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Biomedical subjects

M Losa

Publications and source records attributed to M Losa.

At least 19 recordsLinked to original sources

[New faces, forgotten diseases:border medical examination of asylum seekers' children 1990-1991].

Hitherto there has been no epidemiologic basis for the extent of initial medical examination (IME) of children of refugees. In Switzerland little data is published on the incidence of diseases among refugees; in particular information on their children is scarce. We report the results of IME in these children in the Canton of Zürich from 1 July 1990 to 30 June 1991. The Federal Refugees Office assigned 1487 children to the Canton of Zürich. 920 children (61.9%) were registered, 259 (17.4%) at Zürich Children's Hospital and 661 with local physicians (44.5%). The current IME included a tuberculin skin test only, with additional hepatitis B screening of children from high risk countries. At the Zürich Children's Hospital the IME was extended: every child was examined clinically and a history was taken. The findings in the children examined at the Zürich Children's Hospital were as follows: 171 (66%) were healthy. 5 children (2%) had tuberculosis, 2 (0.8%) vitamin D deficiency rickets, 5 (2%) had iron deficiency anemia, 9 had hepatitis B (all recovered), 25 (9.7%) had various skin diseases and in 51 a variety of diseases of differing clinical significance were diagnosed. The local physicians found a similar incidence of tuberculosis, vitamin D deficiency rickets, iron deficiency anemia and skin diseases.(ABSTRACT TRUNCATED AT 250 WORDS)

Anemia, Hypochromic

Solitary plasmacytoma of the sphenoid sinus involving the pituitary fossa: a case report and review of the literature.

A rare case of solitary plasmacytoma of the sphenoid sinus involving the pituitary fossa is reported. A 50-year-old woman with a history of diplopia and a mass in the sphenoid sinus and the sellar region, documented by computed tomography, was referred to our department with a presumed diagnosis of nonfunctioning pituitary adenoma. The clinical and biochemical characteristics were unrevealing, but magnetic resonance imaging examination demonstrated the extrapituitary origin of the lesion. The patient was operated on by the transsphenoidal approach, and the lesion was histologically diagnosed as a plasmacytoma. Review of the literature disclosed 11 previously described cases of myelomatous disease presenting clinically as a pituitary adenoma. Our case demonstrates that magnetic resonance imaging investigation may help in distinguishing the extrapituitary origin of a mass involving the pituitary fossa.

Adenoma

Growth-hormone releasing hormone in a bronchial carcinoid.

The case is reported of a 43-year-old patient with a peripherally located bronchial carcinoid tumor containing large amounts of immunoreactive and bioactive growth-hormone releasing hormone (GHRH). Because no GHRH was found in the peripheral circulation, there was no quantitative or qualitative derangement of growth-hormone secretion. The tumor was excised completely by thoracotomy.

Adult

Plasma growth hormone (GH)-releasing hormone levels in patients with lung carcinoma.

OBJECTIVE: The aim was to investigate the serum levels of growth hormone releasing hormone and GH in patients with lung carcinoma. DESIGN After an overnight fast a plasma sample was collected for determination of growth hormone releasing hormone and GH. PATIENTS: The investigation was performed in 28 patients with non small cell lung carcinoma, in 44 patients with small cell lung carcinoma, and 10 patients with non malignant lung disease. A group of 37 normal subjects served as control. MEASUREMENTS: Growth hormone releasing hormone and GH were determined by radioimmunoassay. RESULTS: Patients with small cell lung carcinoma showed higher plasma growth hormone releasing hormone levels (49 +/- 9.4 ng/l) than control subjects (16.3 +/- 2.1 ng/l; P less than 0.05), patients with non small cell lung carcinoma (23.9 +/- 8.8 ng/l; P less than 0.05), and patients with non malignant lung disease (12.7 +/- 5.5; P less than 0.05). Basal GH level was lower than 5 micrograms/l in all patients except five patients with small cell lung carcinoma and one patient with non small cell lung carcinoma. CONCLUSIONS: The higher plasma growth hormone releasing hormone levels in patients with small cell lung carcinoma compared to normal controls and patients with non small cell lung carcinoma and patients with non malignant lung disease, confirm the frequent neuroendocrine activity of this particular tumour.

