Search PubMed⌕ Search

Biomedical subjects

F W Alt

Publications and source records attributed to F W Alt.

252 records · Page 14Linked to original sources

Polyoma virus and cyclic AMP-mediated control of dihydrofolate reductase mRNA abundance in methotrexate-resistant mouse fibroblasts.

As a model cell culture system for studying polyoma-mediated control of host gene expression, we isolated methotrexate-resistant 3T6 cells in which one of the virus-induced enzymes, dihydrofolate reductase, is a major cellular protein. In highly methotrexate-resistant cell lines dihydrofolate reductase synthesis accounts for over 10% that of soluble portein, corresponding to an increase of approximately 100-fold over the level in parental cells. This increase in dihydrofolate reductase synthesis is due to a corresponding increase in the abundance of dihydrofolate reductase mRNA and gene sequences. We have used these cells to show that infection with polyoma virus results in a 4- to 5-fold increase in the relative rate of dihydrofolate reductase synthesis and a corresponding increase in dihydrofolate reductase mRNA abundance. The increase in dihydrofolate reductase synthesis begins 15 to 20 h after infection and continues to increase until cell lysis. These observations represent the first direct evidence that viral infection of eukaryotic cells results in the increased synthesis of a specific cellular enzyme and an increase in the abundance of a specific cellular mRNA. In order to gain additional insight into the control of dihydrofolate reductase synthesis we examined other parameters affecting dihydrofolate reductase synthesis. We found that the addition of fresh serum to stationary phase cells results in a 2-fold stimulation of dihydrofolate reductase synthesis, beginning 10 to 12 h after serum addition. Serum stimulation of dihydrofolate reductase synthesis is completely inhibited by the presence of dibutyryl cyclic AMP as well as by theophylline or prostaglandin E1, compounds which cause an increase in intracellular cyclic AMP levels. In fact, the presence of dibutyryl cyclic AMP and theophylline results in a 2- to 3-fold decrease in the rate of dihydrofolate reductase synthesis and the abundance of dihydrofolate reductase mRNA. However, in contrast to the effect on serum stimulation, dibutyryl cyclic AMP and theophylline do not inhibit polyoma virus induction of dihydrofolate reductase synthesis or dihydrofolate reductase mRNA levels. These observations suggest that dihydrofolate reductase gene expression is controlled by at least two regulatory pathways: one involving serum that is blocked by high levels of cyclic AMP and another involving polyoma induction that is not inhibited by cyclic AMP.

Bucladesine↗

Gene amplification and drug resistance in cultured murine cells.

Resistance of mouse cells to the folate analog, methotrexate, results from selection of increasingly resistant cells on progressive increases of methotrexate in the culture medium. High-level resistance is associated with high rates of synthesis of dihydrofolate reductase and correspondingly high numbers of reductase genes. In some variants high resistance and gene copy number are stable in the absence of selection pressure, whereas in others they are unstable. Analogies are made to antibiotic and insecticide resistance wherein selection of organisms with increased capacity to counteract the drug effect results in emergence of resistance. Gene amplification may underlie many such resistance phenomena.

Alleles↗

Regulation of folate reductase synthesis in sensitive and methotrexate-resistant sarcoma 180 cells. In vitro translation and characterization of folate reductase mRNA.

A highly specific assay for folate reductase mRNA activity from Sarcoma 180 cells was developed using the rabbit reticulocyte lysate protein synthesizing system. Quantitation of in vitro folate reductase synthesis was accomplished by direct immunoprecipitation from lysate reactions. The in vitro labeled folate reductase was synthesized in a linear response to a wide range of RNA concentrations, migrated as a single prominent radioactive species upon polyacrylamide gel electrophoresis, and was indistinguishable from authentic 14C-labeled folate reductase on the basis of molecular weight and immunotitration with anti-folate reductase gamma-globulin. The assay was used to quantitate folate reductase mRNA activity in various cell lines and under several conditions known to affect folate reductase synthesis. These included (a) sensitive and methotrexate-resistant Sarcoma 180 cells, (b) two lines of resistant cells having different relative rates of folate reductase synthesis, (c) growth of methotrexate-resistant cells in the absence of methotrexate, and (d) growth phase. The results indicate that the relative rate of folate reductase synthesis in each case can be explained solely by the level of translatable folate reductase mRNA. The use of poly(U)-Sepharose and sucrose gradient fractionation procedures indicated that folate reductase mRNA contains poly(A) and has a sedimentation coefficient of approximately 14 S. These two fractionation steps were combined to achieve an approximately 90-fold purification of folate reductase mRNA over total cytoplasmic RNA.

