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J McCubrey

Publications and source records attributed to J McCubrey.

12 recordsLinked to original sources

Abrogation of factor-dependence in two IL-3-dependent cell lines can occur by two distinct mechanisms.

We have investigated the mechanisms of abrogation of factor-dependence of lymphoid (FL5.12) and myeloid (FDC-P1) interleukin-3 (IL-3)-dependent cell lines following infection of the cells with retroviruses that encode different oncogenes and immediate selection of IL-3-independent growth. As previously reported by others, Abelson-MuLV (Ab-MuLV) transforms both cell lines to factor-independence, and the transformed cells express the viral oncogene, do not produce IL-3, and are tumorigenic. In contrast, IL-3-independent lymphoid and myeloid cell lines recovered after infection with retroviruses that encode v-src or v-fms oncogenes lacked the v-src or v-fms provirus. Three of seven IL-3-independent transformants were rearranged at the IL-3 locus, produced IL-3-specific mRNA, secreted IL-3 into the culture medium, and grew better in the presence of IL-3. These IL-3-independent transformants produced tumors upon inoculation into nude mice, albeit with longer latent periods than Ab-MuLV transformants. The expression of hematopoietic cell markers was compared in parental and IL-3-independent transformants by immunofluorescence and analysis of mRNA levels. Significant elevation of LFA-1 and MHC class I molecules and loss of expression of IL-2-receptor molecules was detected in most IL-3-independent transformants. These differences in antigen expression indicate that additional phenotypic changes accompany transformation to factor-independence.

Animals

Transformation of B and non-B cell lines with the 2,4,6,-trinitrophenyl (TNP)-specific immunoglobulin genes.

The rearranged mu and kappa genes from the 2,4,6-trinitrophenyl (TNP)-specific hybridoma Sp6 have been introduced into B cells from three different stages of differentiation as well as 5 non-B cell lines to determine the levels and modes of immunoglobulin (Ig) gene expression. In pre-B cells transformed with the mu and kappa genes, low levels of Sp6-specific mu RNA were produced and approximately 210-fold less mu and 800-fold less kappa proteins were produced than in the hybridoma Sp6. The Ig proteins were present intracellularly, but were not detected on the cell membrane. In mature surface sIg+ B cell transformants, higher levels of mu Sp6 and kappa Sp6 proteins and RNA were produced than in the pre-B cell transformants (12 X mu, 70 X kappa). These transformants displayed the mu Sp6 and kappa Sp6 proteins on the cell membrane and also secreted the transfected Ig product. Plasma cell transformants produced the highest amounts of mu Sp6 and kappa Sp6 proteins. These transformants secreted pentameric IgM but did not display detectable amounts of these proteins on the cell membrane. T cell and one fibroblast transformant produced Ig as normal sized mu Sp6 and kappa Sp6 proteins. All other mu Sp6 and kappa Sp6 non-B cell transformants (melanoma, teratoma and macrophage) failed to produce enough Ig to determine whether the Ig proteins were of the correct molecular weights. The T cell and fibroblast transformants that produced Ig proteins did not secrete or display detectable Ig on the cell membrane. The expression of Ig did not inhibit the expression of the T cell antigen Thy-1 in the T cell transformants.

Animals

Enrichment of hematopoietic precursor cells and cloning of multipotential B-lymphocyte precursors.

A simple one-step isolation technique significantly enriched mouse fetal liver cells that respond to interleukin 3 (IL-3), a multilineage hematopoietic growth factor. The fetal liver cell subpopulation isolated with monoclonal antibody AA4 contained 50- to 100-fold higher frequencies of multipotential (CFU-mix) or restricted (CFU-G/M, BFU-E) erythroid/myeloid precursors as well as precursors that differentiate to become mature B lymphocytes [CFU-mix = erythroid and myeloid colony-forming unit(s); CFU-G/M = CFU-granulocyte/macrophage; BFU-E = burst-forming unit-erythroid]. The B-lymphocyte precursors could be cloned in single-cell cultures when IL-3-containing supernatants were present. Growth of these clones was supported by purified IL-3 but not by purified IL-2. Stable growth has been maintained for greater than 6 mo in the presence of IL-3. Such clones express on their cell surface low amounts of class I major histocompatibility complex antigens and high amounts of AA4, GF1, and leukocyte common glycoprotein 200 antigens. They lack detectable rearrangements of their Ig-encoding genes [joining region heavy and light (kappa, lambda) chain genes], even after subcloning, but maintain their capacity to differentiate to mature B lymphocytes committed to multiple Ig specificities.

Animals

Different ways to modify monoclonal antibodies.

