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Overexpression of proline oxidase induces proline-dependent and mitochondria-mediated apoptosis.

Proline oxidase (POX), a mitochondrial inner-membrane protein, catalyzes the rate-limiting oxidation of proline to pyrroline- 5-carboxylate (P5C). Previously we showed that overexpression of POX is associated with generation of reactive oxygen species (ROS) and apoptosis in POX-inducible colorectal cancer cells, DLD-1.POX. We also showed expression of mitochondrial MnSOD partially blunts POX-induced ROS generation and apoptosis. To further investigate the molecular basis of POX-induced apoptosis, we utilized the DLD-1.POX cells to show that cells overproducing POX exhibit an L-proline-dependent apoptotic response. The apoptotic effect is specific for L-proline, detectable at 0.2 mM, maximal at 1 mM, and occurs during 48-72 h following the addition of L-proline to cells with maximally induced POX. The apoptotic response is mitochondria-mediated with release of cytochrome c, activation of caspase-9, chromatin condensation/DNA fragmentation, and cell shrinkage. We conclude that in the presence of proline, high POX activity is sufficient to induce mitochondria-mediated apoptosis.

Apoptosis↗

Association of hyperprolinaemia type I and heparin cofactor II deficiency with CATCH 22 syndrome: evidence for a contiguous gene syndrome locating the proline oxidase gene.

Increased proline levels were found in plasma of a girl with slight psychomotor retardation, epilepsy, obesity, scoliosis, hypocalcaemia, variable lymphocytopenia and facial dysmorphy suggestive of CATCH 22 syndrome. Fluorescence in situ hybridization indicated the presence of a submicroscopic 22q11 deletion, confirming this diagnosis. Further investigation showed evidence that the patient was heterozygous for heparin cofactor II deficiency and for hyperprolinaemia type I, a proline catabolic disorder due to proline oxidase deficiency. This association extends the CATCH 22 syndrome and suggests that expression of the proline oxidase gene depends on the chromosome 22q11 region.

Abnormalities, Multiple↗

Cloning and expression in Escherichia coli of a gene encoding proline oxidase of Serratia marcescens.

Proline plays a central role in the biosynthesis of prodigiosin by Serratia marcescens. Proline catabolism takes place by oxidation catalysed by the enzyme proline oxidase encoded by the gene putA. A gene bank of chromosomal DNA from S. marcescens was constructed using the plasmid vector pBR328, and then recombinant DNA was used in transformation experiments with Escherichia coli HB 101 as recipient strain. One of the recombinant plasmids, pSL001, was encoded for proline oxidase. Subcloning experiments led to a second plasmid pSL008 able to maintain proline oxidase activity.

Cloning, Molecular↗

The p53-induced gene-6 (proline oxidase) mediates apoptosis through a calcineurin-dependent pathway.

Proline oxidase is a p53-induced redox gene that can generate reactive oxygen species (ROS) and mediate apoptosis in tumor cells. We report that proline oxidase is a downstream effector in p53-mediated activation of the calcium/calmodulin-dependent phosphatase calcineurin in lung, renal, colon, and ovarian carcinoma cells. The activation of calcineurin by p53 and proline oxidase was detected by activation of the nuclear factor of activated T cells (NFAT), an established indicator of activated calcineurin. Both proline oxidase- and p53-induced activation of NFAT were sensitive to the calcineurin inhibitors cyclosporin A and FK-506, to scavengers of ROS, and to inhibitors of calcium mobilization. A proline oxidase antisense vector suppressed the ability of p53 to up-regulate proline oxidase, activate calcineurin, and induce apoptosis. Moreover, two renal carcinoma-derived mutant p53 proteins were deficient in inducing proline oxidase expression and in activating calcineurin. Inhibitors of calcineurin and calcium mobilization abolished proline oxidase-mediated apoptosis and reduced p53-induced apoptosis. Treatment of colon and ovarian carcinoma cells with the anticancer genotoxic agent etoposide up-regulated both p53 and proline oxidase, activated calcineurin, and induced apoptosis. The etoposide-mediated activation of calcineurin and induction of apoptosis was markedly suppressed by FK-506 calcineurin inhibitor. We propose that proline oxidase mediates apoptosis through the generation of proline-dependent ROS, which then mobilize calcium and activate calcineurin. The activation of calcineurin-regulated transcription factor pathways by proline oxidase might affect gene expression events important to p53 regulation of cell growth and apoptosis.