Animals↗

Synthesis and degradation of folate reductase in sensitive and methotrexate-resistant lines of S-180 cells.

The methotrexate-resistant AT-3000 line of S-180 cells has at least 150-fold more immunologically cross-reactive folate reductase than sensitive cells. Highly specific immunologic and protein purification procedures were used to show that the increased enzyme levels in this line are due to a corresponding increase in the rate of folate reductase synthesis. This observation indicates that the relative turnover of the enzyme is not significantly different in the two lines. Folate reductase was purified to homogeneity from both the sensitive and the methotrexate-resistant cells. Comparison of various physical, kinetic, and immunochemical properties of the enzymes revealed no differences. These observations suggest that the AT-3000 line contains one or more regulatory variations leading to the over-production of folate reductase protein that is similar, if not identical, to that produced by sensitive cells. In resistant cells, specific immunoprecipitation experiments demonstrated that folate reductase comprises as much as 7 to 8% of the continuously labeled soluble protein and 6 to 7% of the soluble protein synthesis. Growth of these lines in the absence of methotrexate resulted in a slow decrease in the level of folate reductase to less than 1%. This decrease corresponded to a similar decrease in the relative rate of enzyme synthesis. Variations in the level of folate reductase with cell growth are also due to changes in the relative rate of enzyme synthesis. In the AT-3000 line, pulse decay experiments showed that the half-life of folate reductase was long (50 hours) relative to cell doubling time (24 hours), and also that methotrexate had little or no effect on the turnover of the enzyme. Comparison of the incorporation of radioactive leucine into folate reductase in continuous and pulse labeling experiments gave independent confirmation of these results. Therefore, the relative rate of folate reductase synthesis was the major parameter determining the amount of folate reductase under all examined conditions that resulted in altered levels of the enzyme in resistant cells.

Animals↗

Preferential utilization of the most JH-proximal VH gene segments in pre-B-cell lines.

The most JH-proximal VH gene segments are used highly preferentially to form VHDJH rearrangements in pre-B-cell lines. This result demonstrates that the rate at which immunoglobulin VH gene segments recombine is influenced by their chromosomal organization, and that the initial repertoire of VH genes expressed in pre-B cells is strikingly different from that seen in mature populations.

Amino Acid Sequence↗

Insertion of N regions into heavy-chain genes is correlated with expression of terminal deoxytransferase in B cells.

The variable regions of immunoglobulin heavy chains are encoded in the germ line by three discrete DNA segments: VH (variable) elements, D (diversity) elements and JH (joining) elements. During the differentiation of B lymphocytes, individual segments from each group are brought together by recombination to form the complete VHDJH variable region. To understand these processes better, we have now isolated and sequenced molecular clones representing intermediates (DJH fusions) and final products (VH-to-DJH joins) of heavy-chain gene rearrangement in two cell lines that represent analogues of cells at early stages of B-lymphocyte differentiation. Heavy-chain gene assembly in one cell line but not in the other is accompanied by the appearance of short nucleotide insertions at the recombinational junctions. The generation of such insertions is positively correlated with the expression of terminal deoxynucleotidyl transferase in these lines.

Animals↗

Novel immunoglobulin heavy chains are produced from DJH gene segment rearrangements in lymphoid cells.

It has been found that most immunoglobulin heavy(H)-chain gene diversity (D) segments carry their own 5' transcriptional promoter element. Transcription of rearrangements which use heavy-chain D and joining (J) segments in B-lymphoid cells ultimately leads to the production of a Dmu messenger RNA which contains the DJH segments linked to the mu heavy-chain constant region. If the D is joined to the JH segment in the appropriate translational reading frame, this Dmu mRNA is translated to yield a short Dmu protein with a variable DJH N-terminus.

Abelson murine leukemia virus↗

Regulated progression of a cultured pre-B-cell line to the B-cell stage.

The variable (V) regions of heavy and light immunoglobulin chains are encoded by multiple germline DNA elements which are assembled into complete variable-region genes in precursor(pre-) B lymphocytes. The heavy-chain V region (VH) is assembled from three separate germline DNA elements, the variable (VH), diversity (D) and joining (JH) segments; whereas light-chain variable regions of either the kappa or lambda type are assembled from two elements, the VL and JL. Analysis of tumour cell lines or sorted cell populations which represent early and late pre-B cells has suggested that heavy-chain assembly and expression generally precedes that of light chains; but, primarily because of the lack of appropriate model systems to study the phenomenon, the mechanism and significance of this apparently orderly differentiation process are much debated. Here we describe for the first time a transformed cell line, 300-19, which sequentially undergoes all of the immunoglobulin gene rearrangement and expression events associated with the differentiation of pre-B cells to surface immunoglobulin-positive B lymphocytes. Analysis of the in vitro differentiation of 300-19 cells provides direct evidence for distinct differentiation phases of first VH and subsequently VL assembly during B-cell differentiation. Furthermore, these analyses suggest that the mu heavy chain, resulting from a productive VHDJH rearrangement, has both a positive and a negative regulatory role in mediating this ordered differentiation process, that is, signalling the cessation of VH gene assembly and simultaneously signalling the onset of VL assembly.

