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M Meuth

Publications and source records attributed to M Meuth.

At least 19 recordsLinked to original sources

The influence of a (GT)29 microsatellite sequence on homologous recombination in the hamster adenine phosphoribosyltransferase gene.

Several DNA sequence elements are thought to stimulate homologous recombination, illegitimate recombination, or both in mammalian cells. Some are implicated by their recurrence around rearrangement breakpoints, others by their effects on recombination of extrachromosomal plasmids. None of these sequences, however, has been tested on the chromosome in a defined context. In this paper we show how the adenine phosphoribosyltransferase locus in CHO cells can be used to study the recombinogenic potential of defined DNA sequences. As an example we have measured the effect on homologous recombination of a dinucleotide repeat, (GT)29, which has been shown to stimulate homologous recombination in extrachromosomal vectors 3-20 fold. On the chromosome at the adenine phosphoribosyltransferase locus, however, this sequence shows no capacity to stimulate recombination or to influence the distribution of recombination events.

Adenine Phosphoribosyltransferase

Response of colon cancer cell lines to the introduction of APC, a colon-specific tumor suppressor gene.

The APC gene, mutations in which are responsible for the inherited colon cancer syndrome adenomatous polyposis coli (APC), is described as a tumor suppressor gene. A full-length, wild-type APC gene was introduced by transfection into three human colon carcinoma cell lines, each characterized for mutations at loci involved in colon tumor formation. The response of each cell line to the introduction of APC differed with the genotype of the cell line. Some of the cell clones derived from these transfections displayed altered morphologies; some showed suppression of tumorigenicity based on growth in soft agar and tumor formation in nude mice. One cell line, SW480, could not be stably transfected with the APC gene. These results provide the first direct evidence that the APC gene can alter the transformation properties of colon carcinoma cells.

Animals

Deletion mapping of highly conserved transcribed sequence downstream from APRT locus.

To investigate the nature of DNA sequence rearrangements occurring in a highly malignant human colorectal carcinoma cell line (SW620) exhibiting a high level of chromosome instability, we characterized the molecular basis of deletions eliminating APRT. Deletions in SW620 resembled those in a variety of cell lines. They were joined at regions of little similarity through mono-, di-, or trinucleotide repeats. Breakpoint regions were rich in di- and trinucleotide repeats that might constitute pause sites for the replication complex. Deletions ranged in size from 1.8 to approximately 70 kb and were "directional" in that they eliminated sequences upstream of APRT but not downstream. Analysis of downstream sequences suggested that this pattern of deletion was due to the presence of another gene. Transcripts from these two genes converged but did not overlap. Given that this gene was not deleted in any hamster or human mutants, it appears essential for cell viability. This organization has important consequences for the pattern of mutation and repair of this region.

Adenine Phosphoribosyltransferase

Molecular analysis of mutations in mutator colorectal carcinoma cell lines.

The nature of mutations occurring in two colorectal carcinoma cell lines deficient in mismatch repair and displaying mutator phenotypes was determined. One of the lines (HCT116) exhibited a higher level of microsatellite instability than the second (DLD-1), although the rate of mutation at the selectable locus encoding the purine salvage enzyme hypoxanthine guanine phosphoribosyl transferase (HPRT) was equally elevated (about 350-450-fold relative to mismatch repair proficient cell lines). Transitions were the major class of mutations in the two mutator lines. In DLD-1 these mutations recurred at several sites that appeared to be hotspots. Frameshifts at a run of six guanine residues in the coding sequence for HPRT constituted 35% of mutations in HCT116. These frameshifts were highly unstable and reverted to wild type at high frequency. Larger deletions were also detected in HCT116. Although these deletions constituted a small proportion of mutations compared with the other types, our data suggest that the rate of deletion is elevated relative to mismatch repair proficient (hMLH1+) cell lines. These observations suggest that the gene(s) altered in DLD-1 may preferentially affect the repair of base mismatches while the alteration(s) in HCT116 may affect the repair of both mismatches and frameshifts.

