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Biomedical subjects

V K Han

Publications and source records attributed to V K Han.

At least 73 records · Page 4Linked to original sources

Foetal endocrine maturation.

In domestic ruminants such as the sheep, birth is effected through sequential maturation of the foetal hypothalamic-pituitary-adrenal (HPA) axis, leading to the increased output of cortisol. Factors regulating foetal pituitary adrenocorticotrophin (ACTH) secretion have been delineated, and these include corticotrophin releasing hormone (CRH), arginine vasopressin, prostaglandin (PG) E2 and endogenous opioids. The pre-partum increase in foetal plasma ACTH is associated with a rise in pro-opiomelanocortin (POMC) mRNA in the foetal pars distalis, and with an altered pattern of POMC post-translational processing. Foetal adrenal activation results from an increase in ACTH receptors and enhanced coupling through the Gs protein to adenylate cyclase, and increased expression of key steroidogenic enzymes including P450c17. Cortisol modulates the mechanism by which ACTH activates foetal adrenal function, through specific glucocorticoid receptors (GR) in the foetal adrenal cortex. Although the numbers of GR change with gestation, the relative abundance of GR mRNA does not, pointing to post-translational regulatory mechanisms. Cortisol also stimulates an increase in the concentration of its own high affinity binding protein (corticosteroid binding globulin; CBG) in the foetal circulation, apparently by increasing CBG gene expression in the foetal liver, and by altering the extent of foetal CBG glycosylation in a manner that would be expected to decrease the metabolic clearance of this glycoprotein. Clear evidence for placental CRH and ACTH production is lacking in sheep, but PGE2, produced in increasing amounts by the placenta during late pregnancy, may augment the drive to HPA maturation. Aspects of the maturational pathway of cortisol biosynthesis have been described in other species, including the horse, and some comparison is made with the more detailed information currently available from species such as the sheep.

Animals↗

Changes in lung expansion alter pulmonary DNA synthesis and IGF-II gene expression in fetal sheep.

Our aim was to determine the effect of short-term (7 days) alterations in fetal lung liquid volume on pulmonary DNA synthesis rates and insulin-like growth factor-II (IGF-II) mRNA levels. Fifteen chronically catheterized fetal sheep were divided into three groups. In one, the trachea was obstructed, in another lung liquid was drained by gravity, and the third group served as controls. After 7 days, [3H]thymidine was injected into each fetus and 8 h later fetal tissues were collected. Fetal lung-to-body weight ratios and total lung DNA contents were greatly increased in fetuses with tracheal obstruction compared with control fetuses, whereas the drainage of lung liquid did not affect these measurements. DNA synthesis rates in pulmonary tissue were significantly reduced from a mean control value of 153.3 +/- 25.1 disintegrations per minute (dpm)/microgram DNA to 57.2 +/- 8.6 dpm/microgram DNA by lung liquid drainage (P < 0.05) and were significantly increased to 236.0 +/- 24.0 dpm/microgram DNA by tracheal obstruction (P < 0.05). Following tracheal obstruction, lung IGF-II mRNA levels were increased to 177.0 +/- 18.2% (P < 0.05) of the mean value for control fetuses, whereas they were reduced to 56.1 +/- 7.1% of control in lung liquid-drained fetuses. We conclude that altering fetal lung expansion has a potent and rapid effect on pulmonary DNA synthesis and that this effect may, in part, be mediated by an alteration in IGF-II gene expression.

Animals↗

Abolition of fetal breathing movements by spinal cord transection leads to reductions in fetal lung liquid volume, lung growth, and IGF-II gene expression.

Fetal breathing movements (FBM) are considered necessary for normal growth and structural maturation of the fetal lung, but the underlying mechanisms are unclear. The small fluctuations in lung dimensions caused by FBM have been proposed as a stimulus to lung growth, but it is equally possible that FBM act by maintaining the basal level of lung luminal volume, which is an established determinant of fetal lung growth. Our aim, therefore, was to determine the effects of abolishing FBM, while retaining the integrity of the diaphragm, on the volume and rate of production of fetal lung liquid, gene expression for IGF-II, and fetal lung growth. FBM were abolished in seven fetal sheep by high spinal cord transection at 114 +/- 1.2 d of gestation; seven intact fetuses served as controls. At 119 to 124, 125 to 130, and 131 to 136 d, we measured the volume and secretion rate of lung liquid by dye dilution. At these three age ranges, the lungs of cord-transfected fetuses contained 27 to 53% less lung liquid than controls (p = 0.004), and their rates of secretion were 65 to 138% greater (p = 0.001). At postmortem (135 +/- 0.1 d), the lungs of the cord transected fetuses contained less DNA per kg body weight and tended to be lighter and to contain less protein than controls. IGF-II gene expression in the lungs of cord-transected fetuses was significantly less than that in controls.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

The expression of insulin-like growth factor (IGF)-binding protein-2 and IGF-II genes in the tissues of the developing ovine fetus.