Adult

Acromegaly and thymic hyperplasia: a case report.

Growth hormone overproduction is characterized by increased size of visceral organs as well as growth of bone and soft tissues. We describe a case of a 23-year-old female acromegalic patient, who had been previously unsuccessfully operated upon by transsphenoidal pituitary surgery and then irradiated. In November 1987 a routine X-ray chest examination revealed a mediastinal mass, subsequently confirmed by CT scan. The patient underwent surgical removal of the mass: macroscopical aspect, histological sections and immunocytochemistry showed typical thymic structures without any evidence of neurosecretory activity. No GH-positive cells were found and only small amounts of immunoreactive GHRH like material (9.2 ng/g wet wg) were detected in the tumor extract. Before surgery plasma GHRH levels were not elevated (26 pg/ml); serum GH and IGF-I levels were 27.4 +/- 4.9 micrograms/l and 191 nmol/l, respectively, and remained unchanged after surgery. These data ruled out a GHRH and/or GH ectopic production, confirming the primitive pituitary origin of acromegaly in this patient. It is likely that thymic hyperplasia may be explained by longstanding overproduction of GH and the young age of the patient.

Acromegaly

Presence of growth hormone-releasing hormone-like immunoreactivity in human tumors: characterization of immunological and biological properties.

The distribution and physical and biological properties of GH-releasing hormone-like immunoreactivity (GHRH-IR) in human tissues and tumors was investigated using a specific GHRH RIA, gel chromatography, immunoaffinity chromatography, and bioassay with cultured rat anterior pituitary cells. Variable concentrations of GHRH-IR, ranging from 1.4-39.0 ng/g wet wt, were found in normal liver, lung, placenta, and pancreas. In the latter tissue, however, a different chromatographic profile and a marked decrease in GHRH-IR after immunoaffinity occurred, suggesting that GHRH-IR in pancreatic extracts is not native GHRH. In all tumors examined (n = 35) GHRH-IR could be detected, and four tumors (three carcinoids and one jejunal carcinoma) contained a very high amount of GHRH-IR (greater than 1000 ng/g wet wt). Affinity chromatography of tumor extracts led to a significant loss (greater than 50%) of GHRH-IR in nine tumors. The four tumors containing large amounts of GHRH-IR were obtained from two patients with active acromegaly and two patients who had no clinical evidence of acromegaly. Using antibodies with different specificities for GHRH-(1-44) and GHRH shortened at the C-terminus, varying concentrations of GHRH-(1-44) in these tumors were found, ranging from 10-87% of the total GHRH-IR. The biological activity of GHRH in the four tumor extracts was similar to that of synthetic GHRH alone or GHRH added to control tissue subjected to extraction. These results demonstrate the presence of GHRH-IR in the majority of normal tissues and tumors, which, though they may produce large amounts of biologically active GHRH, do not always lead to acromegaly.

Adolescent

Effects of propranolol on GH responsiveness to repeated GH-releasing hormone stimulations in normal subjects.

The influence of beta-adrenergic blockade by oral propranolol on the variability of GH responses to GHRH and on GH responsiveness to repeated GHRH administrations was investigated. Eight normal volunteers underwent three tests on three separate occasions. Each test consisted of two administrations of 80 micrograms GHRH at 2-h intervals without other medication (test 1) or combined with oral administration of 80 mg propranolol 90 min before the first (test 2) or the second GHRH injection (test 3). In test 1 GH levels increased significantly after the first, but not the second GHRH bolus (net incremental area under the curve [nAUC], mean +/- SD: 1453 +/- 974 and 178 +/- 309 micrograms.l-1.(120 min)-1, respectively). In test 2 basal GH secretion was not influenced by propranolol administration, whereas the GH response to the first GHRH injection was significantly greater than in test 1 (2327 +/- 1814 micrograms.l-1.(120 min)-1; p less than 0.05). However, individual subjects showed the same variability of GH response as in test 1. The GH response to the second GHRH bolus remained negligible. In test 3 administration of propranolol 90 min before the second GHRH bolus led to a clear GH increase (690 +/- 1002 micrograms.l-1.(120 min)-1), not significantly different from the GH response to the first bolus (1796 +/- 1375 micrograms.l-1.(120 min)-1). However, only 4 subjects showed a marked restoration of the GH responsiveness to the second GHRH administration. In conclusion, oral administration of propranolol is able to increase GH responsiveness to GHRH without changing the great individual variability. The response to a repeated GHRH stimulation is only partially restored by propranolol.

