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Biomedical subjects

H S Beyer

Publications and source records attributed to H S Beyer.

At least 19 recordsLinked to original sources

Effect of food intake on the activity of liver enzymes in partially hepatectomized rats treated with tumor necrosis factor.

After partial hepatectomy (PHx), there are significant changes in the activity of a number of enzymes in the regenerating rat liver. Administration of low doses of recombinant human tumor necrosis factor-alpha (rHu-TNF) to normal rats induces similar changes in some of the enzymes but not in others. Because certain observations suggest that TNF may play a dominant role in liver regeneration, we speculated that the discrepancies in enzyme activities may be due to the decrease in food intake caused by PHx. Accordingly, the activities of eleven liver enzymes of 70% PHx rats additionally treated i.p. with rHu-TNF (20-50 micrograms/kg/day for 3-4 days) were compared with those of (i) PHx controls fed ad lib., and (ii) PHx controls pair-fed the same amount of food. When pair-fed controls were used, the discrepancies in the activities of the enzymes that are affected by fasting tended to disappear, suggesting that the decrease in the food intake was responsible for the differences.

Animals↗

Protein kinase A regulates nicotinic cholinergic receptors and subunit messenger ribonucleic acids in PC 12 cells.

To delineate mechanisms regulating the expression of neuronal nicotinic cholinergic receptors (nAcChRs), we studied the cAMP-dependent second messenger system. PC 12 cells were grown in (Bu)2cAMP (0.001-1.0 mM) or vehicle for 7 days, and specific [3H] nicotine binding was measured. (Bu)2cAMP (0.1 mM) increased specific binding 2- and 4-fold at 3 and 7 days, respectively, whereas 1.0 mM enhanced binding 4-fold at both time intervals. Cells grown in 8-bromo-cAMP (1.0 mM) showed a 2-fold increase in [3H]nicotine binding at 3 days. Forskolin (10-100 microM), in combination with isobutyl-methylxanthine (1.0 mM), enhanced [3H]nicotine binding 2- to 3-fold at 7 days; forskolin or isobutyl-methylxanthine alone had no effect. Specific [3H] nicotine binding to PC 12 cell mutants (A126.1B2 and A123.7), deficient in cAMP-responsive protein kinase A types I and II, were unaffected by (Bu)2cAMP. Northern gel analysis of nAcChR subunit messenger RNAs showed that the alpha-3, alpha-5, and beta-4 subunits were significantly decreased by (Bu)2cAMP at 4 h. However, (Bu)2cAMP caused an increase in the beta-2 messenger RNA transcript at 4 h, which returned to baseline by 24 h. These studies indicate that the cAMP-protein kinase A system regulates expression of nAcChR by PC 12 cells. These studies also suggest that enhancement of [3H]nicotine binding by activated protein kinase A may not involve synthesis of new receptor subunit proteins.

Adenylyl Cyclases↗

Tumor necrosis factor-alpha is a direct hepatocyte mitogen in the rat.

We previously reported that tumor necrosis factor-alpha (TNF-alpha) increases in vivo hepatocyte mitoses and liver regeneration in rats. In the present studies, we used in vitro hepatocyte cultures to determine whether TNF-alpha itself was mitogenic or whether other cytokines (IL-1 beta and IL-6) that share similar actions with TNF-alpha might be involved. Hepatocytes were cultured with TNF-alpha (4, 40 or 400 U/ml), IL-1 beta (0.1, 1 and 10 ng/ml) or IL-6 (0.2, 2, or 20 ng/ml) for 24 h and 3 d. Incorporation of [3H]thymidine was increased significantly by TNF-alpha (40 and 400 U/ml) at 3 d. Both IL-1 beta and IL-6 at all concentrations significantly decreased [3H]thymidine incorporation at 3 d. These results indicate that TNF-alpha has a direct mitogenic action on hepatocytes. In contrast, IL-1 beta and IL-6 appear to suppress DNA synthesis in hepatocytes.

Analysis of Variance↗

Inhibition of increases in ornithine decarboxylase and putrescine has no effect on rat liver regeneration.