Insulin-like growth factor-II (IGF-II) regulates the growth and differentiation of tissues during fetal life and is bound to a significant extent to IGF-binding protein-2 (IGFBP-2) in blood and tissue fluids during this period of development. We have compared the expression of IGFBP-2 and IGF-II genes during development by determining the levels of stable mRNAs in various tissues of fetal [50 days gestational age to term (145-147 days)] and postnatal sheep [lambs (2 days, 4 weeks and 9 weeks) and adults; n = 3-4 in each age group]. Both IGFBP-2 and IGF-II mRNAs were observed from day 50 of gestation onward. The level of IGF-II mRNAs was high in fetal tissues from early gestational ages and decreased with maturation. Seven IGF-II mRNA transcripts [1.2-6 kilobases (kb)] were expressed by most tissues except the adult liver, which expressed only a single 5.1-kb transcript, and the choroid plexus, which expressed only six transcripts. A single IGFBP-2 transcript of approximately 1.5 kb was observed. Expression of the IGFBP-2 gene was ubiquitous in tissues from fetuses younger than 80 days gestational age, but from 120 days, it was restricted mainly to the liver, kidney, and choroid plexus. In general, the IGFBP-2 mRNA level in tissues was high in early gestation and decreased with maturation, thus following the same pattern of expression as IGF-II. However, this pattern was reversed in the liver. The concurrent expression of both IGFBP-2 and IGF-II mRNAs in the same tissues in early pregnancy suggests that both proteins are synthesized together in these tissues and act by autocrine and/or paracrine mechanisms. In later gestational ages and early postnatal life, when IGF-II mRNAs were expressed in decreasing levels, IGFBP-2 mRNA was present only in selected tissues. Liver was the only tissue that continued to express abundant IGFBP-2 mRNA levels, indicating that it was the major source of this BP at later gestational ages and postnatal life, when the protein functions as an endocrine factor. Plasma IGFBP-2 levels were relatively low in fetuses of early gestational ages (< 0.5 gestation) when most tissues were expressing this gene. Instead, plasma IGFBP-2 levels appeared to mirror the level of IGFBP-2 mRNA in the liver, further supporting the hypothesis that liver IGFBP-2 gene expression is the principal determinant of plasma IGFBP-2 levels.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Spatial and temporal distribution of corticosteroid-binding globulin and its messenger ribonucleic acid in embryonic and fetal mice.

Glucocorticoids influence fetal development, and their actions are regulated by plasma corticosteroid-binding globulin (CBG). Immunohistochemistry and in situ hybridization were, therefore, used to localize CBG and its mRNA in sections of embryonic and fetal mice and their associated placental tissues from day 5 of gestation until term (day 19). In the fetus, CBG mRNA was first detectable in the hepatocytes on day 11 of gestation. The amount of CBG mRNA in these cells increased transiently to a maximum on days 15-16 of gestation and was negligible by day 19. In hepatocytes, CBG immunoreactivity correlated with the distribution and relative abundance of CBG mRNA. The fetal exocrine pancreas also contained CBG mRNA, but this was only present on days 15-16 of gestation, while immunoreactive CBG persisted in these cells until term. Immunoreactive CBG was detected in the tubular cells of the developing fetal kidney as early as day 13, but CBG mRNA was never found in the fetal kidney, suggesting that the protein is probably sequestered from fetal blood directly or via the glomerular filtrate. The placenta contained immunoreactive CBG throughout gestation, even before its detection in fetal tissues, and it was most abundant in the spongiotrophoblasts and the extracellular matrix surrounding fetal and maternal capillaries. However, CBG mRNA was not detected in the placenta at any gestational age. Therefore, CBG present in the placenta is most likely of maternal origin and may influence the activities of steroid hormones that control placental development and/or function. The presence of smaller immunoreactive polypeptides in placental extracts, compared to CBG in corresponding maternal serum samples, suggests that this process may involve an interaction between maternal CBG and placental proteinases. The results presented here suggest that temporal and spatial changes in the localization of CBG and its mRNA in the fetus may influence the effects of steroid hormones on developing tissues.

