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Biomedical subjects

Milos Zarković

Publications and source records attributed to Milos Zarković.

7 recordsLinked to original sources

Gonadotropin pulsatility in Cushing's syndrome compared with polycystic ovary syndrome.

Many of the presenting features in women with Cushing's syndrome (CS) are similar to those observed for patients with polycystic ovary syndrome (PCOS). The aim of this study was to compare gonadotropin pulsatility characteristics in CS and PCOS. We evaluated 32 females divided into three groups. The first group comprised 12 females with clinically and biochemically proven CS, subsequently confirmed by histology (seven with Cushing's syndrome, five with adrenal adenoma). The second group comprised ten females with clinical, endocrine and ultrasonographic parameters for PCOS, while the third group comprised ten healthy females with regular menstrual cycles to serve as controls. Blood samples were taken at 15-min intervals for 6 h in the follicular phase, for determination of luteinizing hormone (LH) and follicle-stimulation hormone (FSH). Pulse analysis was carried out using the PulsDetekt program, and statistical analysis was done using the Kruskal-Wallis test. The following data, presented as median (minimum-maximum), were found for the three groups respectively. Number of LH pulses: 0 (0-5), 7 (3-8) and 3 (2-7); LH pulse amplitude: 2.29 (1.98-3.49), 2.27 (1.15-5.90) and 2.03 (1.02-4.46) mU/l; LH pulse mass: 17.81 (14.82-26.20), 29.85 (8.59-185.82) and 27.57 (7.63-66.69) mU/l x min. Number of FSH pulses: 3 (0-3), 2 (0-5) and 3 (1-5); FSH pulse amplitude: 1.62 (1.29-1.94), 1.49 (1.19-4.40) and 2.02 (1.37-2.52) mU/l; FSH pulse mass: 12.17 (9.64-41.69), 11.18 (8.92-33.02) and 15.16 (10.31-18.93) mU/l x min. Only the number of pulses was compared because other parameters of pulsatile secretion cannot be estimated when no pulses are detected. The difference in number of LH pulses between groups was statistically significant (p < 0.05); however, there was no difference in the number of detected FSH pulses between groups (p > 0.05). Attenuation of pulsatile LH secretion indicating gonadotropin deficiency in the majority of women with CS is mostly due to alterations in serum cortisol levels. Our data also suggest that different mechanisms alter LH pulsatile secretion in CS and PCOS.

Adult↗

[Autoimmune thyroid disease and brain].

Changes of the affective and cognitive function are usually associated with thyroid gland dysfunction. In autoimmune thyroid disease, these changes can be caused by thyroid dysfunction (hypo- or hyperthyroidism) or associated with the presence of antithyroid antibodies. Even a small change in thyroid hormone concentration is associated with change of cognitive function. In euthyroid older males, variation of total and free thyroxin accounts for about 10% of Wechsler adult intelligence test variance. In euthyroid females, lower cognitive function, measured by Mini Mental test, also correlates with blood thyroxin. Short-term (4 weeks) hypothyroidism induces clinically significant cognitivedysfunction, which is reversible by thyroid hormone substitution. Mild hypothyroidism (TSH less than 10) also induces reversible cognitive dysfunction. In hypothyroidism, PET scanning shows global reduction of brain blood flow and glucose metabolism. Hashimoto's encephalopathy is characterized by corticosteroid reversible encephalopathy associated with the presence of antithyroid antibodies. Encephalopathy can be manifested as multiple stroke-like episodes (vasculitis like), or as diffuse, progressive type characterized by dementia and psychiatric symptoms. In euthyroid patients with Hashimoto's thyroiditis and no evidence of neurological disease, SPECT showed brain perfusion abnormalities. Post mortem and brain biopsy findings can be normal or show perivascular lymphocytic infiltration. Recently, presence of antineuronal antibodies has been found in patients with Hashimoto's thyroiditis. Specific high reactivity against human alpha-enolase was high in patients with Hashimoto's encephalopathy, but absent in patients with other neurological disorders and healthy subjects. Specific antineural antibodies were found in another group of Hashimoto's encephalopathy patients. Furthermore, Ferracci et al, found antithyroid antibodies in the CSF of patients with Hashimoto's encephalopathy.

Autoimmune Diseases↗

Bilateral chorea-ballism associated with hyperthyroidism.

We describe a 50-year-old patient with four episodes of recurrent bilateral chorea-ballism (BCB) and associated hyperthyroidism. Reappearance of BCB, associated with increased serum levels of thyroid hormones and lack of relevant changes on brain computed tomography/magnetic resonance imaging scans, suggested that the involuntary movements were likely due to thyrotoxicosis-induced biochemical changes.