Polyamines are considered critical for cell proliferation. During liver regeneration in the rat, ornithine decarboxylase (ODC) mRNA and enzyme activity and polyamines (primarily putrescine and spermidine) are known to increase substantially. We examined the effect of inhibition of polyamine synthesis with alpha-difluoromethylornithine (DFMO), an irreversible inhibitor of the ODC enzyme, on regenerating liver weight and total DNA, RNA, and protein, [3H]thymidine and [14C]leucine incorporation, number of mitotic figures, and putrescine, spermidine, and spermine contents. Rats received DFMO beginning 4 days before or immediately after two-thirds partial hepatectomy. In control rats, ODC activity, putrescine, and spermidine increased significantly during regeneration, whereas spermine was unchanged. In rats receiving DFMO, ODC and putrescine changed minimally but spermidine increased as usual. Spermine levels were modestly higher in rats receiving DFMO beginning 4 days before partial hepatectomy. However, despite ODC inhibition and substantially lower levels of putrescine, the course of liver regeneration in rats treated with DFMO was not affected. Total liver mass, DNA, RNA, and protein increased over 5 days equally in rats receiving DFMO and control rats. In addition, there were no differences in [3H]thymidine incorporation into DNA, [14C]leucine incorporation into protein or mitotic indexes between DFMO-treated and control rats at 24 and 48 h after partial hepatectomy. These results suggest that the well-known increases in ODC activity and polyamines that occur during regeneration are not required for liver to undergo its proliferative response to partial hepatectomy.

Animals↗

Lack of effect of hypothyroidism on rat liver regeneration.

Thyroid hormone has been postulated to be important for liver regeneration. In the present studies liver regeneration in hypothyroid male rats treated with methimazole was compared to euthyroid rats. At 5 days after 70% partial hepatectomy liver weight was significantly less in the hypothyroid rats, but total hepatic DNA and protein were the same in the hypothyroid and euthyroid rats and RNA was significantly greater in the hypothyroid rats. These results indicate that liver regeneration is nearly normal in hypothyroid rats, despite the fact that whole body growth has ceased due to the hypothyroidism. Since both thyroid and growth hormones are low in hypothyroid rats, these results suggest that neither thyroid nor growth hormones are required for liver regeneration.

Animals↗

Aging alters ornithine decarboxylase and decreases polyamines in regenerating rat liver but putrescine replacement has no effect.

Aging decreases rat liver regeneration. We (1) compared the expression of ornithine decarboxylase (ODC), a critical enzyme for liver regeneration, and polyamine levels in regenerating liver of 6-week-old and 1-year-old rats and (2) evaluated the effect of exogenous putrescine supplementation on liver regeneration in 1-year-old rats. ODC messenger ribonucleic acid (mRNA) transcript sizes were the same in rats of both ages. ODC mRNA content and enzyme activity were higher in the younger rats; however, magnitudes of increase after partial hepatectomy were greater in the older rats. From peak levels, the rate of decline of the mRNA was slower in the older rats, but enzyme activity declined at the same rate in both ages. ODC apoenzyme content was significantly less in normal liver tissue from 1-year-old rats, but there was little change after partial hepatectomy in rats of either age. No change in ODC transcriptional activity was found. Hepatic putrescine levels were lower in 48 hours regenerating liver tissue from 1-year-old rats. To determine whether supplemental putrescine would increase liver regeneration in 1-year-old rats, putrescine (600 mumol/kg IP every 4 hours) was administered beginning 4 days before or at the time of partial hepatectomy. This raised polyamine levels and decreased ODC activity significantly, but there was no change in regenerating liver weight, total DNA and RNA content, and tritiated thymidine incorporation at 48 hours. These results indicate that ODC expression is different and polyamine levels are lower in 1-year-old rats than in 6-week-old rats. However, putrescine supplementation that is sufficient to decrease ODC activity has no apparent effect on regeneration.

Aging↗

Induction of the messenger ribonucleic acid for proenkephalin A in cultured murine CD4-positive thymocytes.

