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Yesim Ozarda Ilcol

Publications and source records attributed to Yesim Ozarda Ilcol.

13 recordsLinked to original sources

Leptin concentration in breast milk and its relationship to duration of lactation and hormonal status.

BACKGROUND: Leptin, a hormone present in breast milk, is involved in energy regulation and metabolism. The objectives of this study were to assess leptin concentrations in breast milk during the first 180 days postpartum, and to determine the relationship between the concentrations of milk leptin and circulating hormone levels in lactating women. METHODS: Between April 2005 and January 2006, blood and breast milk samples were collected from 160 breastfeeding women enrolled either in the first three days (n = 37; colostrum), days 4-14 (n = 27; transitional milk), days 15-30 (n = 16; early mature milk), days 31-90 (n = 37; mature milk) or days 91-180 (n = 43; late mature milk) postpartum. Milk and serum leptin levels were measured by immunoradiometric assay. Cortisol was measured by radioimmunoassay method. Serum insulin, estradiol, prolactin and thyroxine were measured by chemiluminescent immunometric method. RESULTS: Leptin concentrations in breast milk were highest (3.28 +/- 0.41 ng/ml) in colostrum, decreased during the first 180 days of lactation, showing a significant inverse relation (r = -0.694, p < 0.001) with the days of lactation. Colostrum leptin concentrations correlated with maternal serum leptin (r = 0.425, p < 0.01), cortisol (r = 0.549, p < 0.01) and thyroxine (r = -0.530, p < 0.01). Mature milk leptin concentrations correlated with maternal serum leptin (r = 0.547, p < 0.001), insulin (r = 0.331, p < 0.05) and thyroxine (r = -0.329, p < 0.01). Serum leptin concentrations correlated with serum insulin (r = 0.648, p < 0.001), estradiol (r = 0.639, p < 0.001), prolactin (r = 0.530, p < 0.001) and thyroxine (r = -0.327, p < 0.05) concentrations during days 1-3 postpartum. During 15-180 postpartum days, serum leptin concentrations correlated with serum insulin (r = 0.271, p < 0.01), and thyroxine (r = -0.345, p < 0.001). CONCLUSION: Leptin concentrations in breast milk decrease with time during lactation and show significant relationships with other maternal hormones.

Journal Article↗

Serum leptin and ghrelin levels in response to methylprednisolone injection in healthy dogs.

The aim of this study was to investigate the effects of methylprednisolone treatment on serum leptin and ghrelin levels in healthy dogs (n=40). After 14 h of fasting, the dogs were injected intramuscularly with saline (control group) or methylprednisolone (1, 5 or 10mg/kg). Blood samples were collected prior to (baseline) and 2, 3, 4, 8, 12 and 24h subsequent to the treatments. Serum leptin and ghrelin were measured by radioimmunoassay. The mean baseline serum leptin and ghrelin were 2.5+/-0.1 ng/mL (n=40) and 35.0+/-2.1 pg/mL (n=40), respectively. In the control dogs, serum leptin, but not ghrelin levels showed a significant fluctuation during the 24h observation period. Serum leptin increased significantly (p<0.05-0.01) between 2 and 12h after 1mg/kg of methylprednisolone. Serum leptin levels showed biphasic response to 5mg/kg of methylprednisolone: its level decreased to 1.9+/-0.1 ng/mL (p<0.01) at 2h and increased at 12h (2.6+/-0.1 ng/mL) (p<0.01). In response to 10mg/kg of methylprednisolone, serum leptin levels decreased significantly (p<0.01) for 24h. Serum ghrelin levels decreased to 19+/-5 pg/mL at 2-3h (p<0.01) or increased to 87+/-18 pg/mL at 3-8h (p<0.05-0.01) after 1mg/kg of methylprednisolone or 10mg/kg of methylprednisolone, respectively. Serum ghrelin levels did not change at any time point during 24h observation period after 5mg/kg of methylprednisolone. There was a significant (p<0.001) inverse correlation (r=-0.635) between serum leptin and ghrelin levels. In conclusion, we found that methylprednisolone increases or decreases serum leptin and ghrelin levels depending upon its dose and there is a negative correlation between serum leptin and ghrelin levels after methylprednisolone administration.