Base Sequence

Mutator phenotypes in human colorectal carcinoma cell lines.

Recent studies have revealed that tumors in patients with hereditary nonpolyposis colon cancer are associated with high-frequency alterations of microsatellite sequences. To investigate the mechanisms and consequences of this form of genetic instability, we identified three colorectal carcinoma cell lines that express dinucleotide-repeat instability like that found in hereditary nonpolyposis colon cancer tumors and show increased rates of spontaneous mutation at selectable loci. However, the pattern of hypermutation in these cell lines differed significantly. In one line (HCT116), microsatellite mutations occurred at a remarkably high rate (approximately 10(-2) mutations per cell per generation), whereas this rate was considerably lower in the two other lines (DLD-1 and HCT15). The rate of mutation at the locus encoding hypoxanthine guanine phosphoribosyltransferase was substantially elevated (200- to 600-fold) in all three tumor cell lines, yet the types of mutations arising differed. A specific frame-shift hotspot accounted for 24% of hypoxanthine guanine phosphoribosyltransferase mutations in HCT116. The frequency of mutations at this site was reduced significantly in DLD-1 and HCT15 lines. These data suggest that the mutatw phenotypes in the colorectal carcinoma cell lines could be the consequence of mutator genes affecting different repair or error-avoidance pathways.

Cell Line

Molecular characterization of multilocus deletions at a diploid locus in CHO cells: association with an intracisternal-A particle gene.

The nature of multilocus deletions eliminating the adenine phosphoribosyltransferase (aprt) gene was analyzed in a CHO cell strain heterozygous for this locus. These deletions arose at a high frequency, spanning an estimated average length of 4250 kb. To detect breakpoints participating in their formation, a 200-kb region surrounding aprt was screened for novel fragments. Seven novel fragments were detected, five of which were clustered around the aprt gene itself. Despite the existence of at least eight Alu-equivalent repeats in this region, no breakpoints fell within these elements. Two deletions were characterized in more detail by cloning and sequencing their junction fragments. The novel DNA detected at one junction was unique, whereas that situated at the junction of the other deletion was of a repetitive nature, consisting of a truncated intracisternal-A particle gene. The contrasting nature of these junctions may imply that multilocus deletions of aprt can occur by one of several mechanisms.

Animals

Resistance to cytosine arabinoside in acute leukemia: the significance of mutations in CTP synthetase.

The molecular events which confer cellular resistance to cytotoxic drugs such as cytosine arabinoside (ara-C) are poorly understood. Nevertheless, in a proportion of patients with acute leukemia, such events will be responsible for the failure of therapy. Mutations which cause ara-C resistance in a chinese hamster ovary (CHO) cell model have been identified as regulatory base substitutions, occurring in specific sites of the gene coding for an enzyme critical in pyrimidine metabolism, CTP synthetase (CTPs). These cells have elevated dCTP pools, a feature common to biochemical studies of other ara-C resistant leukemic cells. A 94% homology exists between the hamster and human ctps genes. In this study, similar mutations were sought in samples taken from 36 patients, with recurrent or resistant acute leukemia. No mutations were identified in the regions indicated by the CHO model using techniques capable of detecting mutations only if present in more than 10% of the cells studied. Thus, mutations in these sites within the human ctps gene do not appear to be a major mechanism of resistance to ara-C in acute leukemia. Further studies should be directed towards developing more sensitive methods of detection, and these then applied both to CTPs and to other enzymes involved in pyrimidine metabolism.

Acute Disease

Clustered base substitutions in CTP synthetase conferring drug resistance in Chinese hamster ovary cells.

Dominantly acting mutations that eliminate the allosteric regulation of CTP synthetase confer a form of multidrug resistance and a mutator phenotype to cultured Chinese hamster ovary cells. Mutations responsible for this phenotype have been identified in 23 independent strains selected for resistance to arabinosyl cytosine and 5-fluorouracil. All these mutations were due to base substitutions at seven sites within a highly conserved region of the ctps gene. This clustering should make it feasible to assess the role of such mutations in the development of drug resistance encountered in the treatment of malignant disease.