Although proenkephalin A (PEA) messenger RNA (mRNA) has been detected in many types of immune cells, little understanding exists about its role or the role of enkephalin peptides in immune responses. We have studied the expression of PEA mRNA during thymocyte maturation by identifying the subpopulation of thymocytes that expresses PEA mRNA. PEA mRNA was induced in unfractionated murine thymocytes after in vitro activation of these cells with the T cell mitogen, concanavalin A (Con-A). A slight induction of PEA mRNA was seen after 48 h of Con-A stimulation; however, the maximal response occurred after 72 h of culture with Con-A. Two PEA mRNA bands were present in unfractionated thymocytes which had been cultured with Con-A for 48 and 72 h. The predominant band was 1.4 kilobases (kb), and a second band was approximately 1.7 kb. Fractionation of thymocytes into CD4, CD8, and double negative subpopulations showed that only the 1.4 kb PEA mRNA was inducible in the mature CD4 subpopulation. Induction required the presence of antigen-presenting cells in addition to CD4 thymocytes. Neither the 1.4 kb nor the 1.7 kb PEA mRNA was induced in the CD8 or double negative subpopulations. In contrast to the action of Con-A on murine thymocytes, PEA mRNA was not induced by this mitogen in murine splenic mononuclear cells at 24, 48, or 72 h. The regulated expression of PEA mRNA in murine thymocytes, but not in peripheral T lymphocytes, suggests a role for PEA mRNA and its peptides in thymocyte maturation.

Animals↗

Aging is associated with reduced liver regeneration and diminished thymidine kinase mRNA content and enzyme activity in the rat.

We studied the effect of aging on rat liver regeneration. We compared the time course of total hepatic mass, DNA and RNA accumulation, and thymidine kinase (TK) messenger RNA (mRNA) content and enzyme activity, after two-thirds partial hepatectomy in 6-week-old (young adult) and 1-year-old rats. Whereas 6-week-old rats had completely regenerated all liver mass, DNA, and RNA by 7 days, the regenerating 1-year-old rat livers at 7 days contained only 60% to 70% of the mass, DNA, and RNA in the normal 1-year-old rat liver. However, rates of tissue regeneration during this time were very similar in both ages. At 28 days the weight and RNA content of the 1-year-old rat livers were 93% of normal, but total DNA was still reduced, at 78% of normal. In the younger rats TK mRNA content and enzyme activity increased substantially after partial hepatectomy and were observed to peak at 24 hours. In the 1-year-old rats TK mRNA was less abundant in normal liver and the peak level observed was lower and delayed until 48 hours. Nonetheless, the incremental increase from baseline to peak was greater in the 1-year-old than in the 6-week-old rats. In contrast to the mRNA, TK activity peaked at 24 hours, but at substantially lower levels than in the 6-week-old rats. Rates of disappearance of TK mRNA and enzyme activity after peak levels were not significantly different by age.(ABSTRACT TRUNCATED AT 250 WORDS)

Aging↗

Idiopathic acquired diffuse osteosclerosis in a young woman.

We describe a young woman who acquired a painful, diffuse osteosclerosis of the cervical, thoracic, and lumbar spine, pelvis, and long bones of the legs as an adult. Bone densitometry showed a large increase in apparent bone density. Skeletal radiographs demonstrated progressive endosteal and periosteal thickening of the cortices. A bone scan showed increased uptake of radiolabel. The serum total alkaline phosphatase and 1,25-(OH)2D3 levels were substantially elevated and the immunoreactive PTH was mildly elevated. Bone biopsy showed increased bone turnover, especially on endocortical and intracortical surfaces, but the structural indices were normal. By 4 years after presentation the bone pain had remitted and the serum alkaline phosphatase, 1,25-(OH)2D3, and PTH were normal. No cause for the occurrence of osteosclerosis in this patient could be found.

Absorptiometry, Photon↗

Tumor necrosis factor-alpha increases hepatic DNA and RNA and hepatocyte mitosis.

Tumor necrosis factor-alpha (TNF) has been reported to increase DNA synthesis in normal rat liver. Therefore, we examined the effects of TNF on rat liver regeneration. TNF, 1.5 micrograms ip every 4 h for 5 d, significantly increased hepatic DNA and RNA contents of regenerating and sham operated livers by up to 45%. Mitotic figures in sham operated liver, usually rare, were increased substantially by TNF. ODC mRNA content and enzyme activity were increased in regenerating liver, and were further increased by TNF. These data indicate that TNF, although not specific for regenerating liver, is a potent stimulus for hepatocyte DNA synthesis and mitosis.

Animals↗

Effects of partial and sham hepatectomy on ornithine decarboxylase and thymidine kinase activities and mRNA contents.