Animals↗

Intravenous administration of choline or cdp-choline improves platelet count and platelet closure times in endotoxin-treated dogs.

This study was performed to assess the effects of intravenous choline chloride and cytidine-5'-diphosphate choline (CDP-choline) treatments on circulating platelet, white blood cell, and red blood cell counts and platelet functions in response to endotoxin. Saline (0.2 mL/kg), choline chloride (20 mg/kg), or CDP-choline (70 mg/kg) were given intravenously three times at 4-h intervals, and endotoxemia was induced by endotoxin (E. coli 055:B5, 20 microg/kg) infusion, 5 min after the first treatment. Blood samples were collected before and at multiple time points after the challenge, for a panel of hematologic parameters and platelet closure times measured by PFA-100. In saline-treated dogs, circulating platelet counts decreased by 85% (P < 0.001) at 0.5 h and remained low by 36%-80% (P < 0.5-0.001) 1-12 h after endotoxin. Circulating WBC counts decreased by 80%-90% (P < 0.001) at 0.5-2 h, and increased (P < 0.001) by 190% 12 h after the endotoxin. In response to endotoxin, RBCs increased by 10%-13% (P < 0.05) at 1-12 h. Endotoxin-induced decline in circulating platelets was attenuated at 0.5 h (P < 0.05-0.01) and reversed at 1-12 h (P < 0.05-0.001) by choline. Platelet closure times were shortened from 81 +/- 10 s and 135 +/- 10 s to 29 +/- 5 s (P < 0.001) and 60 +/- 3 s (P < 0.001) at 0.5 h, and prolonged (P < 0.001) at 1-8 h after endotoxin induction. Endotoxin-induced shortening in platelet closure times was attenuated (P < 0.05) and blocked (P < 0.01) by choline and CDP-choline, respectively. These results showed that choline and CDP-choline treatments improved circulating platelet counts and platelet function during endotoxemia in dogs.

Animals↗

Elevation of serum cerebral injury markers correlates with serum choline decline after coronary artery bypass grafting surgery.

The aims of this study were to determine circulating choline status and its relationship to circulating levels of S-100beta protein and neuron-specific enolase, biochemical markers of cerebral injury and cognitive decline, after coronary artery bypass grafting (CABG) surgery. Preoperatively, patients scheduled for off-pump or on-pump CABG surgery had serum concentrations of 12.0+/-0.2 and 11.7+/-0.4 micromol/L free choline and 2640+/-65 and 2675+/-115 micromol/L phospholipid-bound choline, respectively. Serum free and bound choline levels decreased by 22-37% or 34-47% and 16-36% or 31-38% at 48 h after off-pump or on-pump surgery, respectively. Serum S-100beta and neuron-specific enolase increased from preoperative values of 0.083+/-0.009 and 6.3+/-0.2 microg/L to 0.405+/-0.022 and 11.4+/-0.8 microg/L, respectively, at 0 h postoperatively and remained elevated for 48 h after off-pump surgery. Serum free and bound choline concentrations were inversely correlated with the concentrations of S-100beta (r=-0.798; p<0.001 and r=-0.734; p<0.001) and neuron-specific enolase (r=-0.840; p<0.001 and r=-0.728; p<0.001). In conclusion, CABG surgery induces a decline in serum free and phospholipid-bound choline concentrations. The decreased serum choline concentrations were inversely correlated with the elevated levels of circulating cerebral injury markers. Thus, a decline in circulating choline may be involved in postoperative cognitive decline.

Adult↗

Use of total patient data for indirect estimation of reference intervals for 40 clinical chemical analytes in Turkey.