Administration, Oral

[Long-term course in congenital analgesia].

We describe the longterm history of eight patients with congenital insensitivity to pain, a rare autosomal recessive condition. Pain perception did not significantly improve with increasing age, but all affected individuals learned to live with their handicap. A marked tendency to dissimulate was obvious. The longterm outcome was dominated by orthopedic complications: there were impressive arthropathic changes in knee and ankle joints but - to our surprise - no hip joint involvement. These changes are the result of skeletal injuries in childhood (fractures, aseptic bone necrosis, osteomyelitis) and of apparently progressive neuropathic lesions due to pain insensitivity. The latter resulted in marked lumbar spine changes with progressive neurological deterioration, so far requiring spondylodesis in three patients. In three pregnant women total absence of labour pain was observed. All affected individuals had anosmia but no deficits of autonomic nervous system functions.

Adult

Interaction of clonidine and GHRH on GH secretion in vivo and in vitro.

UNLABELLED: To investigate the mechanism by which clonidine stimulates GH-secretion in vivo and in vitro, we studied its interaction with GHRH. In vivo: eight or six normal male subjects were submitted to five protocols: (1) 150 micrograms clonidine orally followed by 50 micrograms GHRH 1-44 i.v. 2 h later, (2) 50 micrograms GHRH 1-44 i.v. followed by 150 micrograms clonidine orally 2 h later, (3) 150 micrograms clonidine orally followed by GHRH i.v. 30 min later, (4) 300 micrograms clonidine orally followed by 50 micrograms GHRH i.v. 3 h later and (5) 50 micrograms GHRH i.v. followed by 300 micrograms clonidine orally 90 min later. In vitro: Rat anterior pituitary cells were coincubated with clonidine (10(-11), 10(-9), 10(-7) and 10(-5) M) and GHRH (0.005, 0.05, 10 nM) for 4 h. RESULTS: 150 micrograms clonidine alone does not stimulate GH-secretion. Furthermore, the GH-increase was not significantly different when GHRH bolus was given before, after or together with clonidine. When 300 micrograms clonidine was given before GHRH GH-levels were significantly higher (max 28.6 +/- 8.0 mU/l) at 90 min, compared to when clonidine was given after GHRH (max 7.8 +/- 3.6 mU/l). The GHRH bolus after clonidine led to a significantly lower GH-increase (max 31.6 +/- 17.0 mU/l) compared to the GHRH-induced GH-increase (max 47.2 +/- 13.0 mU/l) before clonidine. In vitro, clonidine had no stimulatory effect on GHRH-stimulated GH secretion. These findings are compatible with clonidine leading to stimulation of GH by inducing endogenous GHRH release.

Adult

Effects of repetitive administration of thyrotropin-releasing hormone at short intervals in acromegaly.

We investigated the pattern of GH secretion in response to repetitive TRH administration in patients with active acromegaly and in normal subjects. Nine acromegalic patients and 10 normal subjects received three doses of 200 micrograms of TRH iv at 90-min intervals. There was a marked serum GH rise in acromegalic patients after each TRH dose (net incremental area under the curve [nAUC]: first dose = 4448 +/- 1635 micrograms.min.l-1; second dose = 3647 +/- 1645 micrograms.min.l-1; third dose = 4497 +/- 2416 micrograms.min.l-1; NS), though individual GH responses were very variable. In normal subjects TRH did not elicit GH secretion even after repeated stimulation. Each TRH administration stimulated PRL release in acromegalic patients, though the nAUC of PRL was significantly higher after the first (1260 +/- 249 micrograms.min.l-1) than after the second and the third TRH administration (478 +/- 195 and 615 +/- 117 micrograms.min.l-1, respectively; P less than 0.01). In normal subjects too, PRL secretion was lower after repeated stimulation (first dose = 1712 +/- 438 micrograms.min.l-1; second dose = 797 +/- 177 micrograms.min.l-1; third dose = 903 +/- 229 micrograms.min.l-1 P less than 0.01), though different kinetics of PRL secretion were evident, when compared with acromegalic patients. TSH secretion, assessed in only 4 patients, was stimulated after each TRH dose, though a minimal but significant reduction of nAUC of TSH after repeated TRH challenge occurred. Both T3 and T4 increased steadily in the 4 patients. The same pattern of TSH, T3, and T4 secretion occurred in normal subjects.(ABSTRACT TRUNCATED AT 250 WORDS)

Acromegaly

Evaluation of selective transsphenoidal adenomectomy by endocrinological testing and somatomedin-C measurement in acromegaly.