In this paper we summarize experiments which were undertaken to create altered antibody molecules. Three different approaches were used. Established hybridoma lines were re-hybridized to mouse spleen cells to generate arrays of secondary hybridomas which express one particular heavy chain and one specificity together with a multitude of different light chains. In such hybrids the influence of light chains to the antibody combining site and the influence of affinity to antibody effector functions can be studied. Another way to obtain altered antibodies was the selection of cells producing less lytic IgM. With this technique we obtained (among many other variants) a series of mu-deletion products which were used to map the fine specificity of rat anti-mouse mu monoclonal antibodies. Both the anti-mu antibodies and the deletion variants were used to assign the Clq binding to the fourth C mu-domain demonstrating the power of mutant IgM in the structure-function analysis. In a third series of experiments we show the feasibility of generating new antibody combining sites by the methods of molecular genetics. The variable region gene of a heavy chain was placed in front of a kappa-constant region gene. The plasmid construct was transferred into mouse myeloma lines which stably express a variable heavy-constant light chain protein. Upon fusion with a light chain producing line, chimaeric light chain dimers with a functional antibody combining site were secreted. These experiments demonstrate that new series of man-made antibody molecules can be made in the future.

Animals

Activation of nonexpressed endogenous ecotropic murine leukemia virus by transfection of genomic DNA into embryo cells.

We studied the infectivity of endogenous ecotropic murine leukemia virus genomes contained in high-molecular-weight DNA prepared from virus-free cells of the AKR-2B line, and from RF, BALB/c, B6, and (BALB/c x B6)F(1) mouse embryo cells. When DNA prepared from virus-free AKR-2B cells was transfected into NIH-3T3 cells, no virus-positive cultures were observed, a result consistent with previous reports. However, when DNAs from virus-free AKR-2B cells or virus-free cells containing the RF/J or BALB/c ecotropic proviruses were transfected into chicken embryo cells that were then cocultivated with SC-1 (mouse) cells, virus-positive cultures were recovered. The specific infectivities of the AKR provirus(es) contained in virus-free cells and the molecularly cloned Akv-1 provirus were similar when chicken embryo cells were used as primary recipients. Virus-positive cultures were also observed when secondary mouse embryo cells were used as recipients for DNA from virus-free AKR-2B and RF/J cells. The transfected chicken embryo-SC-1 cultures produced XC-positive murine leukemia virus that is N-tropic. Virus-positive recipient cultures were observed 10- to 100-fold more frequently when AKR-2B DNA was used than when BALB/c DNA was used as the donor DNA. Our studies indicate that some nonexpressed ecotropic murine leukemia virus proviruses are activated upon transfection into chicken embryo cells. Such studies suggest that there are different factors governing the expression of murine leukemia virus after transfection into established cell lines (NIH-3T3) and into nonestablished secondary cultures (chicken and mouse).

AKR murine leukemia virus

Endogenous mouse leukemia viruses.

The earlier demonstration that genes of the mouse greatly influenced the spontaneous incidence of lymphoma was among the more persistent barriers to general acceptance of a viral etiology of this disease. We now can be fairly certain that some of those mouse genes are the DNA life phase of a class of retrovirus known as murine leukemia virus. These MuLV, although related in sequence to each other, are a collection of viruses that show diverse patterns of host range and tissue tropisms. The host-range properties of MuLV serve as means of classifying them into related families known as ecotropic, xenotropic, and amphotropic, and are probably dictated by determinants on gp70. The preferential abilities to replicate in different tissues, on the other hand, may be dictated by the controlling sequences located at the 3' end of the genome, known as U3. MuLV genomes are located at many different sites in the mouse genome. The viral genomes found at those sites can be induced to be expressed with different efficiencies spontaneously in vivo, by chemicals in vitro, or by DNA transfection. Certain MuLV genomes can also interact to increase expression perhaps by recombination or trans complementation. Although the molecular mechanisms that explain these phenomena are not yet clear, the phenomenon of differential expression has important pathological consequences, particularly in the development of lymphoma. The complex process by which endogenous MuLV induce leukemia appears to involve the expression and interaction of multiple MuLV genomes. It seems apparent that expression of an MCF-like gp70 is an invariant aspect of this process, and that observation suggests that this molecule, like the SFFV gp52, may indeed serve to stimulate cell proliferation. The most common means of expressing such a molecule at elevated levels appears to involve recombining it into an ecotropic genome that replicates with high efficiency. Thus, the viral requirements for leukemogenesis may depend on both efficient and perhaps tissue tropic replication as well as on the expression of a particular gp70.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

Structure and expression of endogenous ecotropic murine leukemia viruses in RF/J mice.

High leukemic mouse strains possess proviral genomes that are more inducible for virus expression by halogenated pyrimidines than the proviral genomes harbored by low leukemic mice. We investigated the induction and arrangement of ecotropic proviruses in RF mice, a strain of mouse that develops a moderate incidence of leukemia late in life. We found that RF mice, unlike either high or low leukemic inbred strains, carried both a gene for high efficiency virus induction (Rjv-1) and a gene for low efficiency virus induction (Rjv-2). Virus induction from mice that contained Rjf-2 alone was observed only in crosses with two other strains that carried ecotropic proviruses, i.e., DBA/2 and C57BL/6, and not in crosses performed with mice that lacked ecotropic proviruses, i.e., 129, SWR, and NFS. Inheritance of the Rjv-1 gene frequently resulted in viremia when a virus-suppressive gene(s) of RF (most likely Fv-1) was not present in the same individual. Rjv-1 and Rjv-2 virus induction genes co-segregated with ecotropic proviruses integrated in different cellular DNA sequences. Rjv-2, the less inducible ecotropic provirus in RF mice, is located in cellular DNA sequences very similar to those found adjacent to the ecotropic provirus of BALB/c. These results document a second system of virus interaction or complementation and demonstrate that ecotropic proviruses of different phenotypes can be found within an individual mouse strain.