In the present study we used patient data to calculate laboratory-specific indirect reference intervals. These values were compared with reference intervals obtained for a healthy group according to recommendations of the International Federation of Clinical Chemistry and Laboratory Medicine and manufacturer suggestions. Laboratory results (422,919 records) from all subjects of 18-45 years of age over a 1-year period were retrieved from our laboratory information system and indirect reference intervals for 40 common analytes were estimated using a modified Bhattacharya procedure. Indirect reference intervals for most of the biochemical analytes were comparable, with small differences in lower [alkaline phosphatase (ALP) (male), alanine aminotransferase (ALT), creatine kinase, iron (male), total iron-binding capacity, folic acid, calcium (female), lactate dehydrogenase (LDH), lipoprotein (a) [Lp(a)], thyroid-stimulating hormone (TSH), total triiodothyronine (T(3)), direct bilirubin, apolipoprotein A-I (apoA-I), glucose, homocysteine, total cholesterol, ferritin, total protein, ceruloplasmin, sodium, blood urea nitrogen (BUN) and uric acid (female)] and/or upper limits [albumin, ALP (male), amylase, apoA-I, creatine kinase-MB (CK-MB), total iron-binding capacity, phosphorus, glucose, total cholesterol, gamma-glutamyltransferase (gamma-GT), magnesium, total protein, high-density lipoprotein cholesterol (HDL-C), total T(3), ALP (male), ALT, aspartate aminotransferase (AST) (male), direct bilirubin (male), creatine kinase, iron, folic acid (female), Lp(a), uric acid and triglycerides], to the reference intervals determined for healthy subjects in our laboratory. The indirect reference intervals, with the exception of a few parameters (creatinine, direct total bilirubin, calcium, BUN and potassium), were not similar to the reference intervals suggested by the manufacturers. We conclude that laboratory-specific reference intervals can be determined from stored data with a relatively easy and inexpensive method. Indirect reference intervals derived from stored data may be particularly suitable for the evaluation of results for the presenting population.

Adolescent↗

Vitamin a deficiency in patients with common variable immunodeficiency.

Vitamin A, a naturally occuring antioxidant micronutrient, has immunomodulating effect in patients with immunodeficiency, including an influence on cytokine production and lymphocyte growth and functions. Vitamin A deficiency is associated with a shift from type 2 cytokines to predominantly type 1 cytokines. The aims of this study were to determine Vitamin A status in Common variable immunodeficiency (CVID) patients and the relationship between Vitamin A status and cytokines production. Serum Vitamin A, neopterin, TNF-alpha, IL-2, IL-4, and IL-10 levels were determined in 19 CVID patients and 15 healthy children. Effects of 9-cis retinal, Vitamin A derivative, on cytokines (TNF-alpha, IL-2, IL-4 and IL-10) production in lymphocytes were tested in vitro condition using lymphocyte cultures obtained from CVID patients and healthy children.Serum Vitamin A level in CVDI patients was, 21.1+/- 1.5 microg/dL, significantly (p < 0.001) lower than the value, 35.7+/- 1.8 microg/dL, observed in healthy children. Serum neopterin level in the patients was, 9.8+/- 2.9 nmol/L, higher (p < 0.05) than the value, 3.9+/- 0.7 nmol/L, observed in control group. Common variable immunodeficiency patients, serum IL-4 level was significantly (p < 0.05) lower than the value observed for healthy children. Serum TNF-alpha, IL-2 and IL-10 levels were similar in the patients and healthy children. Vitamin A derivative, 9-cis retinal, increased TNF-alpha and IL-4 production in cultured mononuclear cells obtained from control and CVID patients. Vitamin A derivative, also, increased IL-2 and Il-4 production in cultured mononuclear cells obtained from CVID patients. These results show that CVID patients have low serum Vitamin A levels and high serum neopterin levels. A supplementation with Vitamin A may have role in downregulation of inflammatory responses in CVID patients.