Apoptosis↗

Proline oxidase in cultured mammalian cells.

We sought a cultured cell line with Proline Oxidase activity to study the regulation and physiologic role of the enzyme in mammalian tissues. Among the cell lines tested, only LLC-RK1 cells, derived from rabbit kidney, had significant Proline Oxidase activity; the Km for proline of the enzyme from these cells was similar to that for the liver enzyme. LLC cells, Proline Oxidase positive, were able to convert proline to CO2. In contrast, CHL cells, Proline Oxidase negative, did not have this capability. The presence of Proline Oxidase in LLC cells and the absence of the enzyme in fibroblasts suggest that Proline Oxidase may serve as a marker enzyme for distinguishing parenchymal kidney cells from fibroblasts in culture. Cells transformed by SV40 virus and cells transformed by methylcholanthrene had activities higher that the parent cell line, but this effect of transformation could not be generalized to all transformed cells. Finally, L-hydroxy proline at 100-fold greater concentration than substrate L-proline failed to decrease proline oxidation. This finding suggests distinct degradative enzymes for these two amino acids.

Animals↗

Proline oxidase induces apoptosis in tumor cells, and its expression is frequently absent or reduced in renal carcinomas.

Proline oxidase is a p53-induced gene that can mediate apoptosis in lung carcinoma cells. Here, we provide evidence implicating a role for proline oxidase in renal carcinoma. We observed absent or reduced expression of proline oxidase in 8 of 12 primary renal cell carcinomas, with respect to their normal tissue counterparts. Two renal cell carcinomas, which displayed little or no expression of proline oxidase, expressed p53s that were less capable of inducing proline oxidase than p53 isolated from normal renal tissue. One of those tumor-derived p53s contained a double transition mutation at amino acid residues 125 (Ala to Thr) and 193 (Arg to His), and the other exhibited a single transition mutation at amino acid 149 (Ser to Phe). Forced up-regulation of proline oxidase induced the formation of reactive oxygen species and mediated apoptosis in the 786-0 renal cell carcinoma cell line. A proline oxidase antisense vector repressed p53-induced up-regulation of proline oxidase, release of cytochrome c from mitochondria, and apoptosis in 786-0 renal carcinoma cells. Taken together, these findings support a role for proline oxidase as a downstream effector in p53-mediated apoptosis. We hypothesize that its altered expression can contribute to the development of renal carcinomas. The presence of proline oxidase in mitochondria, a primary organelle that regulates apoptosis, places this molecule in a subcellular localization that can directly influence the apoptotic pathway and thus tumorigenesis.

Alanine↗

Proline Oxidase and Water Stress-induced Proline Accumulation in Spinach Leaves.

Spinach (Spinacia oleracea L.) leaf discs accumulated free proline when exposed to polyethylene glycol solutions of water potential less than -10 bars. At -20 bars, the accumulation was 11 micromoles per gram original fresh weight in a 24-hour period.When the leaf organelles were separated on a sucrose gradient, a proline oxidase was detected in the mitochondrial fraction. Isolated mitochondria were used for the study of the properties of the enzyme which was assayed by both oxygen uptake measurement and reduction of 2,6-dichlorophenol-indophenol in the presence of phenazine methosulfate. There was a stoichiometry of one-half mole of oxygen uptake per mole of Delta(1)-pyrroline-5-carboxylate production in the enzymic reaction. The enzyme had an optimal activity at pH 8.0 to 8.5 and an apparent K(m) value of 0.028 molar for proline. MgCl(2) and flavin adenine dinucleotide were required for maximal activity. Addition of sucrose, mannitol, or polyethylene glycol to reduce the water potential of the reaction mixture to as low as -20 bars resulted in little inhibition. The enzyme preparation was unable to reduce NAD to NADH, and NAD did not inhibit the enzyme activity. The enzyme preparation reduced cytochrome c in the presence of KCN. Triton X-100 at low concentration strongly inhibited the enzyme activity. The enzyme was apparently linked to the mitochondrial electron transport system. The in vitro activity of the enzyme under optimal assay conditions was high enough to prevent proline accumulation under water stress condition; presumably this activity was restrained in vivo.

