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Niranjan Kissoon

Publications and source records attributed to Niranjan Kissoon.

6 recordsLinked to original sources

Exhaled nitric oxide concentrations: online versus offline values in healthy children.

Exhaled nitric oxide (FE(NO)) is a noninvasive and practical method to assess airway inflammation. We conducted this investigation to determine the most appropriate flow rate to measure FE(NO) and to obtain reference values for FE(NO) in children. FE(NO) was measured in 112 healthy 6-18 year olds (60 males) at 4 expiratory flow rates (46, 31, 23, and 15 mL/sec) using a chemiluminescent nitric oxide analyzer. Offline and online analyses were done to determine FE(NO) intraclass correlation coefficients, the relationship between FE(NO) and expiratory flow rates, and the effects of age and gender on these measurements. The major findings were: 1) intraclass correlation coefficients for FE(NO) and flow rates ranged from 0.92-0.99 for offline values, and 0.99 for all online values; 2) variation at an expiratory flow rate of 46 mL/sec (SD, 9.39) was considerably less than at other flows, especially at 15 mL/sec (SD, 26.55); 3) FE(NO) increased as flow rates decreased for both offline and online values; 4) there were no significant differences and good agreement between offline bag and online FE(NO) values at 31 and 46 mL/sec expiratory flows; and 5) using multiple regression, significant predictors of FE(NO) were flow, body surface area, age, and FEF(25-75). We have provided FE(NO) values in healthy children and propose that the ideal expiratory flow rate for FE(NO) measurements in children using the single breath technique is between 30-50 mL/sec.

Adolescent↗

Effect of beta2-agonist treatment and spirometry on exhaled nitric oxide in healthy children and children with asthma.

We set out to determine the effect of spirometry and bronchodilator therapy on exhaled nitric oxide (FE(NO)) values in children. We hypothesized that there will be no difference on FE(NO) values pre- and postspirometry and following bronchodilator therapy. Sixteen children [(mean = 14.4 +/- 1.2 years; range, 12-18 years; healthy controls (n = 6); asthmatics on inhaled steroids (n = 5); and asthmatics on no steroids (n = 5)] had exhaled nitric oxide (FE(NO)) measurements on 4 consecutive days as follows: pre- and postspirometry (day 1); pre- and postalbuterol metered dose inhaler (MDI) therapy (day 2); pre- and postspirometry and albuterol MDI therapy (day 3); and pre- and postspirometry and placebo MDI (day 4). FE(NO) was measured with a chemiluminescence analyzer, using the single vital capacity exhalation technique at an exhalation flow of 50 mL/sec. There were no statistically significant differences in FE(NO) values pre- and poststudy maneuvers under all experimental conditions in healthy children. However, in healthy children, clinically relevant (>10%) differences from baseline were observed on day 1 (3-18 min) and day 4 at 18 min. In children with asthma, FE(NO) values increased significantly by 11-19% from pretreatment levels at 8 and 18 min, postbronchodilator on day 2, and 12-17% at 8 and 18 min post bronchodilator and spirometry on day 3. Spirometry and treatment with a placebo (day 4) resulted in a decrease in FE(NO) values by 11% at 3 min postbaseline in patients on inhaled steroids. The changes observed were similar in children on vs. off inhaled steroids, and also in well-controlled vs. poorly controlled asthma. We conclude that FE(NO) values should be obtained consistently either pre- and at a specific time postalbuterol treatment or spirometry. Alternatively, changes in FE(NO) values should be interpreted in relationship to the timing of these maneuvers.

Adolescent↗

Securing the child's airway in the emergency department.

Airway management is an important aspect of pediatric emergency care. Prompt, effective airway access can mean the difference between a good outcome and disability or death. Optimal management requires an understanding of the differences between children and adults with respect to airway anatomy and physiology and response to medications to facilitate airway access. In most cases, the emergency physician is called to secure a child's airway with little forewarning. This review details a logical and practical approach to the uncomplicated pediatric airway. Emphasis is also placed on recognition of the difficult airway and methods to render the difficulty less daunting. Good judgment and the appropriate skills are the prerequisites for success.

Airway Obstruction↗

Acute asthma: under attack.

The burden of asthma (death, disability, and an increasing prevalence) makes it a major public health problem worldwide. In an effort to decrease this burden, investigators are studying many aspects of this disease. The role of race, ethnicity, infections, and pollutants as triggers, as well as the risk factors are now being defined. Research into methods to decrease acute exacerbations and improve emergency and in-hospital management, using standardized protocols and incentives for follow-up care, has yielded valuable information but has met with limited success. Adherence to the national guidelines has been poor and to some extent can be attributed to the lack of a practical method of measuring the degree of lung inflammation and cumbersome treatment protocols. Exhaled nitric oxide is a noninvasive marker of inflammation and may provide a rational method to titrate corticosteroid and leukotriene receptor antagonist therapy. The best route and dosing regimen for corticosteroid administration (oral vs intramuscular vs nebulized) are the subject of several studies, with no clear-cut winner. The burden of asthma in developing countries with limited financial resources has also triggered a search for simpler, cheaper, and practical methods for beta-agonist delivery using indigenous spacers. Recent research in asthma has unveiled our incomplete knowledge of the disease but has also provided a sense of where efforts should be expended. Research into the genetics and pharmacogenetics of asthma and into the societal factors limiting the delivery of optimal care is likely to yield useful and practical information.

Acute Disease↗

Diagnosis and therapy for the disruptive physician.

A disruptive physician can alienate staff, drive away patients, and even land your organization in a lawsuit. Consider some practical advice on how to identify and deal with disruptive physicians.

Aggression↗