Adolescent↗

Endotoxin alters serum-free choline and phospholipid-bound choline concentrations, and choline administration attenuates endotoxin-induced organ injury in dogs.

This study in dogs was performed to assess circulating choline status during endotoxemia and to determine whether choline administration can protect dogs from endotoxin-induced tissue injuries. Baseline serum-free and phospholipid-bound choline concentrations were 19.2 +/- 0.6 micromol/L and 3700 +/- 70 micromol/L, respectively. After intravenous endotoxin infusion, serum-free choline concentrations decreased by 14% to 49% (P < 0.05-0.001) at 2 to 6 h after 0.02 mg/kg endotoxin, and increased by 23% to 98% (P < 0.05-0.001) at 1 to 48 h after 1 mg/kg endotoxin. Serum phospholipid-bound choline concentrations increased by 19% to 27% (P < 0.05) at 12 to 24 h or by 18% to 53% (P < 0.05-0.001) at 1 to 48 h after 0.02 or 1 mg/kg endotoxin, respectively. The changes in serum-free and -bound choline levels in response to endotoxin were accompanied by dose- and time-related elevations in serum cortisol and biochemical markers for tissue injury and/or organ dysfunction. Intravenous administration of choline (20 mg/kg) 5 min before, and 4 and 8 h after endotoxin (1 mg/kg) attenuated endotoxin-induced elevations in serum alanine aminotransferase (P < 0.05-0.001), aspartate aminotransferase (P < 0.05-0.001), gamma-glutamyl transferase (P < 0.05-0.001), alkaline phosphatase (P < 0.05-0.001), lactate dehydrogenase (P < 0.05-0.001), myocardial creatine kinase (P < 0.001), urea (P < 0.05-0.01), creatinine (P < 0.05), uric acid (P < 0.01-0.001), and tissue necrosis factor-alpha (P < 0.001). Choline also attenuated alanine aminotransferase (P < 0.05-0.01), alkaline phosphatase (P < 0.05-0.01), lactate dehydrogenase (P < 0.05-0.01), creatine kinase (P < 0.05-0.001), myocardial creatine kinase (P < 0.05-0.001), and uric acid (P < 0.05-0.01), but failed to alter the serum urea, creatinine, aspartate aminotransferase, and gamma-glutamyl transferase responses to 0.02 mg/kg endotoxin. These data show that choline status is altered during endotoxemia and that choline administration diminishes endotoxin-induced tissue injury.

Alanine Transaminase↗

Declines in serum free and bound choline concentrations in humans after three different types of major surgery.

We examined the changes in circulating choline status in humans in response to major surgery by measuring serum free and phospholipid-bound choline concentrations before, during and 1-72 h after total abdominal hysterectomy, off-pump coronary artery graft surgery or brain tumor surgery. Preoperatively, the mean serum free and phospholipid-bound choline concentrations in patients scheduled for abdominal hysterectomy (n = 26), off-pump coronary artery grafting surgery (n = 34) or brain tumor surgery (n = 24) were 12.3 +/- 0.5, 12.1 +/- 0.4 and 11.4 +/- 0.4 micromol/l, and 2495 +/- 75, 2590 +/- 115 and 2625 +/- 80 micromol/l, respectively. Serum free choline and phospholipid-bound choline concentrations decreased from these baseline values to 8.8 +/- 0.7 (p < 0.001), 8.8 +/- 0.5 (p < 0.001) and 8.2 +/- 0.4 micromol/l (p < 0.001), and 2050 +/- 108 (p < 0.001), 2166 +/- 59 (p < 0.001) and 1884 +/- 104 micromol/l (p < 0.001) at 1 h after hysterectomy, off-pump bypass graft surgery or brain tumor surgery, respectively. They remained at these low levels for 24 h and then gradually increased towards the preoperative values at 48-72 h postoperatively. Serum cortisol increased postoperatively in all surgical patients for 24 h and its levels were inversely correlated with serum free and bound choline concentrations. These results show that circulating free and bound choline concentrations decrease for 72 h after total abdominal hysterectomy, off-pump coronary artery graft surgery or brain tumor surgery in humans.

