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Biomedical subjects

R L Singhal

Publications and source records attributed to R L Singhal.

At least 19 recordsLinked to original sources

Increased deoxycytidine kinase activity in cancer cells and inhibition by difluorodeoxycytidine.

The activity of deoxycytidine kinase (EC 2.7.1.74), an important pyrimidine salvage enzyme, was elevated 5- to 30-fold in human ovarian carcinoma and OVCAR-5 cells, in human colon carcinoma and HT-29 cells, in rat hepatoma 3924A solid tumors and cells, and in rat sarcoma as compared with the respective control normal cells. There was an inverse relationship between cell doubling time and deoxycytidine kinase activity in 8 cancer cell lines, with rapidly growing HL-60 cells (20 hr) showing the highest, and slower-growing lung H69 cells (60 hr) the smallest, increase in enzyme activity. In time-sequence studies in human HL-60, OVCAR-5, PANC-1, and rat hepatoma 3924A cells, there was a significant rise in deoxycytidine kinase activity after 3-6 hr of seeding, with peak increases (3.5- to 4-fold) at 48-72 hr in the log phase in comparison with values of the respective plateau phase cells (96-144 hr). In extracts of various cancer cells, the high deoxycytidine kinase activity was competitively inhibited by difluorodeoxycytidine (DFDC), with Ki = 7 to 30 microM. The Km for deoxycytidine in various carcinoma cell lines ranged from 0.3 to 0.7 mM and addition of DFDC increased the apparent Km from 0.7 to 4 mM. Deoxycytidine kinase activity in human HL-60 cells was inhibited by the end product, dCTP, with IC50 = 3 microM; dCTP elevated the Km for deoxycytidine from 0.35 to 0.9 mM. dTTP reversed the inhibition by dCTP.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Evidence that chronic apomorphine treatment enhances 5-hydroxytryptamine metabolism in brains of normal and neonatally hyperthyroid rats.

Daily injection of L-triiodothyronine (10 microgram/100 g, s.c.) for 30 days to neonatal rats significantly enhanced the metabolism of 5-hydroxytryptamine as reflected by increased tryptophan hydroxylase activity and 5-hydroxyindoleacetic acid levels of certain discrete brain regions. However, neonatal L-triiodothyronine treatment produced no change in 3H-5-hydroxytryptamine uptake by crude synaptosomes. Chronic treatment with apomorphine (1 mg/kg/day, s.c.) for 15 days, beginning from 15 days of age, increased tryptophan hydroxylase activity as well as 5-hydroxytryptamine and 5-hydroxyindoleacetic acid levels and blocked the uptake of 3H-labelled serotonin in crude synaptosomes of normal and L-triiodothyronine-treated animals. Furthermore, apomorphine (which is known to indirectly stimulate 5-hydroxytryptaminergic neurons) produced a greater increase in tryptophan hydroxylase and 5-hydroxyindoleacetic acid in the mid-brain region of neonatally hyperthyroid animals as compared to normal rats. These data indicate that excess thyroid hormone in early life not only increases the turnover of brain 5-hydroxytruptamine, but also enhances the sensitivity of dopamine receptor sites. thus amplifying the stimulating action of apomorphine. Our findings also suggest that thyroid hormone in early life advances the overall development of monoaminergic systems in the brain.

Animals

Alteration in testicular cyclic AMP system in the rat following vasectomy.