Amino Acid Sequence↗

Corticosteroid-binding globulin biosynthesis in the mouse liver and kidney during postnatal development.

Plasma corticosteroid-binding globulin (CBG) is produced by the liver, but low levels of CBG mRNA have been detected in other tissues, including the kidney. Glucocorticoids influence postnatal renal development in rodents, and CBG production in the kidney may influence the local bioavailability of glucocorticoids. We, therefore, used in situ hybridization and immunohistochemistry to define the sites of CBG biosynthesis during postnatal development and have found that the liver and kidney are major sites of CBG biosynthesis in the first weeks of life. Both CBG and its mRNA were undetectable in the neonatal liver, and only a weak hybridization signal for CBG mRNA was present in the 7-day-old mouse liver. In neonatal mice, the developing tubules of the kidney represent the most active site of CBG biosynthesis, and immunoreactive CBG was also detected in the same cells. By 7 days of age, CBG and its mRNA were colocalized to the proximal convoluted tubules of the juxtamedullary nephrons. The abundance of CBG mRNA in the liver increased from 10 days of age and was accompanied by similar increases in serum CBG until adult levels were reached by 4 weeks of age. In contrast, CBG mRNA in the kidney increased to a maximum during the third week of life, but was undetectable 3 weeks later. The CBG within the proximal convoluted tubules was located in secretory granules close to the luminal surface of the epithelial cells, suggesting that it is secreted into the tubular lumen. Western analysis revealed that marked proteolytic degradation of CBG occurs in the urine concurrently with an increase in CBG biosynthesis in the developing kidney. Thus, the liver is not the only site of CBG biosynthesis in the developing mouse, and CBG production by the epithelial cells of the proximal convoluted tubules may influence glucocorticoid-dependent maturation of the kidney tubules by a process that somehow involves proteolytic degradation.

Aging↗

Hormonal regulation of astroglial insulin-like growth factor (IGF)-binding protein gene expression by IGFs and insulin.

Primary astroglial cells produce insulin-like growth factor (IGF)-binding proteins (IGFBPs), which modulate the biological activity of IGFs on the developing astroglia. Alterations in the synthesis of astroglial IGFBPs by hormones and growth factors may, therefore, influence the paracrine regulatory actions of IGFs. The objective of this study was to examine the regulation of astroglial IGFBP biosynthesis by IGF-I, IGF-II, and insulin. Primary astroglial cells were cultured from newborn rat cerebral cortices. Conditioned media from astroglial cultures without (control) or with hormonal treatment (10, 100, and 200 ng/ml IGF-I or IGF-II and 0.1, 1.0, and 10 micrograms/ml insulin) were collected and subjected to Western ligand blot analysis. Total RNAs were extracted from the same cultures and subjected to Northern blot analysis. Two IGFBP species of 34K (IGFBP-2) and 40K (IGFBP-3) were identified. After 24 h of treatment, IGF-I, IGF-II, and high concentrations of insulin increased IGFBP-2 and IGFBP-3 levels. At 24 h, IGFBP-2 stable mRNA levels showed an increase corresponding to the protein levels; however, IGFBP-3 stable mRNA levels did not. Time-course studies demonstrated that IGF-I rapidly induced the mRNA levels of both IGFBP-2 and IGFBP-3 within 7.5-12 h. IGFBP-2 mRNA levels showed a biphasic response to IGF-I, a rapid increase at 7.5 h, followed by a decline at 12-18 h, and then another increase at 24 h. In contrast, IGFBP-3 mRNA levels showed a response that peaked at 7.5-12 h and decreased to control levels at 24 h. The stability of IGFBP-2 mRNA at 24 h of IGF-I treatment was not significantly altered from that under control conditions, indicating that the changes in IGFBP-2 mRNA levels were not due to alterations in the stability of the mRNA. In situ hybridization studies demonstrated an increase in the abundance per cell of IGFBP-2 and IGFBP-3 mRNAs in either one or both types of astroglial cells after IGF-I or IGF-II treatment. We conclude that, 1) IGFs differentially modulate the production of astroglial IGFBPs; 2) the increase in IGFBP mRNA levels by IGFs is rapid and biphasic; 3) the effects of IGFs on IGFBP stable mRNAs may occur at the level of gene transcriptions; and 4) the effect of IGFs on IGFBP gene expression may be cell type specific.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Rapid clearance of insulin-like growth factor (IGF)-binding protein species from blood and an associated fall in circulating IGF-I following partial hepatectomy in the rat.