A series of 29 previously untreated patients with acromegaly underwent transsphenoidal adenomectomy. Pre- and postoperative evaluation consisted of measuring growth hormone (GH) secretory dynamics during an oral glucose tolerance test (OGTT), the insulin hypoglycemia test, and the thyrotropin- and gonadotropin-releasing hormone (TRH/GnRH) test, and by obtaining the basal somatomedin-C level. After surgery, clinical and biochemical amelioration was achieved in all but two patients. In the whole group, basal GH and somatomedin-C levels decreased from a mean (+/- standard error of the mean) of 52.3 +/- 12.7 to 11.1 +/- 6.3 ng/ml and from 7.6 +/- 0.7 to 2.5 +/- 0.5 U/ml, respectively. Application of different criteria of cure revealed that 19 patients (66%) had basal GH levels below 5 ng/ml, 17 patients (59%) had normal somatomedin-C values, 16 patients (55%) had complete GH suppression (less than 1 ng/ml) during OGTT, and 13 patients (45%) met the above-mentioned criteria with disappearance of the paradoxical GH response to TRH/GnRH test. Evaluation of GH secretion by insulin hypoglycemia testing was useless in assessing the outcome after neurosurgery. When only patients with a normal somatomedin-C level and complete GH suppressibility during OGTT were considered "cured," the main favorable prognostic factor was intrasellar tumor localization, since 15 (75%) of 20 patients were "cured," as opposed to only one (11%) of nine with extrasellar extension of the adenoma. During the follow-up period, no tumor recurrence was detected in any of the "cured" patients. In these subjects somatomedin-C levels remained stable in all except two patients, who showed a slow increase within the normal range of somatomedin-C concentration. These data confirm that transsphenoidal surgery is the most effective form of treatment in previously untreated acromegalic patients and that normalization of somatomedin-C levels reflects normal GH secretion. Measurement of somatomedin-C could replace more extensive endocrinological testing during monitoring of treated acromegalic patients.

Acromegaly

Effects of theophylline infusion on the growth hormone (GH) and prolactin response to GH-releasing hormone administration in acromegaly.

Since theophylline has been shown to blunt the GH response to growth hormone-releasing hormone (GHRH) in normal subjects, we investigated whether the same effect of theophylline administration could be reproduced in patients with active acromegaly. Ten acromegalic patients received on two different days 100 micrograms GHRH iv alone and the same GHRH dose during a constant infusion of theophylline (3.56 mg/min), beginning 2 h before GHRH administration. In the whole group theophylline did not affect basal GH secretion significantly (from a mean of 44.6 +/- 14.4 at 0 min to 41.8 +/- 13.5 ng/ml at 120 min). However, the amount of GH released after GHRH stimulation was lower when theophylline was concomitantly infused (7525 +/- 3709 ng min/ml vs. 12038 +/- 6337 ng min/ml; p less than 0.05). The inhibitory effect of theophylline was not homogeneous, since either marked or minimal reductions of the GHRH-stimulated GH secretion occurred. Serum PRL levels increased after GHRH administration in 6 patients and theophylline infusion had no influence upon this response. Peak GHRH levels were not different in both studies (14.9 +/- 1.7 and 17.1 +/- 4.0 ng/ml, respectively). Free fatty acid levels rose progressively during theophylline administration (from 0.66 +/- 0.10 at 0 min to 1.04 +/- 0.10 mEq/l at 240 min) and were significantly higher than after GHRH stimulation alone from 180 min up to the end of the test. Our results demonstrate that in active acromegaly theophylline blunts the GH response to GHRH, though this effect is not uniformly seen in all patients.(ABSTRACT TRUNCATED AT 250 WORDS)

Acromegaly

Insulin hypoglycemia test and releasing hormone (corticotropin-releasing hormone and growth hormone-releasing hormone) stimulation in patients with pituitary failure of different origin.