Ornithine decarboxylase and thymidine kinase are enzymes that increase in activity in regenerating liver. We found that both activities and mRNA levels for these enzymes increase significantly after 70% partial hepatectomy in the rat. After sham hepatectomy (laparotomy) there were significant decreases in activity; however, mRNA content was unaltered. Similar decreases in enzyme activity, without changes in mRNA content, were found with pair-feeding, and additional decreases in activity after starvation. In contrast to previous reports of no change in ornithine decarboxylase and thymidine kinase after sham hepatectomy, the present results indicate that decreases occur. This may be mediated by the decrease in food intake after surgery. Dietary factors may be important in the physiologic regulation of these enzymes in the liver.

Animals↗

An analysis of total RNA translation products of rat liver during regeneration with a comparison to fetal liver.

We explored differences in the mRNA populations of regenerating, sham-operated, and fetal rat liver using two-dimensional gel electrophoresis to resolve the radiolabeled protein products of liver total RNA translated in vitro. Twenty-four translation products were changed significantly after partial hepatectomy and sham hepatectomy. Nine of the 24 products changed after partial hepatectomy only, while the remainder also changed after sham hepatectomy. Two of the nine increased during regeneration to relative levels similar to those found in fetal liver. However, substantial differences also exist between the translation products of regenerating and fetal liver. These results suggest that the response to partial hepatectomy involves the alteration of mRNAs present in normal liver and that this response does not duplicate the fetal pattern of hepatic total RNA translation activity.

Animals↗

Regulation of the messenger ribonucleic acid for corticotropin-releasing factor in the paraventricular nucleus and other brain sites of the rat.

CRF, from the paraventricular nucleus of the hypothalamus (PVN), is the major hypothalamic releasing factor that controls pituitary ACTH. Recently, the mRNA for CRF and the CRF peptide have been detected in other brain sites. However, there is little information on the function and regulation of CRF in brain sites outside the paraventricular nucleus. We investigated the content of CRF mRNA in the PVN, the central nucleus of the amygdala (CN), the bed nucleus of the stria terminalis (BN), and the supraoptic nucleus (SON). Northern gel analysis showed that the mRNA for CRF is present in the BN, CN, and SON as well as the PVN, and that all are the same size. In response to adrenalectomy, the level of hybridizable mRNA increased 2.75-fold over 7 days in the PVN; there was no change in the CN, BN, or SON. High dose dexamethasone decreased, but did not eliminate, the PVN CRF mRNA; it was without effect in the other sites. Glucocorticoid replacement with constant low blood levels of corticosterone (5.6 +/- 0.3 micrograms/100 ml) suppressed plasma ACTH and decreased thymus weight while reducing, but not eliminating, PVN CRF mRNA. We conclude that the same sized mRNA for CRF is synthesized in the PVN, BN, CN, and SON, but only the PVN mRNA responds to alterations of peripheral glucocorticoid status. This may imply that only CRF from the PVN is involved in control of the hypothalamic-pituitary-adrenal axis.

Adrenalectomy↗

Nicotine elevates rat plasma ACTH by a central mechanism.

Nicotine is a potent secretagogue for the release of adrenocorticotropin (ACTH) from the anterior pituitary in vivo. However, the location of its action is unknown; knowledge of this is essential for elucidating its mechanism. Our studies show that cytisine, a peripherally acting nicotinic cholinergic agonist, given i.v. at doses equimolar or greater than nicotine, failed to elevate plasma ACTH levels, whereas nicotine (0.01 and 0.03 mg/kg b.wt.) had significant effects. Nicotine (10(-7)-10(-4) M) had no effect on the secretion of beta-endorphin by anterior pituicytes in vitro, nor did it potentiate the action of corticotropin-releasing factor (10(-9) or 10(-8) M). Intracerebroventricular injection of nicotine (1-20 micrograms) significantly elevated ACTH levels. Moreover, ACTH responses to nicotine delivered into the hypothalamic region of the third ventricle were significantly greater than those elicited by injection into the upper region. Additional studies were conducted to determine the earliest age at which nicotine stimulates ACTH. The response to i.p. nicotine (1 or 2 mg/kg b.wt.) was present but diminished during the postnatal period, whereas maximal responses comparable to mature rats were attained by day 15. To establish whether nicotine has a central effect in younger animals, nicotinic antagonists were tested. Hexamethonium (2 mg/kg b.wt.), a peripherally acting antagonist, was ineffective against nicotine (0.025 and 2.0 mg/kg b.wt.), whereas mecamylamine (2 mg/kg b.wt.), inhibitory at both peripheral and central sites, blocked the ACTH response. Thus, whether administered peripherally or centrally, nicotine activates central mechanisms mediating the release of ACTH; it appears that the target(s) for nicotine are within the hypothalamus or brainstem.