The presence of insulin-like growth factors (IGFs) in blood is regulated by their association with specific IGF-binding proteins (IGFBPs). In turn, the level of IGFBPs in the blood is likely to depend on a dynamic equilibrium between peptide production and clearance to extravascular tissues or organ-specific degradation. Since circulating IGFBPs may largely derive from liver we have employed partial hepatectomy in the rat to study the clearance rate of endogenous IGFBPs from blood once a major site of production is removed. Adult male rats were partially hepatectomized and serum and the remaining liver removed between 30 min and 7 days after surgery. Ligand blot analysis revealed two major species of IGFBP, of 28-30 kDa and 40-44 kDa in sera from control rats or sham-operated rats respectively. The larger species corresponded in size to rat IGFBP-3, but the smaller form was not recognized by antisera against rat IGFBP-1, bovine IGFBP-2 or human IGFBP-5 following Western immunoblot. Following hepatectomy, the levels of both IGFBP forms in the serum declined within 30 min and were barely detectable after 3 h or 6 h. They began to increase again in serum 24 h following surgery. The reduction in IGFBPs following hepatectomy was not primarily due to degradation by specific proteases in serum. Circulating levels of insulin were increased fivefold 3 h after hepatectomy but subsequently returned to control values. The rise in insulin was accompanied by a significant (P < 0.05) reduction in circulating IGF-I after 3 h which persisted at 24 h. Glucose levels in serum showed a transient but non-significant reduction between 90 min and 6 h after hepatectomy. Total RNA was extracted from remnant liver and subjected to Northern blot hybridization with 32P-labelled cDNAs encoding rat IGFBP-1, -2 or -3. Messenger RNA encoding IGFBP-1 was barely detectable in liver from control or sham-operated animals, but increased within 30 min of partial hepatectomy and peaked at 3 h. It subsequently declined and was again barely detectable after 24 h. No expression of IGFBP-2 or -3 mRNAs was found by Northern blot analysis in the liver of control animals or following partial hepatectomy. These results suggest that both IGF-I and IGFBPs in rat serum decreased rapidly following partial hepatectomy, and that this was due largely to the rapid clearance of the peptide and its binding proteins once the major source of production was removed.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Interactions of nutrients, insulin-like growth factors (IGFs) and IGF-binding proteins in the regulation of DNA synthesis by isolated fetal rat islets of Langerhans.

Insulin is a major regulatory hormone for optimal tissue growth and function in utero. Its continued availability to the growing fetus depends on increasing islet cell mass. The purpose of the study was to examine the interactions between nutrient availability and insulin-like growth factor (IGF) release and action during DNA synthesis by isolated fetal rat islets of Langerhans. Specifically, we wished to determine (a) whether the availability of glucose or total amino acids altered the release of endogenous IGF-I or -II, (b) if both IGF-I and -II were effective mitogens for pancreatic beta-cells, (c) whether islets released IGF-binding proteins (IGFBPs) and their possible regulation by nutrient availability and (d) how IGFBPs might regulate the ability of IGFs to alter islet DNA synthesis. Islets of Langerhans were isolated from fetal rat pancreata on day 22 of gestation by collagenase digestion. Islets enriched in beta-cells following a 5-day preincubation regime were maintained in various concentrations of glucose (1.4-16.7 mmol/l) or amino acids (x1- x3 total concentrations), with or without exogenous IGF-I, -II, IGFBP-1 or IGFBP-2. The release of insulin and endogenous IGF-I and -II were each determined by radioimmunoassay, and IGFBP release characterized by Western ligand blot analysis. DNA synthesis was measured by the incorporation of [3H]thymidine. Isolated islets demonstrated an increased release of insulin in response to increasing amounts of both glucose and amino acids, demonstrating functional viability. Both classes of nutrients also increased the DNA synthetic rate of islets. Islets released almost twice as much IGF-II (0.22 +/- 0.08 nmol/l, mean +/- S.E.M., n = 4) as IGF-I (0.14 +/- 0.03 nmol/l) in cultures containing 8.7 mmol glucose/l and x1 amino acids. Lesser or greater concentrations of glucose did not alter the release of either IGF, but the release of IGF-II was significantly increased (0.53 +/- 0.08 nmol/l, P < 0.01) in the presence of x2 amino acids. Exogenous IGF-I was fivefold more active in stimulating DNA synthesis by islets (half maximal concentration (ED50) 1.6 +/- 0.4 nmol/l, n = 3) than was IGF-II (ED50 8.1 +/- 0.6 nmol/l), regardless of glucose concentration. Isolated islets released four species of IGFBP with molecular sizes of approximately 19, 25, 35 and 46 kDa respectively. The 35 kDa form was identified by Western immunoblot as IGFBP-2. Increasing the glucose concentration between 1.4 mmol/l and 16.7 mmol/l caused a dose-related increase in the release of the 19, 25 and 35 kDa IGFBP species.(ABSTRACT TRUNCATED AT 400 WORDS)