Adult↗

Serum free and phospholipid-bound choline decrease after surgery and methylprednisolone administration in dogs.

We designed this study to determine whether serum free and phospholipid-bound choline concentrations change after surgery or methylprednisolone treatment in dogs and rats. In dogs, serum free and phospholipid-bound choline concentrations were decreased by 29% and 17% immediately after abdominal-pelvic surgery under xylasine+ketamine anesthesia, respectively, and both remained low for 24 h. Serum cortisol was elevated after surgery. The elevation in serum cortisol was inversely correlated with the decreases in free (r=-0.737; P<0.001) and phospholipid-bound (r=-0.771; P<0.001) choline concentrations. After methyprednisolone administration (5-20 mg/kg) free and phospholipid-bound choline concentrations decreased in a dose- and time-dependent manner. In rats, either surgery or methylprednisolone failed to alter serum free choline concentrations while phospholipid-bound choline decreased after surgery. These data show that the decrease in serum choline after surgery results from the increase in circulating glucocorticoids.

Animals↗

Choline increases serum insulin in rat when injected intraperitoneally and augments basal and stimulated aceylcholine release from the rat minced pancreas in vitro.

Intraperitoneal injection of choline (30-90 mg.kg-1) produced a dose-dependent increase in serum insulin, glucose and choline levels in rats. The increase in serum insulin induced by choline (90 mg.kg-1) was blocked by pretreatment with the muscarinic acetylcholine receptor antagonists, atropine (2 mg.kg-1), pirenzepine (2 mg.kg-1) and 4-diphenylacetoxy-N-methylpiperidine (2 mg.kg-1) or the ganglionic nicotinic receptor antagonist, hexamethonium (15 mg.kg-1). The effect of choline on serum insulin and glucose was enhanced by oral glucose administration (3 g.kg-1). Choline administration was associated with a significant (P < 0.001) increase in the acetylcholine content of pancreatic tissue. Choline (10-130 microm) increased basal and stimulated acetylcholine release but failed to evoke insulin release from the minced pancreas at considerably higher concentrations (0.1-10 mm). Hemicholium-3, a choline uptake inhibitor, attenuated the increase in acetylcholine release induced by choline augmentation. Choline (1-32 mm) inhibited [3H]quinuclidinyl benzilate binding to the muscarinic receptors in the pancreatic homogenates. These data show that choline, a precursor of the neurotransmitter acetylcholine, increases serum insulin by indirectly stimulating peripheral acetylcholine receptors through the enhancement of acetylcholine synthesis and release.

Acetylcholine↗

Changes of plasma free choline and choline-containing compounds' concentrations and choline loss during hemodialysis in ESRD patients.

OBJECTIVES: This study was undertaken to determine the changes in plasma free choline and choline-containing compounds in end stage renal disease (ESRD) and to determine if they were lost into the dialysate during hemodialysis. DESIGN AND METHODS: Plasma and dialysate free choline, phosphocholine and phospholipid-, phosphatidylcholine-, sphingomyelin-bound choline were measured before, during and after hemodialysis. RESULTS: Plasma free and bound choline concentrations (mean +/- standard error of the mean) were 12.9 +/- 0.6 and 2697 +/- 57 microM or 37.3 +/- 0.9 and 2792 +/- 98 microM in controls or in ESRD patients, respectively. Free choline concentrations were correlated (r = 0.598; p < 0.001) with the time the patients were subjected to hemodialysis. Plasma free choline and phosphocholine concentrations are decreased by a total of -8.1 +/- 0.6 micromol/L and -88 +/- 8 micromol/L, respectively; phospholipid-, phosphatidylcholine- and sphingomyelin-bound choline are increased, during hemodialysis. Patients lost about 350 micromoles of choline into the dialysate during hemodialysis. CONCLUSION: Plasma free choline concentrations are elevated in ESRD, and a considerable amount of choline is lost into the hemodialysate.