Abelson murine leukemia virus↗

Human N-myc is closely related in organization and nucleotide sequence to c-myc.

N-myc, a cellular gene related to the c-myc proto-oncogene, was originally identified on the basis of its very frequent amplification and overexpression in a restricted set of tumours, most notably human neuroblastomas. That N-myc may have a causal role in the genesis of these tumours is suggested by the observation that in the rat embryo fibroblast co-transformation assay it has a transforming potential similar to that of c-myc. The apparent structural and functional homology of N-myc and c-myc suggests that they may be members of the same protooncogene family. However, despite these apparent similarities, expression of the two genes appears to be dramatically different with respect to tumour specificity, as well as tissue and developmental stage specificity. To further elucidate the common and unique aspects of N-myc and c-myc gene structure and function in normal and transformed cells, we have determined the organization of human N-myc and the nucleotide sequence of its messenger product, and we report here that N-myc and c-myc have a similar intron/exon structure and that their protein products share regions of significant homology.

Amino Acid Sequence↗

A functional T3 molecule associated with a novel heterodimer on the surface of immature human thymocytes.

The known T-cell receptors (TCRs) involved in the recognition of antigen and major histocompatibility complex (MHC) molecules are glycoproteins comprised of polymorphic disulphide-linked alpha- and beta-chains. The genes encoding these chains are homologous to immunoglobulin genes and consist of V (variable), J (joining) and C (constant) regions that rearrange during development. TCRs are expressed relatively late in thymocyte development and only in association with an invariant molecular complex of proteins termed T3. Immature thymocytes do not express the TCR-T3 complex but do express messenger RNA encoding a third rearranging T-cell receptor-like gene, termed T gamma. Here we report a clone of normal immature T4-T8- human thymocytes, designated CII, which does not express mature mRNA for T alpha or T beta genes, but does express high levels of T gamma mRNA. This clone also expresses high levels of surface T3, and antibodies to T3 induce immunologically relevant functions in CII cells. Immunoprecipitation of CII surface-labelled proteins with anti-T3 co-precipitates a T3 molecular complex together with two additional and novel peptides of relative molecular mass (Mr), 44,000 (44K) and 62,000 (62K).

Antibodies, Monoclonal↗

Recombination between immunoglobulin variable region gene segments is enhanced by transcription.

Immunoglobulin (Ig) variable (V) region genes are assembled in precursor B (pre-B) lymphocytes from multiple germline segments. The heavy-chain V-region gene is composed of variable (VH), diversity (D) and joining (JH) segments; kappa (K) and lambda (lambda) light-chain V-region genes have analogous VL and JL segments. Assembly of Ig V-gene segments, as well as those of the highly related T-cell receptor, is regulated at several levels and shows both stage and tissue specificity; for example Ig heavy-chain V-gene assembly precedes that of Ig light chains during B-cell differentiation. Joining of all classes of V-gene segments involves conserved recognition sequences that are probably targets for a common recombinase. Evidence has been presented suggesting that rearrangement of specific classes of segments is regulated by modulation of their accessibility to the recombinase. To elucidate mechanisms which control V-region gene assembly, we have investigated the effect of flanking gene expression on the frequency at which introduced V-gene segments are assembled in pre-B cell lines. Our findings suggest that transcription may play a direct role in the regulation of immunoglobulin V-gene assembly.

Animals↗

Mutational analyses of lymphocyte differentiation.

The site-specific recombination mechanism responsible for the assembly of antigen receptor variable region genes is only employed in lymphocyte development. Gene-targeted and other types of mutational analyses have implicated at least seven distinct gene products, some lymphoid-specific and others more generally expressed, as involved in aspects of this process. Mutation of the lymphocyte-specific activities required for VDJ recombination or mutation of the target gene segments of this process have created B and/or T cell-deficient mouse models that have provided new insights into the regulation of the VDJ recombination reaction and into how the successful achievement of this reaction at various loci helps lead lymphocytes through their early developmental program A second type of B lymphocyte-specific recombination process is involved in heavy-chain class switching; gene-targeted mutation approaches also have provided new insights into the cis-acting elements that target of this reaction to particular CH genes.

Animals↗