Amino Acids↗

Insulin-like growth factor binding protein-4 gene expression is induced by transfection of gap junction connexin43 gene in a C6 glioma cell line.

When C6 glioma cells are stably transfected with a connexin43 cDNA and the gene overexpressed, the rate of cellular proliferation is decreased. To determine if this phenomenon is related to alterations in IGFBP synthesis, we have compared the conditioned media of primary rat astroglia, C6, clones Cx43-13 (high expresser of the transfected connexin43 gene), and Cx43-12 and Cx43-14 (intermediate expressers). Primary astroglia produced IGFBP-2 (M(r) 34 K) and IGFBP-3 (40-45 K). C6 cells synthesized high levels of IGFBP-3 and low levels of IGFBP-2, and a 24 K IGFBP (IGFBP-4). Cx43-13 cells did not synthesize IGFBP-3, but produced low levels of IGFBP-2 and high levels of IGFBP-4. Cx43-12 and Cx43-14 secreted IGFBP profiles similar to the parent C6 line, but with reduced levels of IGFBP-2. Northern analysis showed the changes in IGFBPs in the conditioned media to be correlated with alterations in stable mRNA levels. IGFBP-4, a inhibitor of IGF biological action, was produced in greater quantities by the slowly proliferating Cx43-13 cells. Alterations in IGFBP-4 synthesis may be responsible, at least in part, for the reduced proliferative capacity in cells with abundant connexin43.

Animals↗

Insulin-like growth factor binding protein-4, -5 and -6 mRNAs in the human fetus: localization to sites of growth and differentiation?

The insulin-like growth factor binding proteins (IGFBP) modulate the regulatory actions of insulin-like growth factors (IGF) on fetal growth and development. We have determined the sites of IGFBP-4, -5 and -6 synthesis in 14-18 weeks gestation human fetal tissues using northern blot analysis and in situ hybridization to localize their mRNAs. IGFBP-4, -5 and -6 mRNAs were present in most fetal tissues at this gestational age. IGFBP-4 mRNA (2.3 kb) was widely expressed, most abundantly in kidney, stomach, intestine and lung and least in the liver. IGFBP-5 mRNA (6 kb) was in highest abundance in muscle, skin, stomach and intestine. IGFBP-6 mRNA (1.4 kb) was expressed with greatest abundance in the heart, muscle and skin and least in the liver. In situ hybridization confirmed the widespread occurrence of these mRNAs. The distribution of all three IGFBP mRNAs was similar in each tissue with variations in relative abundance between different regions. In general, IGFBP-4, -5 and -6 mRNAs were prevalent in regions of active cellular division and differentiation, suggesting that the binding proteins they encode specify the sites of IGF activity in the developing fetus. The widespread occurrence of their mRNAs suggests that, like IGFs, they are synthesized in multiple tissues in the fetus and have an autocrine or paracrine mode of action.

Blotting, Northern↗

Induction of transforming growth factor-alpha gene expression in rat decidua is independent of the conceptus.

