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Biomedical subjects

L Alhonen

Publications and source records attributed to L Alhonen.

66 records · Page 4Linked to original sources

Human ornithine decarboxylase(ODC)-encoding gene: cloning and expression in ODC-deficient CHO cells.

We have cloned a full-length human ornithine decarboxylase (ODC)-encoding gene from a genomic library of human myeloma cells which overproduce ODC due to a selective gene amplification. Correct expression of the cloned gene was assessed by transfecting it into a Chinese hamster ovary (CHO) cell mutant devoid of ODC activity. Transfection with a 10-kb BamHI DNA fragment of the genomic clone, conferred ODC activity to the recipient cells and relieved them of dependence on exogenous polyamines for growth. A set of 40 transformants was isolated, eight of which were further characterized. The transfected ODC gene appeared to be hypomethylated at the cytosine residues in the sequence CpG. The transfectants were all responsive to serum stimulation, but showed different levels of ODC expression depending on both copy number and integration site of the transfected ODC gene. ODC serum induction in the transfectants was sensitive to cycloheximide and polyamine additions, and the half-life of the enzyme was very short, like that in normal CHO cells. These results suggest that the human ODC gene we transfected contains all the elements needed for normal control of ODC expression.

Animals↗

Methylation of human ornithine decarboxylase gene before transfection abolishes its transient expression in Chinese hamster ovary cells.

Different methylations of cloned human ornithine decarboxylase gene with restriction methylases in vitro before transfection greatly reduced the transient expression of ODC in Chinese hamster ovary cells. Single methylation of the gene with Hpa II (CCGG) methylase decreased the transiently expressed peak activity by about 50%, single methylation with Hha I (CCGG) methylase by about 80% whilst a double methylation at both Hpa II and Hha I restriction sites virtually abolished any transiently expressed ornithine decarboxylase activity. These results together with our earlier circumventing evidence indicate that the expression of mammalian ornithine decarboxylase is critically influenced by the methylation state of the gene.

Animals↗

Characterization of difluoromethylornithine-resistant mouse and human tumour cell lines.

Four mouse and two human tumour cell lines resistant to alpha-difluoromethylornithine (DFMO), an irreversible inhibitor of ornithine decarboxylase (ODC), were analysed for the activities of polyamine-biosynthetic and -biodegradative enzymes as well as for cellular polyamine contents. In all but one of these cell lines the resistance to DFMO was based on an overproduction of ODC. In a human myeloma cell line the resistance was based on a greatly enhanced arginase activity. Except for one L1210 variant cell line, all the resistant cell lines contained elevated S-adenosylmethionine decarboxylase activity. Similarly, all the resistant mouse, but not human, cell lines displayed enhanced spermidine and spermine synthase activities. Arginase activity was detected only in human cell lines. In both DFMO-resistant cell lines the activity of arginase was strikingly elevated. Of the biodegradative enzymes, polyamine oxidase activity was readily detectable in all mouse cells, but no measurable activity was found in the human cells. Spermidine/spermine N1-acetyltransferase activity was elevated in three out of four resistant mouse cell lines. Even though the concentration of spermidine was usually lower in the overproducer cells, this was compensated by an increased content of spermine. The two resistant human myeloma cells contained intracellular ornithine concentrations that were from more than 5 to more than 20 times higher than those in the parental cells.

Acetyltransferases↗

Molecular genetics of ornithine decarboxylase in human tumor cells.

As the molecular biology of mammalian ornithine decarboxylase is coming of age, more and more interesting features of this unique protein are being uncovered. Ornithine decarboxylase belongs to those 20 or so enzymes or binding proteins, the genes for which are easily amplified under suitable selection pressure. This also applies to the human enzyme. Gene amplification of ornithine decarboxylase is not the only means to acquire resistance to inhibitors of the enzyme, as its overproduction can occur through an enhanced transcription or even through a more efficient translation of normal mRNA amounts. The resistance in human tumors can likewise be acquired by activating other enzymes, such as arginase. In contrast to the multigene family in mouse, it appears that in the human genome only two ornithine decarboxylase genes are present mapping to the chromosomes 2 and 7. Out of these, at least the sequences in the short arm of chromosome 2 are transcriptionally active and amplifiable. Human ornithine decarboxylase also belongs to those proteins which show a positive correlation between gene hypomethylation and expression. The genes of human ornithine decarboxylase are methylated to varying extents and distinct hypomethylation is seen in certain malignant cells, most notably human lymphatic leukemia cells. The human ornithine decarboxylase gene is easily transferrable into other mammalian cells in which it is efficiently expressed. Some indirect evidence seems to indicate that overproduction of ornithine decarboxylase may confer a growth advantage to mammalian cells. A further piece of information suggesting an important role for the enzyme is the fact that the structure of the ornithine decarboxylase gene is extremely well conserved during evolution. This does not apply only to the coding region but also to the overall organization of the gene itself.

