Search PubMed⌕ Search

Biomedical subjects

Keiji Iida

Publications and source records attributed to Keiji Iida.

At least 19 recordsLinked to original sources

Neither intravenous nor intracerebroventricular administration of obestatin affects the secretion of GH, PRL, TSH and ACTH in rats.

To examine the effect of obestatin, a recently identified peptide derived from preproghrelin, on pituitary hormone secretion, obestatin was administered in anesthetized male rats. Intravenous administration of obestatin did not show any effect on plasma GH, PRL, ACTH and TSH levels. Since obestatin has been reported to have opposite effects of ghrelin in regulating food intake, gastric emptying and intestinal contractility, GH suppressive effect, which is opposite effect of ghrelin, was tested. Intravenous administration of GHRH or GHRP-2, a ghrelin receptor ligand, resulted in a marked plasma GH elevation. However obestatin did not show any effect on GHRH- or GHRP-2-induced GH rise. Furthermore intracerebroventricular administration of obestatin also did not influence plasma GH, PRL, ACTH and TSH levels. These findings suggest that obestatin has no effect on pituitary hormone secretions despite the presence of GPR39, a receptor for obestatin, in the pituitary.

Adrenocorticotropic Hormone↗

The N131S mutation in the von Hippel-Lindau gene in a Japanese family with pheochromocytoma and hemangioblastomas.

von Hippel-Lindau (VHL) disease (VHLD) is a hereditary autosomal dominant syndrome that causes various benign and malignant tumors. VHLD is caused by mutations in the VHL tumor suppressor gene. Here, we report a mutation in the VHL gene in a Japanese family with VHLD type 2A, characterized by pheochromocytoma (PHE), and hemangioblastomas (HAB) in both the retina and thoracic spinal cord but without renal cell carcinoma (RCC). We identified a heterozygous A to G point mutation at the second base of codon 131 of the VHL protein (pVHL). This mutation was predicted to convert codon 131 from asparagine to serine (N131S). Although most mutations in VHLD type 2A have been detected in the alpha domain of pVHL, the present mutated amino acid was located at the region encoding the beta domain of pVHL. Previous patients with the N131K or N131T mutation in pVHL developed VHLD type 2B with RCC or VHLD type 1 without PHE, respectively. We also identified somatic loss of heterozygosity (LOH) at chromosome 3p25-26 in the adrenal tumor of the patient. The results of our study suggest that not only the location of mutation but also the altered amino acid may be critical for determining the clinical phenotype of VHLD. LOH was associated with the development of PHE in a patient with the N131S mutation in pVHL.

Adrenal Gland Neoplasms↗

A novel mutation in the von Hippel-Lindau tumor suppressor gene identified in a Japanese family with pheochromocytoma and hepatic hemangioma.

Von Hippel-Lindau (VHL) syndrome is a neoplastic syndrome caused by a mutation in the VHL gene. There is a discrepancy between the phenotypes of human VHL syndrome and VHL gene-disrupted mouse models. A heterozygous VHL gene-disrupted model (vhl +/-) developed hepatic vascular lesions; in contrast, hepatic hemangioma is a rare manifestation of human VHL syndrome. We identified a novel mutation (P154S) in the VHL gene in a Japanese family with pheochromocytoma. One of the members demonstrated hepatic hemangiomas, suggesting that there may be a relationship between the mutation of the VHL gene and hepatic vascular lesions, even in humans.

Adrenal Gland Neoplasms↗

Gene expression profile in the heart of spontaneous dwarf rat: in vivo effects of growth hormone.