We have previously shown that decidua is the major site of transforming growth factor-alpha (TGF-alpha) gene expression at the feto-maternal interface during the early stages of pregnancy in the rat. The present study was undertaken to determine whether the presence of TGF-alpha mRNA in the decidua was in direct response to a signal derived from the conceptus. We therefore used the model of pseudopregnancy in rat, inducing decidualization in the absence of a conceptus. TGF-alpha mRNA expression was examined using Northern blot analysis, and TGF-alpha peptide was localized using immunohistochemistry. Pseudopregnancy was produced through standard hormonal priming followed by an artificial stimulus of intrauterine sesame oil or PBS to induce decidualization. Northern blot analysis demonstrated TGF-alpha mRNA expression specifically in the deciduoma beginning on the day of decidual stimulus (Day 4), increasing on Day 6, and continuing through Day 14. In contrast to decidua of normal pregnancy, an additional transcript of 3.0 kb was present in the deciduoma. Immunohistochemistry of tissues from Day 9 of pseudopregnancy revealed specific cytoplasmic immunoreactivity in the majority of stromal type decidual cells of the antimesometrial area, whereas mesometrial decidual cells were not immunoreactive. The results indicate that the induction of decidual TGF-alpha gene expression is not in direct response to a signal derived from the conceptus but is a de novo event associated with the decidual reaction, and that the resulting TGF-alpha peptide is present in the majority of stromal type antimesometrial decidual cells. These findings also suggest that TGF-alpha could be playing a role in proliferation and/or differentiation of the decidua.

Animals↗

Mitogenic activity of epidermal growth factor on newborn rat astroglia: interaction with insulin-like growth factors.

Newborn rat astroglia cells possess epidermal growth factor (EGF) and insulin-like growth factor (IGF) receptors, which suggests that these growth factors regulate their growth and development. To determine the relative roles and interactions between the two growth factors on astroglial growth, primary cultures of astroglial cells from newborn rats (1 day postnatal) were treated with pure peptides, singly or in combination in various concentrations, and the growth response was determined by DNA synthesis ([3H]thymidine incorporation). EGF, IGF-I, and IGF-II, as single peptides, stimulated DNA synthesis, with half-maximal stimulatory concentrations of 0.25 ng/ml for EGF, 2.0 ng/ml for IGF-I, and 25 ng/ml for IGF-II, respectively. These findings indicate that astroglial cells are responsive to these growth factors in physiological concentrations, with the relative sensitivity of EGF greater than IGF greater than IGF-II. When EGF and IGF-I were added in combination, the growth stimulatory effect was greater than the additive effects of each growth factor added alone, indicating that the two growth factors act in synergism with each other. In particular, addition of increasing concentrations of EGF from 0.25-10 ng/ml to a constant concentration of 50 ng/ml IGF-I resulted in significant potentiation of [3H]thymidine incorporation of astroglial cells. To determine if the synergistic effect was due to a local synthesis of IGF-I by astroglia, a specific monoclonal antibody against IGF-I (Sm 1.2) was added to the peptides. Sm 1.2 decreased not only IGF-I-stimulated DNA synthesis, but also EGF-stimulated DNA synthesis, suggesting that the effects of EGF were contributed to in part by the local synthesis of IGF-I by astroglial cells. Analysis of conditioned medium from cells treated with EGF revealed a significant increase (approximately 2-fold) in IGF-I (from 4.5 to 8.8 ng/ml), but not IGF-II. To determine if the EGF effect on IGF synthesis was at the level of IGF-I mRNA transcription, stable IGF-I mRNA levels were determined in the astroglial cells before and after stimulation with EGF, using Northern analysis and quantification by densitometry. Astroglia expressed four IGF-I mRNA transcripts as in the adult and fetal liver, but only one (3.6 kilobases) IGF-II mRNA.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Prolonged hypoxia induced by the reduction of maternal uterine blood flow alters insulin-like growth factor-binding protein-1 (IGFBP-1) and IGFBP-2 gene expression in the ovine fetus.

