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Employing the Forced Oscillation Technique for the Assessment of Respiratory Mechanics in Adults
Published on: February 9, 2022
Childhood respiratory illness and lung function at ages 14 and 50 years: childhood respiratory illness and lung
Peter W G Tennant1, G John Gibson, Louise Parker
1Institute of Health and Society, Newcastle University, Newcastle upon Tyne, NE1 4LP, United Kingdom.
Insights
Childhood respiratory infections and low birth weight impact adult lung function (FEV1). Factors like smoking and sex influence lung function decline from adolescence to middle age.
Area of Science:
- Pulmonary Medicine
- Epidemiology
- Longitudinal Health Studies
Background:
- Childhood respiratory infections and low birth weight are linked to reduced adult lung function.
- The precise timing and factors influencing these associations throughout life remain unclear.
Purpose of the Study:
- To investigate the influence of early life factors and subsequent life events on lung function (FEV1) at age 14 and its change between adolescence and middle age (49-51 years).
Main Methods:
- Utilized prospective data from the Newcastle Thousand Families Study.
- Measured FEV1 in 252 cohort members at age 14 and 122 at ages 49-51.
- Employed linear regression models to analyze cross-sectional and longitudinal associations.
Main Results:
- Lower height, BMI, shorter breastfeeding duration, childhood severe respiratory illness, asthma, TB history, and lower social class predicted lower FEV1 at age 14.
- Female sex, higher adolescent FEV1, lower birth weight, smoking history, and childhood severe respiratory illness predicted greater FEV1 decline between ages 14 and 49-51.
Conclusions:
- Lung function change from youth to middle age is multifactorial, influenced by adolescent lung function, sex, smoking, birth weight, and childhood respiratory health.
- Early life factors and life-course exposures significantly shape adult pulmonary health trajectory.
Background:
Although childhood respiratory tract infections and low birth weight have both been associated with reduced adult lung function, little is known about the timing of these associations during life. We used data from the Newcastle Thousand Families Study to examine how these and other factors influenced FEV(1) at age 14 years and between 14 and 49 to 51 years.
Methods:
Detailed information was collected prospectively during childhood. At age 14 years, 252 members of the cohort were recruited into a case-control study of respiratory health, which included measurement of FEV(1). One hundred twenty-two of these were measured again at age 49 to 51 years. Linear regression models were used to examine cross-sectional and longitudinal influences on FEV(1).
Results:
Lower height (P < .001), lower BMI (P < .001), being breast fed for less than 4 weeks (P = .028), childhood history of severe respiratory illness (P = .014), childhood history of asthma (P = .004), childhood history of TB (P = .023), and birth into a lower social class (P = .049) were all significant independent predictors of lower FEV(1) at 14 years of age. Correspondingly, being a women (P < .001), and having a higher FEV(1) at age 14 years (P < .001), a lower standardized birth weight (P = .025), a greater lifetime number of cigarettes smoked (P = .007), and a childhood history of severe respiratory illness (P = .047) were all independently associated with a greater decline (or a smaller increase) in FEV(1) between age 14 and 49 to 51 years.
Conclusions:
This study suggests that the change in FEV(1) between youth and middle age depends on several factors acting throughout life, including FEV(1) in adolescence, sex, cigarette smoking, birth weight, and childhood respiratory health.
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