Endogenous cyclic AMP levels and the activities of adenylate cyclase, cyclic AMP-dependent and independent protein kinases were examined in testes of mature rats bilaterally vasectomized for one, three and seven months. Although no significant alteration in testicular cyclic AMP was detected one month following vasectomy, marked decreases (by 55% and 32%, respectively) were seen three and seven months postvasectomy. Likewise, vasectomy also resulted in a significant decrease (by 25%) in the activity of testicular adenylate cyclase three and seven months after vasectomy. Although soluble cyclic AMP-dependent protein kinase activity remained unaffected three months postvasectomy, the activity of the cyclic nucleotide-dependent enzyme was significantly increased (by 21%) when compared to the sham-operated controls. Furthermore, while the protein kinase ratio (--cyclic AMP/+cyclic AMP) was decreased in animals vasectomized for three months, the ability of the enzyme to bind (3H) cyclic AMP in vitro was significantly enhanced (18%). Rats vasectomized for seven months showed similar biochemical alterations but the effects of this procedure were more pronounced. Moreover, while short-term vasectomy increased the responsiveness of seminiferous tubular adenylate cyclase to in vitro stimulation by follicle stimulating hormone, the activity of the enzyme was also increased (by 100%) in the presence of luteinizing hormone in vasectomized rats. These data raise the possibility that changes in testicular function seen following vasectomy may be related to the alterations in cyclic AMP metabolism as well as in the sensitivity of testicular adenylate cyclase to regulation by gonadotropins.

Adenylyl Cyclases

Effect of testosterone and 6-hydroxydopamine treatment on the metabolism of catecholamine and 5-hydroxytryptamine in methylcholanthrene-induced prostate carcinoma of rats.

The precursors tyrosine and tryptophan as well as the synthesizing and deaminating enzymes of catecholamines have been identified in methylcholanthrene-induced prostatic carcinoma of rats. Tyrosine hydroxylase, monoamine oxidase, catechol O-methyltransferase, dopamine, 5-hydroxytryptamine, and 5-hydroxyindoleacetic acid seemed to be neoplastic in origin, since electron microscopic studies failed to reveal the presence of any neuronal elements in this squamous epithelial cell carcinoma. Castration of rats significantly reduced the activity of tyrosine hydroxylase and the levels of tyrosine, dopamine, tryptophan, 5-hydroxytryptamine, and 5-hydroxyindoleacetic acid in prostate tumors. The changes appeared to be androgen specific since reintroduction of testosterone restored several of these biochemical parameters virtually to control limits. Chemical sympathectomy induced by 6-hydroxydopamine failed to alter monoamine metabolism; however, the prostatic tumor grown in 6-hydroxydopamine-treated rats showed significantly (32%) less necrosis than those grown in normal animals.

Animals

The effect of thyroid hormone on serotonergic neurones: depletion of serotonin in discrete brain areas of developing hypothyroid rats.

A single intraperitoneal injection of 131I in a dose of 200muCi in 1-day-old rats induced hypothyroidism and decreased the activity of tryptophan hydroxylase in mid-brain region. The levels of 5-hydroxytryptamine also were reduced in cerebellum, mid-brain and striatum by 22%, 29% and 31%, respectively. By contrast, the levels of its metabolite, 5-hydroxyindoleacetic acid, were significantly increased in cerebellum, mid-brain and striatal region. To ascertain whether changes induced by neonatal radiothyroidectomy were specific, the effect of replacement thyroid hormone therapy was studied on 5-hydroxytryptamine metabolism. Daily administration of L-triiodothyronine (10 microgram/100g s.c.) for 25 days beginning from five days after radio-iodine treatment enhanced tryptophan hydroxylase activity, tryptophan and 5-hydroxytryptamine levels to values seen in normal rats of the corresponding age group. The concentration of 5-hydroxyindoleacetic acid decreased following L-triiodothyronine treatment. Furthermore, when replacement therapy with L-triiodothyronine was postponed until adulthood, no significant effects could be seen on various parameters related to 5-hydroxytryptamine metabolism. Our data demonstrate that deficiency of thyroid hormone in early life disrupts the normal upsurge of 5-hydroxytryptamine metabolism in brain. A critical period exists in early life of rats during which thyroid hormone must be present for the optimal development of 5-hydroxytryptamine metabolizing systems in maturing brain.

Animals

Adrenocorticoids control 5-hydroxytryptamine metabolism in rat brain.