Insulin-like growth factors (IGF-I and IGF-II) are potent mitogenic and differentiating peptides which are synthesized by many fetal tissues. In the circulation and tissue fluids, IGFs are bound to binding proteins (BPs) which not only function as carrier proteins, but also inhibit or modulate the biological actions of IGFs. We have previously shown that prolonged hypoxia in the ovine fetus induced by the reduction of maternal uterine blood flow for 24 h causes a reduction in the DNA synthesis rate in selected fetal tissues. To determine if this effect is due to alterations in the local synthesis of tissue IGFs and their binding proteins or to changes in systemic concentrations of IGFs and IGFBPs, we have investigated the abundance of mRNAs encoding IGFs and IGFBPs in selected tissues and changes in plasma IGFs and IGFBPs. Ovine fetuses (115-120 days gestation; n = 6) underwent 24 h of hypoxia by the reduction of maternal uterine blood flow (RUBF). Controls (n = 6) underwent the same surgical procedure without RUBF. Serial plasma samples were collected before, during, and after the experiment, and tissues were collected at the end of 24 h. Mean plasma IGF-I and IGF-II concentrations tended to be lower in hypoxic fetuses than in controls during the course of hypoxia, but these differences were not statistically significant. Tissue mRNA levels for IGF-I and IGF-II in lung, muscle, thymus, and kidney were similar in control and hypoxic fetuses after 24 h of hypoxia. The relative abundance of liver IGF-I and IGF-II mRNAs was lower in hypoxic fetuses, but only IGF-I mRNA levels were significantly different from the control values (P < 0.05). Compared to control fetuses, IGFBP-1 mRNA levels in the liver of hypoxic fetuses were increased 3- to 7-fold, and IGFBP-1 mRNA expression was induced in kidneys of some hypoxic fetuses (two of six). In addition, IGFBP-2 mRNA levels were decreased in the liver (50%) and kidney (30%) of hypoxic fetuses. The increase in liver IGFBP-1 mRNA abundance and the decrease in liver and kidney IGFBP-2 mRNA abundance were accompanied by an increase in IGFBP-1 levels and a decrease in IGFBP-2 levels in fetal plasma. No changes were observed in either plasma levels or tissue mRNA abundance for IGFBP-3. Analysis of the time course of changes in plasma revealed that the changes in IGFBP-1 and IGFBP-2 occurred within 4 h of hypoxia.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Nutritional regulation of insulin-like growth factor-binding protein gene expression in the ovine fetus and pregnant ewe.

The factors controlling the synthesis and degradation of the insulin-like growth factor-binding proteins (IGFBPs) during pregnancy are poorly understood. To clarify the roles of nutritional factors in the regulation of fetal and maternal IGFBP production, we examined the effects of fasting, refeeding, and glucose administration on plasma IGFBP concentrations and hepatic IGFBP mRNA levels in fetal lambs and pregnant ewes (n = 24). Maternal fasting for 3 days in late gestation stimulated a 50-100% increase in maternal plasma BP-1 concentrations (P < 0.05) and a 2- to 3-fold increase in fetal plasma BP-1 (P < 0.05), as determined by densitometric analysis of Western ligand blots. Fasting also stimulated a 40-70% increase in maternal plasma BP-2 concentrations (P < 0.05), but had no significant effect on fetal plasma BP-2 levels. Levels of hepatic BP-1 mRNA in the fetus and pregnant ewe during fasting paralleled plasma BP-1 levels, suggesting that fasting modulates fetal and maternal plasma BP concentrations at least in part through effects on hepatic gene expression. The effects of fasting on both mRNA and plasma levels of BP-1 and BP-2 were reversed by 3 days of refeeding and were prevented by glucose infusion during fasting. When ewes were made hyperglycemic by the infusion of hypertonic glucose, plasma BP-1 and BP-2 concentrations varied inversely with blood glucose concentrations. In addition, hyperglycemia reduced maternal liver BP-1 and BP-2 mRNA levels and fetal BP-1 mRNA levels by 50-65%. Direct administration of hypertonic glucose to the fetus decreased fetal plasma BP-1 levels acutely and reduced fetal BP-1 mRNA levels by 57%, but had no effect on fetal plasma BP-2 or fetal hepatic BP-2 mRNA levels. These findings indicate that glucose and other nutritional factors regulate gene expression and plasma levels of BP-1 and BP-2 in the pregnant ewe and BP-1 in the fetal lamb. The changes in expression of these IGFBPs during fasting and hyperglycemia may play roles in adaptation of the pregnant mother and fetus to metabolic stress.

Animal Nutritional Physiological Phenomena↗

Insulin-like growth factor-II (IGF-II) messenger ribonucleic acid is expressed in steroidogenic cells of the developing ovine adrenal gland: evidence of an autocrine/paracrine role for IGF-II.