To investigate the efficacy of endocrine evaluation in diagnosing and localizing the cause of anterior pituitary failure, 17 patients with suprasellar space-occupying lesions, 4 patients with intrasellar tumors, 8 patients with no detectable anatomical lesion, 1 patient with posttraumatic failure and 1 patient with septooptical dysplasia were investigated. Endocrine evaluation consisted of measuring adrenocorticotropic hormone (ACTH), cortisol, and growth hormone (GH) levels during insulin hypoglycemia test (IHT) and after administration of corticotropin-releasing hormone (CRH) and growth hormone-releasing hormone (GRH). In addition, basal prolactin levels, gonadal and thyroid function were evaluated. The results showed that 4 of 17 patients with suprasellar tumors had normal ACTH and GH responses during IHT and after releasing hormone (RH) administration. Five of these patients had a normal ACTH or cortisol rise but no GH response during IHT. All 5 had a normal ACTH and 3 had normal GH rise after RH. Seven patients with suprasellar tumors had no ACTH or GH response during IHT, but all had an ACTH response to CRH. Only 3 of this group had a GH response to GRH. There was one exception of a patient who showed a GH and ACTH rise during IHT but only a blunted ACTH and no GH rise after RH administration. Four patients with pituitary failure and no demonstrable lesion had an ACTH rise after CRH but no GH rise after GRH, whereas in 3 patients with isolated ACTH deficiency no ACTH rise after CRH was seen. In 4 patients with nonsecreting pituitary tumors normal ACTH responses to IHT and CRH were seen, whereas GH rose during IHT only in 1 patient.(ABSTRACT TRUNCATED AT 250 WORDS)

Adolescent

Evidence for a nonspecific factor interfering in the radioimmunoassay of somatoliberin-like immunoreactivity in human seminal plasma.

In the present study we investigated the nature of somatoliberin-like immunoreactivity in human seminal plasma. In unextracted seminal plasma, somatoliberin-like immunoreactivity represented 3.8 micrograms/l somatoliberin, with a dilution curve that ran almost completely parallel to that of synthetic somatoliberin standard. After extraction by adsorption on hydrophobic C 18 Sep-pak cartridges or immunoaffinity chromatography, no somatoliberin-like immunoreactivity in seminal plasma could be detected. After gel permeation chromatography on a Sephadex G-50 fine column, all somatoliberin-like immunoreactivity of unextracted seminal plasma was recovered at the void volume of the column. When equal volumes of unextracted seminal plasma and radioiodinated somatoliberin were coincubated for two days at 4 degrees C, gel chromatography revealed the disappearance of the normal [125I]somatoliberin peak, replaced by a new peak eluting shortly after the total volume of the column. When unextracted seminal plasma was heated at 90 degrees C for 10 min or submitted to ultrafiltration, the interfering factor was no longer detectable. Our data show that enzymic degradation of radioiodinated somatoliberin led to misleadingly high concentrations of somatoliberin-like immunoreactivity in seminal plasma. These phenomena should therefore be considered when performing radioimmunoassays of short chain peptides in biological fluids.

Chromatography, Affinity

Combined pituitary function-test with four hypothalamic releasing hormones.

Anterior pituitary function was investigated in ten healthy subjects by administering a combination of 200 micrograms thyrotropin releasing hormone (TRH), 100 micrograms gonadotropin releasing hormone (GnRH), 100 micrograms growth hormone releasing factor (GRF1-44), and 100 micrograms human corticotropin releasing factor (CRF). The same test protocol was performed in all subjects after pretreatment with 0.25 mg terguride. Five subjects were tested only with TRH and GnRH, five only with CRF, and six only with GRF. There was a prompt increase in all hormones after the administration of the four releasing hormones (RH). Pretreatment with terguride lowered the prolactin (PRL) increase (p less than 0.01) as well as the thyrotropin (TSH) peak (p less than 0.05) compared with the test without dopamine agonist pretreatment. The PRL levels after combined RH administration were significantly higher than after TRH and GnRH alone. Although four of the five subjects had higher TSH levels after combined RH administration than after TRH and GnRH alone, the difference was not significant. Other hormones were not significantly influenced by the combined RH administration or dopamine agonist pretreatment. Despite the fact that the interaction of the different releasing hormones and dopamine agonists influences the pituitary hormone response, combined RH administration seems to be a useful test for evaluating pituitary function also in patients receiving dopamine agonist therapy.

