Early childhood growth is associated with lung function at 7 years: a prospective population-based study

Gabriela P Peralta1,2,3, Alicia Abellan1,2,3,4, Parisa Montazeri1,2,3

  • 1ISGlobal, Barcelona, Spain.

Insights

Early childhood body mass index (BMI) gain influences later lung function. Accelerated BMI gain is linked to higher lung function but potential airflow limitation, while slower gain is associated with reduced lung capacity.

Area of Science:

  • Pediatric pulmonology
  • Growth and development
  • Environmental epidemiology

Background:

  • Early postnatal growth is linked to later lung function, but previous assessments lacked precision.
  • Understanding precise growth trajectories in early childhood is crucial for interpreting lung function development.

Purpose of the Study:

  • To investigate the association between body mass index (BMI) trajectories in early childhood up to 4 years and lung function at 7 years.
  • To identify specific growth patterns impacting respiratory health outcomes in children.

Main Methods:

  • Utilized data from 1257 children in the Spanish Infancia y Medio Ambiente birth cohort.
  • Classified children into five BMI trajectory groups based on birth size and BMI gain velocity using latent class growth analysis.
  • Assessed lung function parameters (FEV1, FVC, FEV1/FVC, FEF25-75%) at age 7 using multivariable mixed regression.

Main Results:

  • Children with accelerated BMI gain (regardless of birth size) showed higher forced vital capacity (FVC) but lower FEV1/FVC ratios at age 7, indicating potential airflow limitation.
  • Higher birth size combined with accelerated BMI gain was associated with increased FVC.
  • Lower birth size with slower BMI gain was linked to reduced FVC at age 7.

Conclusions:

  • Early childhood accelerated BMI gain is independently associated with enhanced lung function but also airflow limitation at age 7.
  • Slower BMI gain in early childhood, particularly with lower birth size, is linked to diminished lung function.
  • Childhood growth trajectories significantly impact respiratory health outcomes, highlighting the need for tailored growth monitoring.

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