Journal Article↗

Neurotransmitter levels and synaptic strength at the Drosophila larval neuromuscular junction are not altered by mutation in the sluggish-A gene, which encodes proline oxidase and affects adult locomotion.

The sluggish-A (slgA) gene of Drosophila melanogaster has been shown to encode for the enzyme proline oxidase, a mitochondrial enzyme which catalyzes the first step in the conversion of L-proline to L-glutamate. The slgA transcript is expressed in both larval and adult Drosophila melanogaster. Mutations in this gene lead to reduced proline oxidase activity and an elevation of free proline levels. Adult mutant flies show a striking reduction of motor activity. Since proline oxidase may contribute to the supply of the neurotransmitter glutamate in the nervous system, a reduction in proline oxidase activity could reduce neural glutamate pools and affect synaptic transmission in neurons utilizing glutamate as a transmitter, including peripheral motor neurons. We tested the hypothesis that glutamate, and synaptic transmission mediated by glutamate, are reduced at synapses of glutamatergic motor neurons in slgA mutants. Levels of glutamate and proline in different cell compartments, and functional properties of synaptic transmission were compared in slgA and control specimens. Proline is elevated in muscle cells of slgA mutants, indicating that the slgA gene regulates tissue proline levels. In nerve terminal varicosities, proline levels were low in both mutants and controls. Glutamate levels in nerve terminal varicosities of slgA mutants and controls were similar. In addition, we found that glutamatergic synaptic transmission at individual nerve endings and at the whole-cell level was similar in slgA mutants and controls. Thus, proline oxidase does not play a major role in generating neuronal glutamate pools at the Drosophila larval neuromuscular junction, and larval neuromuscular performance is not altered significantly in slgA mutants. Metabolic pathways other than that involving proline oxidase are able to sustain glutamatergic synaptic function in Drosophila larvae.

Animals↗

Pyrroline-5-carboxylate reductase and proline oxidase activity in the neonatal pig.

Recent evidence suggests that proline is an indispensible amino acid in the diet of the young pig. A dietary requirement may relate to the activity and developmental changes of the enzymes that synthesize and degrade proline. The activity of pyrroline-5-carboxylate (P5C) reductase (EC 1.5.1.2), which catalyzes the final step in proline synthesis, and proline oxidase (EC number not assigned), which catalyzes the initial step in proline degradation, were measured in four piglet tissues from birth through to the postweaning period. There were significant changes in the activity of P5C reductase with age, but the magnitude and direction of change were dependent upon age and tissue type. Compared to literature values for the rat [5.1-82.4 mumol/(min.g tissue)], the activity was low in the piglet [1.3-18.6 mumol/(min.g tissue)]. The activity of proline oxidase was low in the piglet [0-0.6 mumol/(min.g tissue)] compared to literature values for the rat [0-5.3 mumol/(min.g tissue)] and low compared to P5C reductase [1.3-18.6 mumol/(min.g tissue)], indicating that further decreases in the activity of proline oxidase would not provide the piglet with a mechanism for conserving proline if dietary supply were limiting.

Aging↗

Proline oxidase, encoded by p53-induced gene-6, catalyzes the generation of proline-dependent reactive oxygen species.