Adult↗

Free choline and phospholipid-bound choline concentrations in serum and dialysate during peritoneal dialysis in children and adults.

OBJECTIVES: This study tested whether continuous ambulatory peritoneal dialysis (CAPD) changes free or phospholipid-bound choline concentrations in serum or peritoneal dialysis fluid of patients with end stage renal disease (ESRD). DESIGN AND METHODS: Serum and dialysate choline and phospholipid-bound choline were measured before, during and after 6 h CAPD. RESULTS: Serum choline concentrations were higher in patients with ESRD compared with age-matched controls. CAPD lowered serum choline concentrations significantly although it did not influence phospholipid-bound choline. Choline accumulated in the dialysate, reaching 28.4 +/- 2.7 microM in children and 18.2 +/- 1.4 microM in adults, during six hours CAPD; phospholipid-bound choline increased to 22.9 +/- 2.5 microM and 10.8 +/- 1.4 microM in children and adults, respectively. The total daily loss of choline into the dialysate was 181 +/- 20 micromoles in children and 260 +/- 18 micromoles in adults. CONCLUSION: CAPD causes a substantial loss of choline into peritoneal dialysates and reduces serum choline concentrations significantly.

Adolescent↗

Investigation of diagnostic importance of platelet closure times measured by Platelet Function Analyzer--PFA 100 in dogs with endotoxemia.

This study was performed to evaluate the diagnostic importance of the platelet closure times measured by the Platelet Function Analyzer (PFA-100) in dogs with endotoxemia. E. coli endotoxin was given intravenously once, at the dose of 0.02 mg/kg or 1 mg/kg in groups I (n=9) and II (n=8), respectively. Normal saline (0.1 ml/kg) was injected in group III (n=8). The dogs were monitored for 48 h, and venous blood samples were collected prior to (baseline) and at intervals of 0.5, 1, 2, 4, 6, 8, 12, 24 and 48 h subsequent to the treatments. The white blood cell (WBC), platelet counts, and hematocrit (Hct) values were recorded. Platelet closure times were determined, using collagen/epinephrine (CEPI) and collagen/adenosine diphosphate (CADP) cartridges. Within 0.5 h after the endotoxin application baseline WBC and platelet counts (mean +/-SD) decreased significantly (p<0.001) to 2000 +/- 500 and 1850 +/- 200 cells/microl or 69.000 +/- 12.500 and 27.000 +/- 6.400 cells/microl in groups I and II, respectively. Platelet counts remained low during the first 1-48 h, but the WBC count was high at the 8th-48th h, in groups I and II, compared with baselines (p<0.001). After the application of the endotoxin, Hct values increased from baseline values of 37 +/- 3 or 39 +/- 2% to 48 +/- 2 or 51 +/- 3%, within 1 h (p<0.001), in groups I and II, respectively. Hct values in group II were notably higher (p<0.001) than those of group I, during the 2nd-48th h. Hematological parameters and closure times did not differ significantly throughout the study in group III. Baseline closure time ranged from 79 +/- 5 seconds (s) to 86 +/- 5 s for CADP and 144 +/- 13 s to 159 +/- 14 s for CEPI in all dogs (n=25). At 0.5 h after the endotoxin, the closure times of CADP as well as CEPI declined to 62 +/- 6 s and 76 +/- 8 s in group I (p<0.001) and 57 +/- 5 s and 75 +/- 6 s in group II (p<0.001). Afterwards, closure time prolonged to the levels of 280 +/- 8 s (CADP) and 294 +/- 5 s (CEPI) by 48 h (p<0.001) in group II, but returned to the baseline limit in group I. In conclusion, our results show that the shortened closure times may serve as a very early diagnostic sign of endotoxemia, prolonged closure times however may be used as an index for the severity of endotoxemia.

Animals↗