Adrenocorticotropic Hormone

Growth hormone-releasing hormone infusion in patients with active acromegaly.

To determine GH-releasing hormone (GHRH)-stimulated GH secretion in patients with active acromegaly, nine patients received a 50-microgram GHRH-(1-44) bolus dose followed by a 2-h infusion with 100 micrograms GHRH/h, after which a second 50-microgram GHRH bolus dose was given. Serum GH, PRL, and immunoreactive GHRH levels were measured from 2 h before to 1 h after the end of the infusion and compared with hormone levels in six normal subjects subjected to the same protocol. In addition, seven of the nine acromegalic patients received 100 micrograms GHRH as an iv bolus dose, followed by a 2-h saline infusion on a different day. After the 100-micrograms GHRH bolus dose, the mean GH level increased from 55.9 +/- 18.0 (+/- SE) to 148.5 +/- 40.0 ng/ml within 15 min. Thereafter, GH levels decreased and were significantly lower at 90 and 120 min compared to the peak level 15 min after GHRH injection. After the 50-micrograms GHRH bolus dose, all acromegalic patients except two also had a clear-cut rise of GH levels, with the mean GH level increasing from 37.5 +/- 13.2 to 108.4 +/- 55.0 ng/ml at 60 min. Thereafter, elevated GH levels were sustained in the acromegalic patients throughout the GHRH infusion. In contrast, normal subjects had a significant decrease in the initially elevated GH levels, despite continuous GHRH infusion. There were no significant differences between PRL secretion and immunoreactive GHRH levels in either group. These findings suggest that patients with active acromegaly not only have elevated basal GH levels, but also have a greater ready releasable GH pool and/or accelerated GH turnover compared to those of normal subjects, which cannot be exhausted by a 2-h GHRH infusion.

Acromegaly

Growth hormone (GH) and prolactin responses to repetitive administration of GH-releasing hormone in acromegaly.

We investigated the pattern of GH secretion in response to repetitive GH-releasing hormone (GHRH) administration in patients with active acromegaly and in normal subjects. Twelve acromegalic patients (nine women and 3 men; aged 21-76 yr) were studied. Eight had never been treated, whereas four had undergone neurosurgery but still had active disease. All patients and eight normal subjects received three doses of 50 micrograms GHRH, iv, at 2-h intervals. Seven patients were retested 6-8 weeks after transsphenoidal removal of a pituitary adenoma. There was a marked serum GH rise in acromegalic patients and normal subjects after the first GHRH dose [area under the curve, 2070 +/- 532 (+/- SE) vs. 1558 +/- 612 ng/min X ml, respectively; P = NS]. Successive GHRH doses stimulated GH release only in acromegalic patients (second dose, 1123 +/- 421 ng/min X ml; third dose, 2293 +/- 1049 ng/min X ml). In normal subjects, the GH response to the second and third GHRH doses was blunted (second dose, 86 +/- 32 ng/min X ml; third dose, 210 +/- 63 ng/min X ml; P less than 0.01). PRL secretion did not change in normal subjects, whereas 6 of 12 acromegalic patients had PRL release after each GHRH dose (PRL responders to GHRH). Transsphenoidal surgery led to normalization (less than 5 ng/ml) of the preoperatively elevated GH levels in all but 2 patients, who, however, had reduction of somatomedin-C levels. The amount of GH released in the postoperative test was significantly lower than that released preoperatively (first dose, 722 +/- 209 vs. 2945 +/- 743 ng/min X ml; second dose, 358 +/- 117 vs. 1737 +/- 633 ng/min X ml; third dose, 320 +/- 144 vs. 1776 +/- 676 ng/min X ml, respectively; P less than 0.05 in all instances). Thus, patients with active acromegaly, but not normal subjects, respond to repetitive GHRH administration at 2-h intervals with an increase in GH levels. This increase may be due to a larger releasable GH pool and/or faster GH turnover in the adenomatous cell.

Acromegaly