The p53-dependent initiation of apoptosis is accompanied by the induction of proline oxidase (POX), a mitochondrial enzyme catalyzing the conversion of proline to pyrroline-5-carboxylate with the concomitant transfer of electrons to cytochrome c. However, the contribution of increased POX activity to apoptosis, if any, remains unknown. Using Adriamycin to initiate p53-dependent apoptosis, we showed that the expression of POX is up-regulated in a time- and dose-dependent manner in a human colon cancer cell line (LoVo). In cells expressing POX, the addition of proline increases reactive oxygen species (ROS) generation in a concentration-dependent manner; glutamate, a downstream product of proline oxidation, had no effect. Induction of POX was dependent on the p53 status of the cell. In the conditionally immortalized murine colonic epithelial cell line YAMC, where the p53 phenotype can be modulated by temperature, proline oxidase expression and ROS production could only be induced when the cells were phenotypically p53-positive. To confirm that the observed ROS production was not secondary to some other effect of p53, we also conditionally expressed POX in a p53-negative colon cancer line. Again, we found a proline-dependent ROS increase with POX expression. We hypothesize that proline oxidation supports the generation of ROS by donating reducing potential to an electron transport chain altered either by p53-dependent mechanisms or by overexpression of POX.

Antibiotics, Antineoplastic↗

Regulation of proline oxidase activity by lactate.

We found that proline oxidase, the first enzyme of the proline degradative pathway, is inhibited by lactate. The Km of the enzyme for proline increases with increasing concentrations of lactate. Since proline can be a source for gluconeogenesis, regulation of proline degradation by lactate may serve as a mechanism for allocation of metabolic fuel sources. The marked inhibition of proline oxidase at levels of lactate that commonly occur in both genetic and acquired lactic acidosis may cause the previously unexplained hyperprolinemia seen in these metabolic disorders.

Animals↗

PROLINE OXIDASES IN HANSENULA SUBPELLICULOSA.

Ling, Chung-Mei (Illinois Institute of Technology, Chicago), and L. R. Hedrick. Proline oxidases in Hansenula subpelliculosa. J. Bacteriol. 87:1462-1470. 1964-Cells of Hansenula subpelliculosa can use l-proline as a carbon and a nitrogen source after a 6- to 8-hr induction period. However, they cannot use l-glutamate as both nitrogen and carbon sources unless the induction period is of several days' duration. Two l-proline oxidases were demonstrated in the mitochondrial preparation of this yeast. One forms the product Delta'-pyrroline-2-carboxylic acid (P2C), which is in equilibrium with alpha-keto-delta-amino-valeric acid; the other forms the product Delta'-pyrroline-5-carboxylic acid (P5C), which is in equilibrium with glutamic-gamma-semialdehyde. The first-mentioned enzyme is induced when l-proline is the carbon source; the second appears to be constitutive, and is probably associated with the use of l-proline as a nitrogen source. The P2C-forming enzyme is specific for the l isomer of proline, and is inactive against l-hydroxyproline. The enzyme activity is at its peak when the mitochondria are prepared from logarithmically grown cells, and is rapidly reduced after cells reach the stationary phase of growth. Kinetic studies with varying concentrations of substrate indicate a Michaelis-Menten constant of 2.45 x 10(-2)m. Paper chromatographic studies, chemical tests with H(2)O(2), sensitivity to freezing, and spectral measurements indicate that proline oxidase from H. subpelliculosa mitochondria forms a product from l-proline which is like, if not identical to, P2C formed by the action of sheep kidney d-proline oxidase upon dl-proline. The soluble portion of the cell extract contains NAD(+) enzymes which use either P2C (alpha-keto-delta-amino-valeric acid) or P5C (glutamic-gamma-semialdehyde) as substrates. No glutamic dehydrogenase activity could be detected when l-glutamic acid and the nicotinamide adenine dinucleotide (NAD(+)) cofactor were added to the supernatant solution with the yeast enzymes. The presence of a dehydrogenase NAD(+) enzyme for activity with P2C (alpha-keto-delta-amino-valeric acid) has not been previously reported.