Excess and deficit of growth hormone (GH) both affect cardiac architecture as well as its function. To date, experimental and clinical studies have reported that GH has an inotropic effect on animal and human heart, however, it remains controversial whether GH is applicable to the treatment for the patients with chronic heart failure. Also, the mechanism by which GH exerts these biological effects on the heart is not well understood. In this study, we attempted to specify the genes regulated by GH in the heart of spontaneous dwarf rat using a microarray analysis. We found that soluble forms of guanylate cyclase, cofilin1, and thymosin beta4 mRNA were up-regulated in the heart by GH treatment. On the other hand, acyl-CoA synthetase, aldosterone receptor, myosin regulatory light chain, troponin T, laminA, and beta-actin mRNA were down-regulated. These results suggest GH regulates essential molecules that regulate structural, contractile, remodeling, and regenerative functions. Collectively, our data indicate a new integrative understanding for the biological effects of GH on cardiac function.

Animals↗

Addition of spironolactone to an angiotensin-converting enzyme inhibitor decreases lung congestion and edema in Dahl hypertensive rats.

We investigated the effect of adding spironolactone to treatment with an angiotensin-converting enzyme (ACE) inhibitor, imidapril, in Dahl salt-sensitive (DS) hypertensive heart failure rats with preserved systolic function. Male DS rats were fed laboratory chow containing 8% NaCl from 7 weeks of age. Rats were divided into four groups and treated for 9 weeks with vehicle alone (water; n = 23), the ACE inhibitor imidapril (1 mg kg(-1) day(-1); n = 16), spironolactone (2 mg kg(-1) day(-1); n = 15), or a combination of imidapril and spironolactone at the doses above (n = 16). The left ventricular weight to body weight (BW) ratio was significantly lower in the imidapril group (3.28 +/- 0.30 mg g(-1)) and the combination group (3.34 +/- 0.38 mg g(-1)) than in the vehicle group (3.71 +/- 0.46 mg g(-1)). Adding spironolactone to imidapril inhibited an increase in the ratio of lung weight to BW (4.38 +/- 0.50 mg g(-1)) related to high salt intake, while monotherapy (imidapril group, 4.61 +/- 0.90 mg g(-1); spironolactone group, 5.40 +/- 2.50) did not significantly change the ratio from that seen with vehicle treatment (6.32 +/- 3.62 mg g(-1)). All active treatments (imidapril, 0.66% +/- 0.67%; spironolactone, 0.51% +/- 0.55%; both together, 0.31% +/- 0.26%) inhibited a salt-intake related increase in the percentage area representing fibrous tissue compared with vehicle treatment alone (1.81% +/- 1.51%). These findings suggest that adding spironolactone to an ACE inhibitor is more effective in improving pulmonary congestion and edema in hypertensive heart failure with preserved systolic function than an ACE inhibitor alone.

Angiotensin-Converting Enzyme Inhibitors↗

[Diuretics].

Diuretics interfere with the sodium retention of heart failure by inhibiting the reabsorption of sodium in the renal tubes, increase urine output and decrease physical signs of fluid retention in patients with heart failure (HF). Diuretics are the only drugs used for the treatment of HF that can adequately control the fluid retention of HF. Loop diuretics, potassium-sparing agents and thiazides are used for treatment. Tolvaptan, vasopressin receptor antagonists, is a new drug and long-term clinical trials are under way to determine the role. The use of inappropriate doses of diuretics will lead to result in fluid retention, renal insufficiency with ACE inhibitors and ARBs, increase the risk of treatment with beta blockers or volume contraction, increase the risk of hypotention and diminish the response to ACE inhibitors and ARBs. Appropriate use of diuretics is important in the success of the treatment of HF.

Diuretics↗

A slight increase of fasting plasma glucose after 2 years was associated with electrocardiogram changes suggestive of coronary heart disease in normal subjects.

