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Biomedical subjects

C A MacArthur

Publications and source records attributed to C A MacArthur.

30 records · Page 2Linked to original sources

Targeted mutagenesis of the transcription factor GATA-4 gene in mouse embryonic stem cells disrupts visceral endoderm differentiation in vitro.

Transcription factor GATA-4 belongs to a family of zinc finger proteins involved in lineage determination. GATA-4 is first expressed in yolk sac endoderm of the developing mouse and later in cardiac tissue, gut epithelium and gonads. To delineate the role of this transcription factor in differentiation and early development, we studied embryoid bodies derived from mouse embryonic stem (ES) cells in which both copies of the Gata-4 gene were disrupted. Light and electron microscopy demonstrated that embryoid bodies formed from wild-type and heterozygous deficient ES cells were covered with a layer of visceral yolk sac endoderm, whereas no yolk sac endoderm was evident on the surface of the homozygous deficient embryoid bodies. Independently selected homozygous deficient cell lines displayed this distinctive phenotype, suggesting that it was not an artifact of clonal variation. Biochemical markers of visceral endoderm formation, such as alpha-feto-protein, hepatocyte nuclear factor-4 and binding sites for Dolichos biflorus agglutinin, were absent from the homozygous deficient embryoid bodies. Examination of other differentiation markers in the mutant embryoid bodies, studies of ES cell-derived teratocarcinomas and chimeric mouse analysis demonstrated that GATA-4-deficient ES cells have the capacity to differentiate along other lineages. We conclude that, under in vitro conditions, disruption of the Gata-4 gene results in a specific block in visceral endoderm formation. These homozygous deficient cells should yield insights into the regulation of yolk sac endoderm development and the factors expressed by visceral endoderm that influence differentiation of adjoining ectoderm/mesoderm.

Animals↗

FGF-8 isoforms differ in NIH3T3 cell transforming potential.

We previously identified Fgf-8 as a frequently activated gene in tumors from mouse mammary tumor virus-infected Wnt-1 transgenic mice, suggesting that Fgf-8 is a proto-oncogene. We further determined that multiple, secreted protein isoforms that differ at their mature amino termini are encoded by alternatively spliced mRNAs transcribed from the gene. We now present evidence that there are differences in the potency of NIH3T3 cell transformation displayed by three of the FGF (fibroblast growth factor)-8 isoforms. We find that stable transfection of a cDNA for the FGF-8b isoform leads to marked morphological transformation of NIH3T3 cells and rapid tumorigenicity of the transfected cells in nude mice. In contrast, transfection of a cDNA for the FGF-8a or FGF-8c isoform results in moderate morphological changes in the NIH3T3 cells, and the transfected cells are weakly tumorigenic in nude mice. All three transfections result in cells that express comparable amounts of Fgf-8 mRNA and that produce the FGF-8 protein isoforms. The morphological changes observed in NIH3T3 cells can be reproduced by the addition of recombinant FGF-8 protein isoforms to the culture medium. Therefore, these results indicate that there are differences in the potency of transformation of NIH3T3 cells by FGF-8 protein isoforms and suggest that these FGF-8 isoforms may have different in vivo functions.

3T3 Cells↗

Pediatric renal cell carcinoma: a complete response to recombinant interleukin-2 in a child with metastatic disease at diagnosis.

Renal cell carcinoma is a rare pediatric malignancy that appears to have a similar clinical outcome in children and adults. We review the experience of Childrens Hospital Los Angeles and compare it with the published pediatric series, reporting on seven cases from 1954 to the present. As in earlier pediatric series, we find that Stage I/II patients do well (five of five complete responses with prolonged disease-free survival) with surgical resection. As in other pediatric series, our only Stage III patient died of disease. We also report on a recent case of renal cell carcinoma, metastatic to lymph nodes and lung parenchyma at diagnosis (Stage IV). This patient was treated with high dose continuous infusion recombinant interleukin-2 and had a partial response. The patient attained a complete response following a second laparotomy and two subsequent cycles of recombinant interleukin-2. He is presently well, without evidence of disease, 3 1/2 years after diagnosis. The significance of this form of therapy to advanced renal cell carcinoma in childhood is discussed.