The influence of surgical adrenalectomy was examined on the biosynthetic capacity for 5-hydroxytryptamine of rat brain. The results demonstrate that adrenalectomy decreased tryptophan hydroxylase activity and its substrate tryptophan in the brain stem. A parallel change in the concentration of 5-hydroxytryptamine was seen in brain stem and striatal region of adrenalectomized rats. In contrast, the level of 5-hydroxyindoleacetic acid was significantly elevated in both of these brain regions. Replacement therapy with corticosterone (10 mg/kg i.p.) produced time-dependent increases in tryptophan, tryptophan hydroxylase and 5-hydroxytryptamine and decreases in 5-hydroxyindoleacetic acid levels. Alterations in these neurochemical parameters were more conspicuous in adrenalectomized rats receiving corticosterone for 7 days as compared to those given only for 3 days. Our data demonstrate that adrenocortical hormones regulate brain 5-hydroxytryptamine synthesis probably by enhancing both the levels of tryptophan and the activity of rate-limiting enzyme tryptophan hydroxylase. It is postulated that emotional instability seen during altered adrenocortical function might partly be associated with abnormal metabolism of central 5-hydroxytryptamine.

Adrenal Cortex Hormones

Effect of a new benzodiazepine bromazepam on locomotor performance and brain monoamine metabolism.

Administration of a single dose (10 mg/kg) of a relatively new benzodiazepine, bromazepam to rats markedly suppressed their spontaneous locomotor activity. Hypomobility became apparent 15 min after the injection and remained significantly lower during the period of observation for 6 hours when locomotor activity was 27% of controls. Following 2 hours after bromazepam treatment, no change was noted in tyrosine levels and tyrosine hydroxylase activity in striatum or rate of catecholamine synthesis in synaptosomal preparation (P2 pellet). However, the endogenous levels of norepinephrine, dopamine and 5-hydroxytryptamine were significantly increased not only in several brain areas examined, but also in P2 pellet. Bromazepam failed to change 3H-norepinephrine and 3H-5-hydroxytryptamine uptake in synaptosomes suggesting that the increased levels of monoamines are not related to laterations in uptake mechanisms, but probably to a diminished release. This is supported by the data on striatal homovanillic acid and whole brain 4-hydroxy-3-methoxyphenyl glycol whose concentrations were significantly lowered following a single injection of this benzodiazepine. However, bromazepam increased 5-hydroxyindole-acetic acid levels in hypothalamus, mid-brain and pons-medulla. The present study demonstrates that bromazepam elicits its tranquilizing action by lowering the release of catecholamines in brain; however, its anti-anxiety action might be associated with a reduction in 5-hydroxytryptamine turn over. Our data also suggest that bromazepam is almost as potent as diazepam in altering the metabolism of certain putative neurotransmitters in brain.

Amines

Evidence for the role of adrenocortical hormones in the regulation of noradrenaline and dopamine metabolism in certain brain areas.

1 Bilateral adrenalectomy suppressed body growth and increased the activity of tyrosine hydroxylase in rat striatum in a time-dependent manner. Fifteen days after adrenalectomy, the concentrations of noradrenaline were decreased significantly in hypothalamus and striatum, as were those of dopamine in brain stem and striatum. 2 Catechol-O-methyltransferase failed to change in response to adrenalectomy, but the activity of monoamine oxidase in cortex was significantly increased 7 days after surgery. These changes in various neurochemical parameters were even more pronounced 15 days after adrenal ablation. 3 Administration of corticosterone (10 mg/kg i.p.) to adrenalectomized rats effectively reversed the observed effects on brain amine metabolism. Corticosterone treatment for 7 days beginning from the 8th day of adrenalectomy virtually restored the concentrations of noradrenaline and dopamine as well as the activities of striatal tyrosine hydroxylase and cerebrocortical monoamine oxidase to the values seen for sham-operated controls. 4 Our data suggest that changes seen in brain noradrenaline and dopamine of adrenalectomized rats are specific to adrenocortical steroids and that these hormones play a role in the regulation of catecholamine formation.

Adrenal Cortex Hormones