BACKGROUND: Much attention has been focused on the primary prevention of ischemic heart disease (IHD), but the prevalence and prognostic indicators of IHD remain unclear in healthy Japanese subjects. HYPOTHESIS: The purpose of this study was to determine the predictors for the transition of IHD in healthy adult subjects using data from annual medical examinations. METHODS: We analyzed clinical data on 2710 healthy subjects (1836 men and 874 women aged 26-76 years in 2000) who underwent medical examinations in both 2000 and 2002. Ischemic changes in the electrocardiogram (ECG) suggestive of IHD were defined as the existence of abnormal Q-wave and/or ST-T abnormalities without left ventricular high voltage. We assigned the subjects to two groups: the ischemic heart group (Group I), including subjects with normal ECG findings in 2000, followed by suspicious ischemic changes in the ECGs in 2002; and the normal group (Group N), including subjects with normal ECGs in both 2000 and 2002. RESULTS: Fifty-nine subjects (2%, 20 women) were assigned to Group I and 2,538 subjects (96%, 810 women) were assigned to Group N. There were significant differences between the two groups in baseline age (Group I vs. Group N: 53 vs. 47 years, p < 0.001), body mass index (24 vs. 23 kg/m2, p = 0.036), systolic blood pressure (132 vs. 122 mmHg, p < 0.001), diastolic blood pressure (83 vs. 76 mmHg, p < 0.001), and fasting plasma glucose (109 vs. 96 mg/dl, p < 0.001). Fasting plasma glucose significantly increased in Group I (from 109 to 113 mg/dl, p = 0.034) during the study. Multivariate analysis showed significant differences in age (p < 0.001) and fasting plasma glucose (p = 0.0053). CONCLUSION: Advanced age and relatively elevated fasting plasma glucose appeared to be significant predictors of ECG findings suggestive of IHD in normal subjects in the short period of 2 years.

Adult↗

Absence of ghrelin protects against early-onset obesity.

The gut peptide ghrelin, the endogenous ligand for the growth hormone secretagogue receptor, has been implicated not only in the regulation of pituitary growth hormone (GH) secretion but in a number of endocrine and nonendocrine functions, including appetitive behavior and carbohydrate substrate utilization. Nevertheless, recent genetic studies have failed to show any significant defects in GH levels, food intake, or body weight in adult ghrelin-deficient (Ghrl-/-) mice. Here we demonstrate that male Ghrl-/- mice are protected from the rapid weight gain induced by early exposure to a high-fat diet 3 weeks after weaning (6 weeks of age). This reduced weight gain was associated with decreased adiposity and increased energy expenditure and locomotor activity as the animals aged. Despite the absence of ghrelin, these Ghrl-/- mice showed a paradoxical preservation of the GH/IGF-1 axis, similar to that reported in lean compared with obese humans. These findings suggest an important role for endogenous ghrelin in the metabolic adaptation to nutrient availability.

Animal Feed↗

Muscle mechano growth factor is preferentially induced by growth hormone in growth hormone-deficient lit/lit mice.

Two muscle insulin-like growth factor-I (IGF-I) mRNA splice variants (IGF-IEa and IGF-IEb) have been identified in rodents. IGF-IEb, also called mechano growth factor (MGF) has been found to be upregulated by exercise or muscle damage. Growth hormone (GH) is the principal regulator of IGF-I expression in several tissues including skeletal muscle. Therefore, we investigated the effect of chronic GH excess or disruption of GH receptor (GHR) signalling, and the acute effect of GH administration on expression of muscle IGF-I isoforms using transgenic mice that express bovine GH (bGH), GHR gene-disrupted (GHR-/-) mice and GH-deficient lit/lit mice before and after exogenous GH administration. MGF mRNA in skeletal muscle was increased in bGH mice whereas it was decreased in GHR-/- mice compared with control animals. Exogenous GH administration to dwarf lit/lit mice significantly increased muscle MGF but not IGF-IEa mRNA 4 h after treatment. Twelve hours after GH treatment, both MGF and IGF-IEa mRNAs in muscle were increased compared with vehicle-treated lit/lit mice. In contrast in GH-sufficient lit/+ mice, both MGF and IGF-IEa mRNAs were increased 4 h after and returned to the basal level 12 h after GH treatment. Hepatic IGF-I isoforms were regulated in parallel by GH. Thus, our results demonstrated that: (1) MGF mRNA in skeletal muscle is expressed in parallel with GH action; (2) MGF mRNA in muscle is produced preferentially in the situation of GH deficiency in contrast to the pattern in the GH-sufficient state; and (3) the induction of IGF-I isoforms by GH is tissue-specific.