Chorea↗

Prolonged psychological stress suppresses cortisol secretion.

OBJECTIVE: Response to acute psychological stress is characterized by activation of the hypothalamic-pituitary-adrenal (HPA) axis and the sympathetic nervous system. However, response to the prolonged psychological stress is less well known. DESIGN: This study was designed as a prospective assessment of cortisol secretion during prolonged psychological stress induced by continuous air raids and after elimination of the stress-inducing factor. SUBJECTS: The study group consisted of five healthy subjects (34-39 years). MEASUREMENTS: Psychological and endocrine (morning cortisol and 1 microg ACTH test) testing was done 2 months after the war had begun and 18 months after the end of it. Psychiatric assessment was done at the same periods, and 30 months after the start of the study. RESULTS: After 2.5 years of follow-up, there were no signs of endocrine or psychiatric disorders in any of the subjects. After the war, Beck Inventory of Depression and Hamilton Anxiety Rating Scale scores were significantly reduced. Suppression of the HPA axis was present during the war but not after. CONCLUSIONS: Prolonged psychological stress is associated with a transient suppression of the HPA axis, manifested by low morning cortisol and reduced cortisol response to ACTH. The reduction of cortisol response is sufficient to cause false diagnosis of HPA insufficiency.

Acute Disease↗

Value of assessing adrenocorticotropic hormone (ACTH) levels in differential diagnosis of hypercorticism.

Diagnosis and differential diagnosis of Cushing's syndrome remains a challenge in clinical endocrinology. The aim of this study was to establish the value of assessing adrenocorticotropic hormone (ACTH) levels in differential diagnosis of hypercorticism using receiver operating characteristic (ROC) curve. We have evaluated 114 patients with Cushing's syndrome testing the value of pathohistological examination and postoperative testing. The control group consisted of 53 obese healthy persons. ACTH level was determined using a commercial RIA (CIS, France). ACTH secreting pituitary adenoma was found in 56.14% examinees, ectopic secretion in 6.14%, cortisol secreting adrenal adenoma in 37.57%, and adrenal carcinoma in 6.14% of all patients with Cushing's syndrome. Basal ACTH level for pituitary adenoma was 107.29 +/- 75.69 pg/mL; for ectopic secretion 181.63 +/- 149.84 pg/mL; for adrenal adenoma 4.22 +/- 2.32 pg/mL; for adrenal carcinoma 5.50 +/- 7.72 pg/mL; and 34.76 = 10.07 pg/mL in control group. Testing the value of assessing ACTH the area under ROC curve was 0.9965 +/- 0.0071. Test sensitivity was 99.89% and test specificity was 97%. For ACTH cut-off level of 8 pg/mL, test sensitivity was 88.50%, with specificity of 99%. For ACTH cut-off level of 22 pg/mL, test sensitivity was 99.30%, with specificity of 98%. Our intermediate zone from 8 to 22 pg/mL confirms that assessment of ACTH level is a reliable tool in differential diagnosis of Cushing's syndrome.

Adrenocortical Hyperfunction↗

[Disorder of adrenal gland function in chronic fatigue syndrome].

