GFAP expression is preserved, with immature lines expressing lower levels than mature cell lines, but the overall GFAP levels are significantly lower in immortalized cell lines compared to mortal cells. Finally, promotion of neurite outgrowth from embryonic chick retinal ganglion cells on monolayers of the cell lines was examined. While all neurite outgrowth measures are significantly greater for the immortalized lines than for control 3T3 cells, they are attenuated relative to mortal astrocytes. The age-related pattern of stronger outgrowth support on immature astrocytes is retained for neurite initiation, but not retained for mean neurite length. Thus, SV40 Tag-immortalized astrocytes have a complex phenotype characterized by retention of age-related differences in morphology, growth pattern and cell size, and by a marked attenuation of some astrocyte-specific characteristics but retention of age-related differences in the expression level of these same characteristics, and finally, loss of the ability to support neurite extension at level characteristic of immature astrocytes.
The interaction of fluorescein-labeled nerve growth factor (NGF) with human melanoma cells (A875) has been studied in order to assess better methodology for rigorous NGF binding studies. The NGF was modified at a single carboxyl group with iodoacetamidofluorescein after reaction with carbodiimide and cystamine. The modified NGF showed full binding competence in competition with radiolabeled NGF and full biological activity in neurite outgrowth assays compared to native NGF. Binding to unfixed, viable cells was assayed using flow cytometry. This method offers the advantage that unbound ligand need not be separated from that which is cell-associated, thus avoiding perturbation of the binding equilibrium, and accurate, extensive statistical analysis is possible. Binding of fluorescein-NGF was mainly specific and saturable, with analysis by three methods of data treatment indicating a Kd of 0.8 to 3 nM at 4 degrees C. Time-based data acquisition allowed a continuous time course for binding to be generated. Binding reached a steady-state level within 5 min of exposure of the cells to the ligand. Kinetic and steady-state results obtained using fluorescein-NGF agree well with previous data produced by 125I-NGF binding studies. The main limitation of the flow cytometric method in the NGF system is the relative lack of sensitivity compared to the binding of radiolabeled NGF, partially due to unusual quenching of the fluorophore bound to NGF.
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Reticulocyte analysis by flow cytometry offers precision and sensitivity greater than those of conventional morphologic methods and permits derivation of a reticulocyte maturity index. However, interlaboratory variability has not yet been reported. The authors analyzed 310 samples at eight sites using 11 instruments over a 4-month period to examine intermethod and interlaboratory variabilities. Stains included thiazole orange, ethidium bromide, and auramine O. Instruments included models by Coulter, Becton Dickinson, TOA Medical Electronics, and Ortho Diagnostics. The coefficient of variation (CV) among all sites and methods on these samples varied as a function of the reticulocyte percentage, ranging from a mean CV of 69% for samples with < .5% reticulocytes to 24.1% for those with > 2.5% reticulocytes. The best performance was observed with the TOA R-1000 dedicated reticulocyte analyzers, with a mean CV of 18.4% for samples with < .5% reticulocytes and 4.6% for samples with > 2.5% reticulocytes. The reticulocyte maturity index showed comparable intersite precision, with a mean CV of 16% for samples with > 2.5% reticulocytes with multipurpose flow cytometers and a mean CV of 7.3% with the TOA R-1000 instruments. Interclass correlations among all sites ranged from .79 to .99 for the reticulocyte counts and .41 to .88 for the reticulocyte maturity index. The authors conclude that flow cytometric reticulocyte analysis is more precise than manual reticulocyte analysis. With greater automation of this methodology, further interlaboratory standardization of reticulocyte counts and the reticulocyte maturity index can be achieved.
Two glial cell types surround olfactory axons and glomeruli in the olfactory bulb (OB) and may influence synapse development and regeneration. OB astrocytes resemble type-1 astrocytes, and OB ensheathing cells resemble non-myelinating Schwann cells. We have produced clonal OB astrocyte and ensheathing cell lines from rat neonatal and adult OB cultures by SV40 large T antigen transduction. These cell lines have been characterized by morphology, growth characteristics, immunophenotype, and ability to promote neurite outgrowth in vitro. Neonatal and adult ensheathing cell lines were found to support higher neurite outgrowth than OB astrocyte lines. Neonatal OB astrocyte lines were of two types, high and low outgrowth support. The low support astrocyte lines express J1 and a chondroitin sulfate-containing proteoglycan as do astrocytes encircling the neonatal glomeruli in vivo. The adult OB astrocyte cell lines supported lower levels of outgrowth than adult ensheathing cell lines. These results are consistent with a positive role for ensheathing cells in OB synapse regeneration, in vivo. Further, based on our results, we hypothesize that ensheathing cells and high-outgrowth astrocytes facilitate axon growth in vivo, while low outgrowth astrocytes inhibit axon growth and may facilitate glomerulus formation.
BACKGROUND: Prostatic carcinoma is both the most common invasive cancer and the second most common cause of cancer deaths in men in the United States. Before 1991, attempts to propagate prostatic carcinoma from primary tumors for periods longer than 3 months were unsuccessful in vivo and in vitro with rare exceptions. In 1991, we reported establishment of slowly growing tumors for six of 10 human primary prostatic carcinomas approximately 2-6 months after transplantation. However, none of the tumors were larger than 5 mm or serially transplantable. PURPOSE: Our purpose in this study was to determine whether human primary prostatic carcinoma could be grown as serially transplantable xenografts. METHODS: Cells from primary prostatic carcinomas obtained from transurethral prostatic resections or total prostatectomies in 20 patients were injected subcutaneously into male nude mice on the day of surgery. Sustained-release testosterone pellets were placed subcutaneously in the mice 2-24 days before transplantation of tumors and at intervals of 10-12 weeks. Serial transplantations in subsequent generations of mice were carried out by similar methods. Chromosome analysis was performed on six tumors. RESULTS: Six of 20 primary prostatic carcinomas have grown sufficiently to permit serial transplantation into second mice; four have been documented histopathologically in the second mouse and serially transplanted into three or more successive mice. When a single primary tumor was injected into several mice by the same procedure, tumors failed to grow in some recipients but became serially transplantable in others. Growth of these tumors is slow and irregular, with frequent regressions. Short-term cultures of 10 tumors, eight of which were injected into mice in parallel, were initiated on the day of surgery; CWR31, which was successfully transplanted serially, exhibited only aberrant metaphases and showed clonal, chromosomal changes in culture. Including CWR31, three of the six tumors for which chromosomal analysis was successful contained clonal aberrations. Preliminary studies of SCID (severe combined immunodeficient) mice suggest that they are not superior to nude mice for establishment of serially transplantable prostatic carcinoma xenografts. CONCLUSIONS: A proportion of human primary prostatic carcinomas can be grown as xenografts. Four new serially transplantable xenografts (CWR21, CWR31, CWR91, and CWR22) are currently propagated in our laboratory, a resource that was not previously available. IMPLICATIONS: Our experience suggests that the most important factor in serial transplantation is the collaboration of urologists and pathologists in expediting placement of the tumor in cold saline, examination of the frozen section, and transplantation.