Animals↗

Regulation of full-length and truncated growth hormone (GH) receptor by GH in tissues of lit/lit or bovine GH transgenic mice.

Two truncated isoforms of growth hormone (GH) receptor (GHR) were identified in mice and in humans. The proteins encoded by these isoforms lack most of the intracellular domain of the GHR and inhibit GH action in a dominant negative fashion. We have quantified the mRNAs encoding the GHR isoforms in mouse tissues by use of real-time RT-PCR and examined the effect of GH excess or deficiency on regulation of mRNA levels of the GHR isoforms in vivo. In the liver, the truncated GHR mRNAs (mGHR-282 and mGHR-280) were 0.5 and <0.1%, respectively, the level of full-length GHR (mGHR-fl). In skeletal muscle, the values were 2-3 and 0.1-0.5% of mGHR-fl, respectively, and in subcutaneous fat, the values were 3-5 and 0.1-0.5% of mGHR-fl, respectively. The bovine GH transgenic mice showed a significant increase of mGHR-fl in liver but a significant decrease in skeletal muscle, with no difference in subcutaneous fat when compared with control mice. The lit/lit mice showed a significant decrease of mGHR-fl in liver, no difference of mGHR-fl in muscle, and a significant increase of mGHR-fl in subcutaneous fat when compared with lit/+ mice. The mRNA of mGHR-282 was regulated in parallel with mGHR-fl in all tissues of all mice examined, whereas that of mGHR-280 was not changed in either GH-excess or GH-deficient states. In conclusion, two truncated isoforms of GHR mRNAs were detected in liver, skeletal muscle, and subcutaneous fat of mice. The ratio of GHR-tr to GHR-fl mRNA was tissue specific and not affected by chronic excess or deficiency of GH.

Adipose Tissue↗

Up-regulation of mitochondrial transcription factor 1 mRNA levels by GH in VSMC.

It is well known that growth hormone (GH) is involved in the development of arteriosclerosis in which vascular smooth muscle cells (VSMC) play an important role. In this study, we attempted to specify the genes up- or down-regulated by recombinant human GH (rhGH) in VSMC using a differential display method. We found that rhGH increased cytochrome oxidase subunit II/III mRNA in VSMC. Furthermore, the mRNA for mitochondrial transcription factor 1 (mtTF1), which stimulates the expression of cytochrome oxidase subunit II/III, was found to be up-regulated by rhGH in a dose dependent manner using a quantitative PCR method. On the other hand, IGF-I alone did not change mtTF1 mRNA levels. In rat L6 myoblasts and rat H4-II-E hepatocytes, rhGH did not change mtTF1 mRNA levels. Pretreatment with a JAK2 inhibitor AG490 (10 nM) and a MEK inhibitor PD98059 (10 microM) suppressed rhGH-induced rise in mtTF1 mRNA levels of VSMC to the control levels. Pretreatment with a PI-3kinase inhibitor wortomannin (1 nM) did not suppress rhGH-induced rise in mtTF1 mRNA levels. These findings suggest that GH up-regulates mtTF1 mRNA levels through JAK2 and MEK signaling in VSMC.

Androstadienes↗

Tissue-specific regulation of growth hormone (GH) receptor and insulin-like growth factor-I gene expression in the pituitary and liver of GH-deficient (lit/lit) mice and transgenic mice that overexpress bovine GH (bGH) or a bGH antagonist.