Animals

Genetic interactions in the spontaneous production of endogenous murine leukemia virus in low leukemic mouse strains.

The spontaneous expression of ecotropic murine leukemia virus (MuLV) in spleen cells of BALB/c, C57BL/6 (B6), and derivative mice was examined as a function of age. The patterns of spontaneous virus induction in vivo correlate with the patterns of virus induction in vitro, which result from the action of two loci, Inc-l and Inb-l (7). Whereas mice carrying Inc-l or Inb-l have similar phenotypes in vitro, they have significantly different phenotypes in vivo. Mice of the Inb-l+/+ genotype, e.g., B6, rarely expressed MuLV, and the titer of MuLV recovered from rare MuLV-positive mice of this genotype was usually low. Mice of the Inc-l+/+ genotype, e.g., BALB/c, expressed low amounts of MuLV early in life, however, from 6-12 mo of age approximately one-half of the Inc-l+/+ mice expressed virus, frequently of high titer. Equal numbers of N-tropic and B-tropic MuLV were recovered from Inb-l+ mice, but predominantly N-tropic MuLV was recovered from Inc-l+ mice. Strains that carry dominant (+) alleles at both Inc-l and Inb-l show higher titers of MuLV earlier in life than strains that carry only Inc-l or Inb-l. The presence of dominant alleles at both loci results in the appearance of predominantly N-tropic virus early in life. These results demonstrate that the principal determinants of spontaneous virus expression in these low leukemic strains of mice are the In loci or genes linked to them. A further inference that can be drawn from these studies is that the appearance of B-tropic virus is by no means a random process but rather results from predictable patterns of MuLV expression and alteration.

Aging

Allelism and linkage studies of murine leukemia virus activation genes in low leukemic strains of mice.

Previously, we identified two genes, termed Inc-1 and Inb-1, that interact to enhance ecotropic murine leukemia virus induction in low virus strains of mice. Mice related to BALB/c in origin carry a locus termed Inc-1, whereas mice related to B6 carry an Inb-1 locus. Mice that carry both Inc-1 and Inb-1 yield 10- to 50-fold more virus-producing cells than parental strains on induction with halogenated pyrimidines in vitro and demonstrate enhanced murine leukemia virus production in vivo. Here, we show that mice related to BALB/c in origin, i.e., A, C3H/He, and SEC, have an Inc-1 locus that is allelic with that of BALB/c. The C57BR mouse strain has an Inb-1 locus that is allelic with that of B6, located on chromosome 8, 30 cM from Es-1. We also show that the Inc-1 locus of BALB/c mice is located on chromosome 5, 24 cM from Pgm-1 and 43 cM from Gus. Kozak and Rowe (6,8) and Ihle and co-workers (3) have shown that the ecotropic virus-inducing genes in BALB/c and B10 mice are located on chromosomes 5 and 8, respectively, with similar distances from the previously mentioned biochemical markers. Our data are consistent with two possibilities: Inc-1 and Inb-1 are part of the virus-inducing genes Cv-1 and Bv-1, respectively , or Inc-1 and Inb2-1 are tightly linked regulatory genes.

Alleles

Genetic interactions in induction of endogenous murine leukemia virus from low leukemic mice.

The frequency of ecotropic murine leukemia virus (MuLV) production in cells induced with halogenated pyrimidines has been investigated in several low leukemic strains of mice. Very few BALB/c or C57BL/6 (B6) induced embryo cells produce MuLV; this low frequency increases 10 to 50 fold in cells of the BALB/c x B6 F1 hybrid. Data from back-crosses of the F1 hybrid to each parent and from BALB/c x B6 recombinant inbred strains indicate that the phenotype of enhanced MuLV production results from interaction of two unlinked loci, dominant (+/+) alleles of which are carried by either parent. Genetic tests with BALB/c x B6 recombinant inbred strains confirm this two-locus model. The loci are designated Inc-1 and Inb-1 to signify their phenotypic detection by induction and the BALB/c or B6 strain of origin, respectively. Examination of hybrids of BALB/c and of B6 with other strains indicates that strains related in pedigree to BALB/c carry Inc-1, whereas those related to B6 carry Inb-1. Identification of genetic loci that specifically interact to enhance MuLV production after exposure to halogenated pyrimidines indicates the existence of mechanisms that regulate the induction or intracellular expression of endogenous MuLV.

Animals

Transfer of specificity by murine alpha and beta T-cell receptor genes.

T-cell receptor alpha- and beta-chain genes were isolated from a class I major histocompatibility complex-restricted cytotoxic T-cell clone and transferred by protoplast fusion into another cytolytic T-cell clone of different specificity. Expression of the transfected alpha and beta genes endowed the recipient cell with the specificity of the donor cell.

Alleles