Chronic fatigue syndrome (CFS) is defined as constellation of the prolonged fatigue and several somatic symptoms, in the absence of organic or severe psychiatric disease. However, this is an operational definition and conclusive biomedical explanation remains elusive. Similarities between the signs and symptoms of CFS and adrenal insufficiency prompted the research of the hypothalamo-pituitary-adrenal axis (HPA) derangement in the pathogenesis of the CFS. Early studies showed mild glucocorticoid deficiency, probably of central origin that was compensated by enhanced adrenal sensitivity to ACTH. Further studies showed reduced ACTH response to vasopressin infusion. The response to CRH was either blunted or unchanged. Cortisol response to insulin induced hypoglycaemia was same as in the control subjects while ACTH response was reported to be same or enhanced. However, results of direct stimulation of the adrenal cortex using ACTH were conflicting. Cortisol and DHEA responses were found to be the same or reduced compared to control subjects. Scott et al found that maximal cortisol increment from baseline is significantly lower in CFS subjects. The same group also found small adrenal glands in some CFS subjects. These varied and inconsistent results could be explained by the heterogeneous study population due to multifactorial causes of the disease and by methodological differences. The aim of our study was to assess cortisol response to low dose (1 microgram) ACTH using previously validated methodology. We compared cortisol response in the CFS subjects with the response in control and in subjects with suppressed HPA axis due to prolonged corticosteroid use. Cortisol responses were analysed in three subject groups: control (C), secondary adrenal insufficiency (AI), and in CFS. The C group consisted of 39 subjects, AI group of 22, and CFS group of nine subjects. Subject data are presented in table 1. Low dose ACTH test was started at 0800 h with the i.v. injection of 1 microgram ACTH (Galenika, Belgrade, Serbia). Blood samples for cortisol determination were taken from the i.v. cannula at 0, 15, 30, and 60 min. Data are presented as mean +/- standard error (SE). Statistical analysis was done using ANOVA with the Games-Howell post-hoc test to determine group differences. ACTH dose per kg or per square meter of body surface was not different between the groups. Baseline cortisol was not different between the groups. However, cortisol concentrations after 15 and 30 minutes were significantly higher in the C group than in the AI group. Cortisol concentration in the CFS group was not significantly different from any other group (Graph 1). Cortisol increment at 15 and 30 minutes from basal value was significantly higher in C group than in other two groups. However, there was no significant difference in cortisol increment between the AI and CFS groups at any time of the test. On the contrary, maximal cortisol increment was not different between CFS and other two groups, although it was significantly higher in C group than in the AI group. Maximal cortisol response to the ACTH stimulation and area under the cortisol response curve was significantly larger in C group compared to AI group, but there was no difference between CFS and other two groups. Several previous studies assessed cortisol response to ACTH stimulation. Hudson and Cleare analysed cortisol response to 1 microgram ACTH in CFS and control subjects. They compared maximum cortisol attained during the test, maximum cortisol increment, and area under the cortisol response curve. There was no difference between the groups in any of the analysed parameters. However, authors commented that responses were generally low. On the contrary Scott et al found that cortisol increment at 30 min is significantly lower in the CFS than in the control group. Taking into account our data it seems that the differences found in previous studies papers are caused by the methodological differences. We have shown that cortisol increment at 15 and 30 min is significantly lower in CFS group than in C group. Nevertheless, maximum cortisol attained during the test, maximum cortisol increment, and area under the cortisol response curve were not different between the C and CFS groups. This is in agreement with our previous findings that cortisol increment at 15 minutes has the best diagnostic value of all parameters obtained during of low dose ACTH test. However, there was no difference between CFS and AI group in any of the parameters, although AI group had significantly lower cortisol concentrations at 15 and 30 minutes, maximal cortisol response, area under the cortisol curve, maximal cortisol increment, and maximal cortisol change velocity than C group. Consequently, reduced adrenal responsiveness to ACTH exists in CFS. In conclusion, we find that regarding the adrenal response to ACTH stimulation CFS subjects present heterogeneous group. In some subjects cortisol response is preserved, while in the others it is similar to one found in secondary adrenal insufficiency.

Adrenal Cortex↗

[Insulin sensitivity in patients with adrenal incidentaloma].

INTRODUCTION: Frequent use of modern imaging methods (such as ultrasound, CT and MRI) results in high incidence of accidentally discovered adrenal mass. Adrenal incidentalomas are accidentally discovered adrenal tumors by imaging methods without any prior suspicion of adrenal disease. Some studies have shown decreased insulin sensitivity in patients with adrenal incidentaloma. OBJECTIVE: The objective of our study was to assess the insulin sensitivity in patients with adrenal incidentalom a. METHOD: A total of 22 patients with accidentally discovered adrenal mass confirmed by CT/MRI were evaluated in our study. Average age was 53.31 +/- 26.5 years and average BMI 25.84 +/- 3.65 kg/m2. Control group consisted of 33 healthy subjects. Insulin sensitivity was assessed by short ITT (insulin tolerance test). Blood samples were taken before, 3, 6, 9, 12, 15, 20 and 30 minutes after i.v. bolus of regular insulin (0.05 IU/kg BW). Glycemia was determined by glucose oxidase method. Statistical analysis was done by ANCOVA, using BMI as covariate. RESULTS: Our results showed significantly lower insulin sensitivity in patients with adrenal incidentalomas comparing to the control group (4.95 +/- 0.58 vs. 6.62 +/- 0.47, p=0.015). CONCLUSION: Our patients with adrenal incidentalomas manifested lower insulin sensitivity what suggested further follow up and assessment of insulin sensitivity during endocrine evaluation of these patients.

Adrenal Gland Neoplasms↗