GH has diverse biological actions that are mediated by binding to a specific, high-affinity cell surface receptor (GHR). Expression of GHR is tissue specific and a requirement for cellular responsiveness to GH. IGF-I is produced in multiple tissues and regulated in part by GH through GHR. In this study, we evaluated GHR and IGF-I mRNA expression in pituitary gland and compared the levels with those derived from liver of bovine GH transgenic, GH antagonist transgenic, lit/lit mice, and their respective controls using real-time RT-PCR. In liver, both GHR and IGF-I mRNA expressions were regulated in parallel with GH action in all three animal models, and there was a strong correlation between GHR and IGF-I mRNA levels. In the pituitary gland, increased expression of IGF-I mRNA in the pituitary of bovine GH transgenic mice was observed, whereas IGF-I expression in GH antagonist transgenic or lit/lit mice was similar to that observed in control animals. There were no differences of GHR mRNA levels in pituitary gland of any groups we examined. There was also no correlation between GHR and IGF-I mRNA levels in any group in the pituitary gland. In conclusion, we found that hepatic GHR and IGF-I mRNA levels were strongly correlated with each other in chronic GH excess or deficient state, and that regulation and correlation between local GHR and IGF-I mRNA levels induced by GH is different between liver and pituitary gland.

Animals↗

Lack of contribution of 11betaHSD1 and glucocorticoid action to reduced muscle mass associated with reduced growth hormone action.

11Beta-hydroxysteroid dehydrogenase 1 (11beta-HSD1) is expressed in several tissues and converts inactive glucocorticoids (GC) to active GC. 11betaHSD1 activity, evaluated by urine cortisol metabolites, is increased in patients with hypopituitarism and decreased by GH replacement. Skeletal muscle wasting is one of the major characteristics of GH deficiency (GHD). We hypothesized that increased 11betaHSD1 activity and increased GC action in skeletal muscle may play a role in the development of muscle atrophy observed in GHD patients. Glutamine synthetase (GS) mRNA in muscle has been reported to be related to GC-induced muscle atrophy. In this study, we measured mRNA levels of 11betaHSD1 and GS in skeletal muscle of GH receptor gene disrupted (GHR-/-) mice and of their age-matched wild-type mice controls to elucidate the physiological significance of 11betaHSD1 and GC in the development of GHD-associated muscle atrophy in vivo. We also measured the expression of these genes in hypertrophied muscles of giant, bovine GH transgenic mice. In skeletal muscle, although IGF-I mRNA levels were decreased in GHR-/- mice, 11betaHSD1 mRNA levels were not significantly changed compared to wild-type mice. In addition, expression level of 11betaHSD1 in muscle was lower compared to that seen in liver. GS mRNA in skeletal muscle of GHR-/- mice was not significantly different from that of controls. In bGH mice, 11betaHSD1 and GS mRNA levels were not altered compared to control mice. These data do not support a significant role of 11betaHSD1 and GC action in skeletal muscle in the development of muscle atrophy associated with GHD.

11-beta-Hydroxysteroid Dehydrogenases↗

Diurnal variation in growth hormone receptor messenger ribonucleic acid in liver and skeletal muscle of lit/+ and lit/lit mice.

The present study investigated the diurnal variation in GH receptor (GHR) mRNA in liver and skeletal muscle of 3-month-old GH-deficient and -sufficient mice using quantitative real-time RT-PCR. lit/lit (GH deficient) or lit/+ (GH sufficient) mice were fed ad libitum and lights were on between 0600 and 2000. Tissues were collected at 0800-1000, 1200-1400 and 2000-2200. Hepatic GHR mRNA levels of lit/+ mice at 0800-1000 were significantly lower than those at 1200-1400 and 2000-2200. There was no significant variation in hepatic GHR mRNA of lit/lit mice. In skeletal muscle, GHR mRNA levels of both lit/+ and lit/lit mice at 1200-1400 were significantly higher than those at 0800-1000 and 2000-2200. There was also a diurnal change in hepatic IGF-I mRNA levels of lit/+ but not of lit/lit mice; the levels were lowest at 0800-1000 in lit/+ mice. On the other hand, there was no variation in IGF-I mRNA levels in skeletal muscle. These results suggest that 1) there is a diurnal variation in GHR expression in liver and skeletal muscle and the pattern of the variation is tissue specific; 2) GH deficiency blunted the diurnal variation in GHR mRNA in liver but not that in skeletal muscle; 3) IGF-I mRNA expression in liver is more closely related to GHR mRNA expression than that in skeletal muscle.