Animals

High rate of multilocus deletion in a human tumor cell line.

The nature of recessive mutations at the autosomal locus encoding the purine salvage enzyme adenine phosphoribosyl transferase (APRT) was analyzed in a highly malignant human tumor cell line (the colorectal carcinoma line SW620). Mutant strains resistant to the purine analog 8-azaadenine were obtained in two steps. The first step selection for partial drug resistance produced strains hemizygous for APRT as a result of high frequency loss of one allele. In the second step selection, low frequency base substitutions, small deletions, or insertions produced complete azaadenine resistance. Luria-Delbruck fluctuation analysis of each step of this process indicated that the rate of mutation resulting from allele loss was over 100-fold greater than the rate of mutation resulting from base substitution. There was no reproducible difference in the rate of loss of either of the two APRT alleles even though one maps to a rearranged chromosome. Similarly base substitution rates for the two alleles were not significantly different. Polymorphic loci surrounding APRT on chromosome 16 band q24 were lost together with the selected gene in all isolates while polymorphic loci on the short arm of the chromosome were retained. Thus the high frequency loss of APRT in SW620 appears to be the result of multilocus deletions. SW620 derivatives behaving as heterozygotes were also obtained in the first step selections, but these constituted only 5% of isolates.

Adenine

Expression of the endogenous O6-methylguanine-DNA-methyltransferase protects Chinese hamster ovary cells from spontaneous G:C to A:T transitions.

We have investigated whether the presence of a DNA repair enzyme, O6-methylguanine-DNA-methyltransferase (MGMT), affects the nature of spontaneous mutations in a mammalian cell line. We compared spontaneous mutations in the adenine phosphoribosyl transferase gene of a Chinese hamster ovary (CHO) cell line that expressed 14,000 MGMT molecules/cell with those in the parental CHO cells lacking this DNA repair activity. The mutation rate/cell/generation of the two CHO cell lines did not differ significantly. However, DNA sequence analysis of spontaneous mutations in the MGMT-proficient CHO cell line revealed a complex picture. No significant difference from the parental CHO cells was found in the number or type of deletions, frameshifts, multiple substitutions, or insertions. The frequency of G:C to T:A transversions was elevated in MGMT-proficient CHO cells. Expression of the enzyme considerably reduced G:C to A:T transitions (25% versus 8.3%). This latter result is the first evidence that this protein is active on an endogenous source of O6-methylguanine that is normally responsible for spontaneous G:C to A:T transition mutations.

Adenine Phosphoribosyltransferase

Chromosome mapping of the human cytidine-5'-triphosphate synthetase (CTPS) gene to band 1p34.1-p34.3 by fluorescence in situ hybridization.

The human cytidine-5'-triphosphate synthetase (CTPS) gene was mapped by a direct mapping system combined with fluorescence in situ hybridization and replicated prometaphase R-bands. By high-resolution banding analysis, the signals were localized to band 34.1-34.3 of the short arm of chromosome 1; 1p34.1-p34.3. Simple procedures for the detection of R-bands are described.

Carbon-Nitrogen Ligases

Genomic organization and chromosomal localization of the human CTP synthetase gene (CTPS).

To elucidate the organization of the human genomic sequences encoding CTP synthetase (CTPS), fragments homologous to the cDNA were isolated from genomic lambda libraries. The fragments cloned were overlapping and cover over 40 kb. Cotransfection of the DNAs into CTPS-deficient, cytidine-requiring CHO mutants can transform them to cytidine-independent growth, indicating that the complete structural gene has been isolated. Direct sequencing and enzymatic amplification of the cloned genomic fragments revealed that the coding sequences are distributed to 19 exons covering about 35 kb. Multiple transcriptional start sites were detected by primer extension in a G + C-rich 5' flanking sequence that is separated from the translational start by an approximately 3-kb intron. A panel of human-rodent somatic cell hybrids and the CTPS cDNA were used to assign the structural gene to the short arm of human chromosome 1. This assignment was further refined through the use of somatic cell hybrids bearing fragments of the short arm of the chromosome, allowing localization to 1p36.11-p31, a region notable for its disruption in many types of tumors.