Insulin-like growth factors (IGFs) are potent mitogenic and differentiation-promoting factors that regulate the growth and development of many fetal tissues. Their role in the development of the adrenal gland and activation of its function is not known. The latter is crucial in providing the stimulus for the maturation of various fetal organs and determines the onset of parturition in sheep. To examine the hypothesis that IGFs are important autocrine/paracrine regulators of fetal adrenal development in vivo, we localized IGF-I and IGF-II mRNAs and peptides in the adrenal glands of developing sheep fetuses and correlated the cellular distribution with localization of 3 beta-hydroxysteroid dehydrogenase, tyrosine hydroxylase, and phenylethanolamine-N-methyltransferase enzymes by immunohistochemistry. Adrenal glands from 60- to 75-day-old (n = 4), 100- to 110-day-old (n = 4), 120- to 130-day-old (n = 4), and 145- to 147-day-old (term; n = 4) fetal sheep and 1- to 4-day-old newborn lambs (n = 4) were dissected and either snap-frozen or fixed. Total RNAs were subjected to Northern analysis using ovine IGF-I and IGF-II cDNA probes. Seven IGF-II transcripts of 1.2-6.0 kilobases (kb) were identified in the adrenal glands of fetuses at all gestational ages, and in the newborn. By densitometry, the abundance of IGF-II mRNA was highest in the fetal adrenal gland at 60 days, decreased slightly between 60 and 100 days, remained relatively constant until term, and decreased significantly after birth. At all gestational ages, IGF-II mRNA was detectable in significantly greater abundance than IGF-I mRNA. IGF-I and IGF-II mRNAs were localized by in situ hybridization using 35S-labeled anti-sense cRNA probes, and the peptides by immunohistochemistry using specific antisera. Low levels of IGF-I mRNA were detected in the zona fasciculata, but not in the zona glomerulosa. There was strong hybridization of the IGF-II cRNA to the zona glomerulosa and fasciculata and to the capsule. The hybridization signal was greater in the zona fasciculata than in the zona glomerulosa. IGF-II mRNA was also detected in groups of cells within the medulla. Localization of IGF-II mRNA by in situ hybridization correlated well with the distribution of IGF-II immunoreactivity and with 3 beta-hydroxysteroid dehydrogenase-positive cells in the cortex and in groups of cells within the medulla.(ABSTRACT TRUNCATED AT 400 WORDS)

Adrenal Cortex↗

The characterization and expression of ovine insulin-like growth factor-binding protein-2.

We have isolated an ovine insulin-like growth factor-binding protein-2 (IGFBP-2) cDNA from an adult sheep cDNA library, to determine the structure of ovine IGFBP-2 and to examine the pattern of IGFBP-2 gene expression in adult sheep tissues. This cDNA had 81, 96 and 87% identity with the rat, bovine and human sequences respectively. The deduced amino acid sequence of the ovine IGFBP-2 showed 86, 95 and 85% homology with the rat, bovine and human peptide sequences respectively. The ovine IGFBP-2 cDNA encoded a precursor protein of 317 amino acids which comprised a 33 residue hydrophobic leader sequence and a 284 residue, 30.9 kDa, mature peptide. The 18 cysteine residues, which are a characteristic feature of IGFBPs, were conserved. Also, an Arg-Gly-Asp (RGD) sequence near the C terminus was present. A single transcript of approximately 1.5 kb was expressed in abundance in selected tissues of an adult sheep, namely liver, kidney, adrenal, pituitary and choroid plexus. Southern blot analysis of ovine genomic DNA with the cDNA probe demonstrated that IGFBP-2 is encoded by a single gene. These findings indicate that the ovine IGFBP-2 protein is similar to that in other species and that, in the adult, the mRNA is expressed only in selected tissues.

Amino Acid Sequence↗

Regional expression of transforming growth factor-alpha mRNA in the rat central nervous system.

The expression of transforming growth factor-alpha (TGF alpha) mRNA in various regions of the adult rat central nervous system (CNS), as well as in selected peripheral tissues was examined using Northern blot analysis. The highest expression was also found in the cerebral spinal cord, with the levels of TGF alpha mRNA being 5- to 6-fold higher in this tissue than in any other examined. Significant expression was also found in the olfactory bulb, anterior olfactory nucleus, corpus striatum, hippocampus, ventral mesencephalon and caudal brainstem. Of the peripheral tissues examined, only adrenal gland expressed TGF alpha mRNA at similar levels. Lower, but detectable, expression was found in prefrontal cortex, cerebral cortex and cerebellum. The latter levels were similar to those observed in lung, liver, kidney and, variable, salivary gland. These data demonstrate a widespread but differential distribution of TGF alpha mRNA throughout the rat CNS, and indicate relatively high levels of expression of this growth factor in central versus peripheral tissues.

Animals↗