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Biomedical subjects

Fulya Tahan

Publications and source records attributed to Fulya Tahan.

7 recordsLinked to original sources

Plasma soluble human leukocyte antigen G levels in asthmatic children.

BACKGROUND: Human leukocyte antigen G (HLA-G) is a nonclassical major histocompatibility complex class I gene. HLA-G stimulates Th2 cytokine secretion by peripheral blood mononuclear cells. The role of soluble HLA-G (sHLA-G) in bronchial asthma is incompletely understood and the plasma level of sHLA-G in asthmatic children has not been investigated. OBJECTIVE: It was the aim of this study to investigate the plasma level of sHLA-G in asthmatic children. METHODS: Asthmatic (n = 53) and healthy children (n = 16) were included in the study. Levels of sHLA-G were determined in plasma using ELISA. Spirometry, total immunoglobulin E and eosinophil counts were obtained and skin testing done with a battery of 25 antigens with appropriate positive and negative controls. RESULTS: No significant difference was observed in the plasma level of sHLA-G between the asthmatic and healthy children (p > 0.05). When we compared atopic asthmatics with healthy controls, we found significantly higher levels of sHLA-G in atopic asthmatics (p < 0.05). There was a significant difference in the peripheral blood eosinophil counts and total immunoglobulin E levels among the groups (p < 0.001). CONCLUSION: Our study shows that plasma sHLA-G levels do not differ between asthmatic children and healthy controls. However, higher plasma levels of sHLA-G in atopic asthmatics may suggest a role for sHLA-G in atopy. Further investigations are required to better define the mechanism of the production and the role of sHLA-G molecules observed in patients with asthma.

Adolescent↗

Zinc status in infantile wheezing.

The increase in prevalence of asthma is strongly dependent on environmental factors, including diet. Significant decreases in the intake of dietary zinc may be an important contributing factor to the increasing incidence of wheezing and asthma, but there have been no studies evaluating zinc levels in wheezy infants. Our objective was to investigate the zinc status of wheezy infants. Wheezy infants (n = 34) and healthy children (n = 14) were included in the study. Total IgE and eosinophil counts were obtained, and skin testing was done with a battery of 25 antigens with appropriate positive and negative controls. Levels of zinc were determined in hair, using a Polarized Zeeman Atomic Absorption Spectrophotometer (Hitachi Z-800). No significant difference was observed in peripheral blood eosinophil counts and total IgE levels among groups (P > 0.05). Hair zinc levels were significantly lower in wheezy infants (P < 0.001). In conclusion, hair zinc levels were lower in wheezy infants than in healthy controls, suggesting that zinc deficiency may influence the risk of wheezing in early childhood.

Child, Preschool↗

The role of chemokines in exercise-induced bronchoconstriction in asthma.

BACKGROUND: The pathogenesis of exercise-induced bronchoconstriction in asthma is incompletely understood, and the role of chemokines has not been investigated. OBJECTIVE: To investigate the involvement of the CC chemokines eotaxin, regulated upon activation normal T-cell expressed and secreted (RANTES), thymus and activation-regulated chemokine (TARC), and the CXC chemokine interferon-gamma-inducible protein 10 (IP-10) in exercise-induced bronchoconstriction. METHODS: Four groups were enrolled: asthmatic children with positive (n = 15) and negative (n = 15) responses to exercise, children with cystic fibrosis (n = 14), and healthy children (n = 11). Levels of eotaxin, RANTES, TARC, and IP-10 were determined in plasma before, immediately after, and 6 and 24 hours after exercise challenge using enzyme-linked immunosorbent assay. Transcriptional activity was measured using reverse transcriptase-polymerase chain reaction. RESULTS: Exercise did not induce any significant changes in systemic chemokine levels. A significant difference was observed only in the preexercise IP-10 levels among groups (P = .045). There was a significant difference in peripheral blood eosinophil counts among groups (P = .003). In asthmatic children with a positive response to exercise, there was an inverse correlation between eosinophil counts and eotaxin levels (r = -0.616; P = .01) and between forced expiratory volume in 1 second and TARC levels (r = -0.865; P = .001). Reverse transcriptase-polymerase chain reaction studies did not show any difference in the transcription of the chemokines. CONCLUSIONS: Exercise does not cause any changes in the systemic expression of eosinophilic chemokines. Peripheral blood eosinophils may be a determinant of the exercise response, and eotaxin and TARC may be associated with eosinophil counts and forced expiratory volume in 1 second in children with a bronchoconstrictor response to exercise.

Asthma↗

Homocysteine and left ventricular hypertrophy in children with chronic renal failure.

Hyperhomocysteinemia is recognized as an independent risk factor for cardiovascular disease, especially atherosclerosis, in adult patients with chronic renal failure (CRF). However, there is little information about the relationship between plasma homocysteine levels and left ventricular hypertrophy. The aim of this study was to determine plasma homocysteine levels and risk factors for left ventricular hypertrophy and to investigate the relationship between plasma homocysteine concentration and left ventricular mass index (LVMI) in children with CRF. The homocysteine level was measured by high-performance liquid chromatography and LVMI was calculated using echocardiographic findings in 27 children with CRF and 16 healthy controls. The mean LVMI and mean plasma homocysteine concentration in the CRF group, especially in patients with end-stage renal disease, were statistically higher than the control group ( P<0.05). There was no correlation between LVMI and plasma homocysteine concentration. There was a positive correlation between plasma homocysteine concentration and serum creatinine level. There was a positive correlation of LVMI with creatinine and blood pressures (systolic, diastolic, and mean arterial pressure). There was a negative correlation of LVMI with hemoglobin level in multiple linear regression analysis. In our view homocysteine does not have a direct effect on left ventricular structure and left ventricular hypertrophy is the end organ damage associated with hypertension, anemia, and CRF. More prospective studies are needed to better clarify the inter-relationships of plasma homocysteine level and left ventricular structure in children with CRF.

Adolescent↗