Animals

Multiple dispersed spontaneous mutations: a novel pathway of mutation in a malignant human cell line.

We analyzed the nature of spontaneous mutations at the autosomal locus coding for adenine phosphoribosyltransferase in the human colorectal carcinoma cell line SW620 to establish whether distinctive mutational pathways exist that might underlie the more complex genome rearrangements arising in tumor cells. Point mutations occur at a low rate in aprt hemizygotes derived from SW620, largely as a result of base substitutions at G.C base pairs to yield transversions and transitions. However, a novel pathway is evident in the form of multiple dispersed mutations in which two errors, separated by as much as 1,800 bp, fall in the same mutant gene. Such mutations could be the result of error-prone DNA synthesis occurring during normal replication or during long-patch excision-repair of spontaneously arising DNA lesions. This process could also contribute to the chromosomal instability evident in these tumor cells.

Adenine Phosphoribosyltransferase

Molecular cloning of the human CTP synthetase gene by functional complementation with purified human metaphase chromosomes.

Successive rounds of chromosome-mediated gene transfer were used to complement a hamster cytidine auxotroph deficient in CTP synthetase activity and eventually to clone human genomic and cDNA fragments coding for the structural gene. Our approach was to isolate human Alu+ fragments from a tertiary transfectant and to utilize these fragments to screen a panel of primary transfectants. In this manner two DNA fragments, both mapping within the structural gene, were identified and used to clone a partial length cDNA. The remaining portion of the open reading frame was obtained through the RACE polymerase chain reaction technique. The open reading frame encodes 591 amino acids having a striking degree of similarity to the Escherichia coli structural gene (48% identical amino acids with 76% overall similarity including conservative substitutions) with the glutamine amide transfer domain being particularly conserved. As regulatory mutations of CTP synthetase confer both multi-drug resistance to agents widely used in cancer chemotherapy and a mutator phenotype, the cloning of the structural gene will be important in assessing the relevance of such phenotypes to the development of cellular drug resistance.

Amino Acid Sequence

DNA sequence analysis of gamma radiation-induced deletions and insertions at the APRT locus of hamster cells.

Gamma radiation-induced gene rearrangements at the Chinese hamster ovary cell locus coding for the purine salvage enzyme adenine phosphoribosyl transferase (APRT) consist of both simple deletions and more complex alterations that are presumably the result of multiple strand breaks. To characterize these mutations at the DNA sequence level, fragments altered by deletion and insertion mutations were obtained by cloning in lambda phage vectors or by using the polymerase chain reaction. The radiation-induced deletions characterized here eliminate 3-4 kb and have at least one breakpoint in an AT-rich region or near short direct or inverted repeats. Insertions involve small fragments (102 and 456 bp) of repetitive DNA that appear to be related to B2 (short interspersed repetitive) and long interspersed repeat families. The novel fragments bear little resemblance to each other or to sequences at the integration sites, and their introduction is accompanied by a small target site deletion.

Adenine Phosphoribosyltransferase

Increased rate of base substitution in a hamster mutator strain obtained during serial selection for gene amplification.

The pattern of mutations produced by a mutator gene (obtained during serial selection for amplification of the dihydrofolate reductase [dhfr] locus) shows a pronounced shift from that found in wild-type cells. The rate of certain types of base substitutions (particularly transitions) is dramatically increased, while gene rearrangements constitute a lower proportion of mutations. These data suggest a lower fidelity of the replication process in the mutator strain.

Animals