Amino Acid Oxidoreductases↗

The sluggish-A gene of Drosophila melanogaster is expressed in the nervous system and encodes proline oxidase, a mitochondrial enzyme involved in glutamate biosynthesis.

Certain gene mutations in Drosophila melanogaster cause sluggish motor activity. We have localized the transcription unit of the sluggish-A gene to a 14.7-kb region at the base of the X chromosome and have cloned corresponding cDNAs. The predicted protein product has significant sequence similarity to Saccharomyces cerevisiae proline oxidase (EC 1.5.99.8), a mitochondrial enzyme which catalyzes the first step in the conversion of proline to glutamate. In the mutant fly, mitochondrial proline oxidase activity is reduced and has kinetic properties different from those of the wild type, providing further evidence that the gene encodes proline oxidase. Indeed, the free proline level in mutant flies is elevated. When the mutant is rescued by transformation, the proline oxidase and free proline levels, as well as the motor and phototactic behavior, are restored to normal. During embryonic development the sluggish-A transcript is predominantly expressed in the nervous system. Significantly, it has previously been reported that a mouse mutant, PRO/Re, which has reduced proline oxidase activity and elevated free proline levels, also exhibits sluggish behavior.

Amino Acid Sequence↗

Glucocorticoid control of hepatic proline oxidase.

Since adrenal corticosteroids are known to affect amino acid metabolism and gluconeogenesis, we examined the relationship of these hormones to hepatic proline oxidase, the mitochondrial enzyme degrading L-proline. In adrenalectomized rats hepatic proline oxidase activity decreased to about 50% of control levels within 5-6 days. This depressed activity can be restored to normal by 4 days of corticosteroid repletion. Treatment of intact rats with supraphysiologic doses of corticosteroid further elevated proline oxidase activity. The level in treated intact rats was three-fold that of adrenalectomized rats. Kinetic analysis revealed that corticosteroid increased the amount of enzyme without altering enzyme affinity for proline. Administration of a single dose of corticosteroid to either adrenalectomized or intact animals increased enzyme activities, with a lag time of less than 2 hr. The maximum effect occurred 5-6 hr following injection. Since proline degraded by this pathway can contribute carbon skeletons directly to carbohydrate, corticosteroid induction of proline oxidase may play an important role in hepatic gluconeogenesis occurring with corticosteroid action.

Adrenalectomy↗

Proline oxidase inhibition by free fatty acids of rat pancreas.

Proline oxidase activity was not measurable in pancreas homogenate but was measurable in pancreas slices. Moreover, added pancreas homogenate inhibited proline oxidase activity in rat liver mitochondria and several other tissues. The partially purified inhibitor from pancreas also inhibited the activity of glutamate, glucose 6-phosphate, NADH and succinate dehydrogenases. The inhibition was reversed by the addition of bovine serum albumin. Further studies to identify the inhibitor indicated that it consisted of free fatty acids that were enzymatically released after homogenization of pancreas. The free fatty acids released appeared to be derived primarily from triglycerides.

Animals↗

A radioisotopic assay for proline oxidase activity.

We developed a radioisotopic assay for proline oxidase in which product deltal-pyrroline-5-carboxylate-14-C is reacted with o-aminobenzaldehyde and the radioactivity trapped as the dihydroquinazolinium compound is recovered by ion-exchange chromatography. The sensitivity of this method allows the measurement of proline oxidase activity in small specimens (10 to 20 mg.) of liver.

Amines↗

Glucocorticoid induction of proline oxidase in LLC-RK1 cells.

Dexamethasone induced proline oxidase in cultured LLC-RK1 cells, an epithelial cell line derived from rabbit kidney. The dexamethasone-mediated increase in enzyme activity was concentration and time dependent. Although the effect could be dissociated from cell growth and cell density, it was dependent on protein and RNA synthesis. A comparison of the enzyme isolated from control and dexamethasone-treated cells showed that the increased activity was not due to an alteration in the affinity of the enzyme for proline. These findings suggest that glucocorticoids induce the synthesis of proline oxidase in mammalian cells.

Animals↗