Adrenocorticotropic Hormone↗

Attenuation of the plasma prolactin response to restraint stress after acute and chronic administration of nicotine to rats.

We have previously shown that a single dose of nicotine elevates plasma adrenocorticotropin (ACTH) levels in rats and has a biphasic effect on plasma prolactin (PRL). The stimulatory effect of nicotine on these stress responsive hormones desensitizes after a single injection of nicotine. Continuous exposure to nicotine also induces tolerance to its locomotor depressive and hypothermic effects, which have been associated with an increase of central [3H]nicotine binding. Thus, the acute and chronic administration of nicotine might induce changes in central nicotinic cholinergic circuits that affect the ACTH and PRL responses to stress. In the present study, a single dose of nicotine (0.75-3.0 mg/kg b.wt.) significantly inhibited the elevation of plasma PRL due to restraint stress initiated 60 min afterward. Five injections of nicotine during 1 day produced a similar attenuation of the PRL response to restraint stress but neither of these paradigms affected ACTH. In contrast, intermittent delivery of nicotine for 7 days failed to affect the PRL response to restraint stress; however, after withholding nicotine for 14 hr, high dose nicotine attenuated the PRL response to stress, whereas low dose nicotine remained ineffective. On the other hand, administration of the same schedule of low dose nicotine did significantly diminish the expected release of PRL in response to a final injection of nicotine (0.5-2.0 mg/kg b.wt.) in unstressed animals. In summary, a single dose or 5 doses of nicotine in 1 day attenuated the PRL response to restraint stress, whereas, after chronic administration, this effect was lost.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenocorticotropic Hormone↗

Beta-endorphin attenuates the serum cortisol response to exogenous adrenocorticotropin.

Controversy surrounds the issue of whether beta-endorphin affects adrenal steroidogenesis. Recent work has both supported and refuted the claim that beta-endorphin stimulates a rise in serum aldosterone. We investigated the role of beta-endorphin in adrenal steroidogenesis by examining its potential modulation of the response of serum cortisol to exogenous ACTH (Cosyntropin). Four of five normal men received: 1) synthetic beta-endorphin (1 microgram/kg X min) for 30 min, followed by a bolus dose of 0.2 micrograms ACTH; 2) beta-endorphin (100 micrograms, iv), followed by 0.2 micrograms ACTH iv; 3) 0.2 micrograms ACTH iv; and 4) beta-endorphin (100 micrograms iv) alone. The integrated cortisol response to exogenous ACTH, calculated as the area under the cortisol response curve, was significantly less when the ACTH infusion was preceded by the 30-min beta-endorphin infusion than when administered alone [163 +/- 50 (SE) microgram/dl X min vs. 282 +/- 51 micrograms/dl X min, respectively; P less than 0.01]. By contrast, there was no difference between the integrated cortisol response to exogenous ACTH alone and exogenous ACTH after the bolus dose of beta-endorphin (282 +/- 51 vs. 293 +/- 39 micrograms/dl X min, respectively). Beta-Endorphin (30-min infusion or 100-micrograms bolus dose alone) caused no change in serum aldosterone, dehydroepiandrosterone, or PRA. Serum PRL levels, however, were raised significantly (P less than 0.05) by the 30-min infusion of beta-endorphin. The infusion and bolus doses of beta-endorphin raised plasma beta-endorphin levels to over 100,000 pg/ml and 5,000 pg/ml, respectively. We conclude that very high plasma levels of beta-endorphin may influence the response of cortisol to ACTH through a direct effect on the adrenal cortex. However, even in disease states such as Addison's and Nelson's diseases, such levels of plasma beta-endorphin are not known to be achieved.

Adrenocorticotropic Hormone↗