Adolescent↗

Fgf-8 expression in the post-gastrulation mouse suggests roles in the development of the face, limbs and central nervous system.

Fgf-8 is a member of the fibroblast growth factor (FGF) family that was initially identified as an androgen-inducible growth factor in a mammary carcinoma cell line. Alternative splicing of the primary Fgf-8 transcript results in three messenger RNAs which code for secreted FGF-8 protein isoforms that differ only in their mature amino termini. Fgf-8 RNA is present from day 10 through 12 of murine gestation when analyzed by northern blot analysis, suggesting that Fgf-8 normally functions during post-gastrulation development. To characterize the temporal, spatial and isoform-specific aspects of Fgf-8 expression during mouse development, we performed in situ hybridization and ribonuclease protection assays between the days 8 and 16 of gestation. Fgf-8 expression is first detected at day 9 of gestation in the surface ectoderm of the first branchial arches, the frontonasal process, the forebrain and the midbrain-hindbrain junction. At days 10-12 of gestation, Fgf-8 expression is detected in the surface ectoderm of the forelimb and hindlimb buds, in the nasal pits and nasopharynx, in the infundibulum and in the telencephalon, diencephalon and metencephalon. Fgf-8 expression continues in the developing hindlimbs through day 13 of gestation but is undetectable thereafter. Ribonuclease protection assays reveal that RNAs coding for all three FGF-8 isoforms are present at days 10-12 of gestation. These results reveal a unique temporal and spatial pattern of Fgf-8 expression in the developing mouse and suggest a role for this FGF in multiple regions of ectodermal differentiation in the post-gastrulation mouse embryo.

Animals↗

Mouse mammary tumor virus infection accelerates mammary carcinogenesis in Wnt-1 transgenic mice by insertional activation of int-2/Fgf-3 and hst/Fgf-4.

Transgenic mice carrying the Wnt-1 protooncogene modified for expression in mammary epithelial cells exhibit hyperplastic mammary glands and stochastically develop mammary carcinomas, suggesting that additional events are necessary for tumorigenesis. To induce such events and to identify the genes involved, we have infected Wnt-1 transgenic mice with mouse mammary tumor virus (MMTV), intending to insertionally activate, and thereby molecularly tag, cooperating protooncogenes. Infection of breeding female Wnt-1 transgenics decreased the average age at which tumors appeared from approximately 4 months to approximately 2.5 months and increased the average number of primary tumors per mouse from 1-2 to > 5. A smaller effect was observed in virgin females, and infection of transgenic males showed no significant effect on tumor latency. More than half of the tumors from the infected breeding group contained one or more newly acquired MMTV proviruses in a pattern suggesting that most cells in tumors arose from a single infected cell. Analyses of provirus-containing tumors for induced or altered expression of int-2/Fgf-3, hst/Fgf-4, int-3, and Wnt-3 showed activation of int-2 in 39% of tumors, hst in 3%, and both int-2 and hst in 3%. DNA analyses with probes for protooncogenes and MMTV confirmed that the activations resulted from proviral insertions. There was no evidence for proviral insertions at the int-3, Wnt-3, or Wnt-1 loci. These findings provide further evidence that fibroblast growth factors Int-2 and Hst can cooperate with Wnt-1, another secreted factor, in mammary tumorigenesis, and they illustrate the capacity of this system to identify cooperating oncogenes.

Animals↗

Knowledge of writing and the composing process, attitude toward writing, and self-efficacy for students with and without learning disabilities.

Twenty-nine seventh- and eighth-grade (21 males and 8 females) and 10 fourth- and fifth-grade (7 males and 3 females) students with learning disabilities, as well as 18 seventh- and eighth-grade (14 males and 4 females) and 11 fourth- and fifth-grade (7 males and 4 females) normally achieving students, were administered an interview designed to assess their knowledge of writing and the composing process, attitude toward writing, and self-efficacy as a writer. Students with learning disabilities were found to have less mature conceptualizations of writing than their normally achieving counterparts. Furthermore, while students with learning disabilities were generally positive about writing, they viewed it less favorably than their regular classmates. Finally, there were no differences between the two groups of students in their evaluations of their competence in either writing or carrying out the processes underlying effective composing.