Animals↗

A variety of phenotype with R161Q germline mutation of the von Hippel-Lindau tumor suppressor gene in Japanese kindred.

Von Hippel-Lindau (VHL) syndrome is an autosomal dominant neoplastic disorder characterized by hemangioblastomas of the central nervous system and retina, renal cell carcinomas, pheochromocytoma, and islet cell tumors. This syndrome is closely related with the VHL, a tumor suppressor gene, implying that loss of function or inactivating mutations of both alleles or copies of this gene cause tumor formation. The product of the VHL gene, pVHL, is known to be a component of ubiquitin ligase which targets the transcription factor such as hypoxia-inducible factor (HIF) for degradation in the presence of oxygen. Different VHL mutations confer different site-specific risks of cancer. However, the precise role of pVHL to develop only some specified tumors, especially pheochromocytoma, is not fully understood. We identified a missense mutation of VHL gene, 695 G --> A (R161Q), in a Japanese kindred with type 2A VHL syndrome. We analysed 16 members of this family and detected the same mutation in 8 individuals. All 5 members with tumors possessed the same mutation. Interestingly, one of the identical twins, who had the same R161Q germline mutation, did not show any visible tumors throughout the body, while another of the twins developed a huge pheochromocytoma and retinal angioma. Moreover, one of the affected members in the kindred developed pancreatic neuro-endocrine tumors without pheochromocytoma in spite of possessing the identical germline mutation of the VHL gene. These findings suggest that there are some other additional factors including environmental exposures to initiate and develop tumor formation in the VHL syndrome although abnormalities of VHL gene might be involved.

Base Sequence↗

Diverse regulation of full-length and truncated growth hormone receptor expression in 3T3-L1 adipocytes.

Two truncated forms of growth hormone (GH) receptor (GHR), 1-277 and 1-279, were reported to be normally produced in human tissues by alternative splicing in exon 9 and its boundary. We found previously that GHR-277 exerts a dominant-negative effect on full-length GHR (GHR-fl)-mediated GH signaling causing short stature. The existence of truncated GHRs (hGHR-tr) in normal tissues suggests that hGHR-tr may play a physiological role in regulation of GH action at the cellular level. To clarify the physiological significance of GHR-tr and the regulation mechanism of GHR-tr expression, we examined the expression of mouse GHR-tr (mGHR-tr) mRNA in mouse adipocyte 3T3-L1 cells, comparing with that of mouse GHR-fl (mGHR-fl). The mRNAs of two mGHR-tr, mGHR-282 and mGHR-280, were detected by RT-PCR methods using specific primers. Although the mGHR-282 and mGHR-280 mRNA levels were approximately 100 times lower than that of mGHR-fl in mature 3T3-L1 cells, quantitative analysis by competitive RT-PCR methods revealed that the mRNA levels of mGHR-280 in 3T3-L1 cells were transiently reduced and thereafter increased during differentiation from preadipocyte to adipocyte. In contrast, the mRNA levels of mGHR-fl were increased in parallel with the progress of differentiation. Stimulation by GH of differentiated 3T3-L1 mature adipocytes resulted in dose-dependent increases of the mRNA of both mGHR-fl and mGHR-282, whereas it caused a paradoxical decrease of the mRNA of mGHR-280 stimulated by high concentration of GH. These findings suggest that the expressions of truncated mGHRs were regulated in a different manner from that of mGHR-fl, thereby modulating GH action in murine adipocytes.

3T3 Cells↗