Animals↗

Overproduction of ornithine decarboxylase confers an apparent growth advantage to mouse tumor cells.

We have selected mouse myeloma and leukemia cell lines overproducing ornithine decarboxylase (ODC) under the pressure of alpha-difluoromethylornithine (DFMO), a mechanism-based inhibitor of the enzyme. Two of the tumor cell variants overproduced ODC by virtue of an amplification of transcriptionally active ODC genes. In one case the overproduction of the enzyme was based on an enhanced transcription of the enzyme's message at normal gene copy number. The DFMO-resistant cells exhibited ODC activity that was 8 to 25 times higher than the enzyme activity in the parental cells. When plated into soft agar, the parental mouse myeloma cells failed to form any colonies, whereas the ODC overproducing variant cells grew soft agar at a plating efficiency of about 16%. The difference between parental and ODC overproducing cells was even more striking in case of mouse leukemia L1210 cells. The parental L1210 cell formed colonies in soft agar at an efficiency of 1.9% while two overproducer variant cell lines formed colonies at up to 60% plating efficiency. These results clearly indicate that an overproduction of ODC offers a distinct growth advantage to tumor cells.

Adenosylmethionine Decarboxylase↗

Hypomethylation of ornithine decarboxylase gene and erb-A1 oncogene in human chronic lymphatic leukemia.

The methylation state of CCGG sites in and around the human ornithine decarboxylase gene, oncogenes c-myc and erb-A1, and actin genes were determined in human malignant leucocytes from patients with acute and chronic myeloid leukemia, chronic lymphatic leukemia, polycythemia vera, and multiple myeloma by means of isoschizomeric restriction endonuclease analysis. When compared with DNA from leucocytes of healthy controls, the ornithine decarboxylase and erb-A1 genes were substantially hypomethylated in all samples obtained from patients with chronic lymphatic leukemia. Hypomethylation of genes, particularly growth-related sequences, might be a crucial fact in the malignant transformation of human leucocytes. Its relatively simple detection from blood samples may prove clinically applicable in monitoring patients with chronic lymphatic leukemia.

B-Lymphocytes↗

[New oxaanalogues of spermine].

A new isosteric charge-deficient spermine analogue, 1,12-diamino-4,9-diaza-5-oxadodecan, and O-(7-amino-4-azaheptyl)oxime of 3-aminopropanal, a stable analogue of the Schiff base intermediate in the enzymatic oxidation of spermine, were synthesized. The possible use of these compounds for the inhibition of spermine oxidase is discussed.

Magnetic Resonance Spectroscopy↗

[A new synthesis of alpha-methylspermidine].

A five-step synthesis of alpha-methylspermidine (1,8-diamino-5-azanonane), the first polyamine analogue preventing pathological consequences of spermidine depletion in transgenic rats overproducing spermine/spermidine N'-acetyltransferase, from ethyl 3-aminobutyrate was achieved in a high overall yield.

Animals↗

Human spermidine synthase gene: structure and chromosomal localization.

The human spermidine synthase (EC 2.5.1.16) gene was isolated from a genomic library constructed with DNA obtained from a human immunoglobulin G (IgG) myeloma cell line. Subsequent sequence analyses revealed that the gene comprised of 5,818 nucleotides from the cap site to the last A of the putative polyadenylation signal with 8 exons and 7 intervening sequences. The 5'-flanking region of the gene was extremely GC rich, lacking any TATA box but containing CCAAT consensus sequences. No perfect consensus sequence for the cAMP-responsive element for the AP-1 binding site was found, yet the gene contained seven AP-2 binding site consensus sequences. The putative polyadenylation signal was an unusual AATACA instead of AATAAA. Polymerase chain reaction analysis with DNA obtained from human x hamster somatic cell hybrids indicated that human spermidine synthase genomic sequences segregate with human chromosome 1. Transfection of the genomic clone into Chinese hamster ovary cells displaying a low endogenous spermidine synthase activity revealed that the gene was transiently expressed and hence in all likelihood represents a functional gene.

Animals↗