Adolescent↗

Different types of hypersensitive sites in the mouse metallothionein gene region.

We have examined the chromatin structure of the metallothionein (MT) gene region in MT- S49 mouse lymphoma cells and in derivatives which express MT-I alone, MT-II alone, or both genes. In all lines, these genes are contained in a 16-kilobase pair region between two DNase I sensitive sites: one site located 5.3 kilobase pairs 5' of MT-II (the 5' gene) is present in naked DNA and retained in the chromatin of all lines; the other site located 3.1 kilobase pairs 3' of MT-I is hypersensitive. Hypersensitivity at three other sites is dependent on the expression of MT genes. Two sites 5' of MT-II disappear, and a site 3' of MT-I appears regardless of which gene is activated. The fact that these sites respond when either gene is activated suggests that the regulation of the two genes is interdependent and that the region undergoes a general change in conformation with MT activation. In addition, a single site in the 5' region of MT-II becomes hypersensitive with activation of the gene and may be related directly to expression.

Animals↗

Coordinate activation and regulation of quiescent metallothionein I and II genes in carcinogen-treated mouse thymic lymphoma cells.

Mouse thymus and some thymus-derived cell lines do not normally express metallothioneins (MTs), but these genes can be activated in at least one line (S49) by treatment with carcinogens. Almost half of cells converted to MT expression by carcinogens co-express both MT-I and MT-II, and levels of steady-state RNA from those activated genes are coordinately regulated by Cd. Nuclear transcription studies demonstrate that gene activation and regulation occurs at the level of transcription. Demethylation occurs 5' to each gene in lines expressing MTs. We detected no insertions, deletions, amplifications or rearrangements of the MT locus in lines expressing MTs.

Carcinogens↗

Genomic hypomethylation and far-5' sequence alterations are associated with carcinogen-induced activation of the hamster thymidine kinase gene.

We have investigated the mechanism of activation of an inactive but functionally intact hamster thymidine kinase (TK) gene by the chemical carcinogen N-methyl-N'-nitro-N-nitrosoguanidine. Following carcinogen treatment of TK- RJK92 Chinese hamster cells, aminopterin-resistant (HATr) colonies appeared at a frequency 50-fold higher than in untreated controls. More than 80% of these HATr variants expressed TK enzymatic activity and were divided into high- and low-activity classes. In all TK+ variants, TK expression was correlated with demethylation in the 5' region of the TK gene and the appearance a 1,400-nucleotide TK mRNA. Using high-performance liquid chromatography to measure the level of genomic methylation, we found that four of five high-activity lines demonstrated extensive genomic hypomethylation (approximately 25% of normal level) that was associated with demethylation of all TK gene copies. Restriction endonuclease analysis of 15 low-activity lines revealed four instances of sequence alterations in the far-5' region of the TK gene and one instance of a tandem low-copy amplification. In these lines, the structurally altered gene copy was demethylated. Thus, we propose that a chemical carcinogen can activate TK expression by several different mechanisms. Focal demethylation with or without gene rearrangement was associated with low TK activity, whereas demethylation throughout the genome was associated with high TK activity.

Animals↗

Chemical carcinogens induce cadmium resistance and activate metallothionein genes in cadmium sensitive S49 mouse cells.

Treatment of cadmium-sensitive (Cds) metallothionein-negative S49 mouse cells with two direct-acting chemical carcinogens (N-ethylnitrosourea or N-acetoxy-2-acetylamino-fluorene) or with u.v. radiation induced a large increase in phenotypically stable cadmium-resistant (Cdr) variants. In contrast, treatment with any of three agents which alkylate proteins (N-ethylmaleimide, iodoacetate, or phenylmethyl-sulfonyl fluoride) was without effect. Similarly, treatment with 2-acetylaminofluorene (a pre-carcinogen) or with 12-O-tetradecanoylphorbol-13-acetate (a tumor promoter) did not result in an increase in Cdr variants. Initial studies indicate that in many variants the metallothionein-I gene, the metallothionein-II gene, or both have been activated. Thus the induction of cadmium resistance in Cds cells is a potentially useful system to explore the activation of quiescent genes by carcinogens.

Acetoxyacetylaminofluorene↗