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Completed

NCT Number: NCT00828243

Genetic Regulation of Surfactant Deficiency

Inherited deficiencies in any one of 3 genes (surfactant protein B, surfactant protein C, and ATP-binding cassette transporter A3) can cause neonatal respiratory distress syndrome by disrupting metabolism of the pulmonary surfactant. The investigators will use state of the art methods to link specific changes in the genetic code of each of these genes with disruption of discrete steps in the metabolism of the pulmonary surfactant in human newborn infants. These studies will lead to improved diagnostic capabilities and suggest novel strategies to correct surfactant deficiency in newborn infants.

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Key information

Age range

1 day–6 month

Sex eligibility

All sexes

Study type

Observational

Primary location

St. Louis Children's Hospital

St Louis, Missouri, 63110, United States

About this study

Genetic regulation of neonatal pulmonary surfactant deficiency has been suggested by studies of gender, genetic linkage, recurrent familial cases, targeted gene ablation in murine lineages, and by racial disparity in risk of neonatal respiratory distress syndrome. Successful fetal-neonatal pulmonary transition requires production of the pulmonary surfactant, a phospholipid-protein film that lines alveoli and maintains alveolar patency at end expiration. Our goal is to understand the genetic mechanisms that disrupt pulmonary surfactant metabolism and cause neonatal respiratory distress syndrome. Studies in human newborn infants have demonstrated that 3 genes are critical for surfactant metabolism: surfactant protein B (SFTPB), surfactant protein C (SFTPC), and an ATP-binding cassette transporter, ABCA3 (ABCA3). To understand genetic regulatory mechanisms, we will investigate the contribution of variation in each of these genes to risk of neonatal respiratory distress syndrome by testing the hypothesis that genetic variants in the SFTPB, SFTPC, and ABCA3 disrupt pulmonary surfactant metabolism. Using high throughput automated sequencing to genotype, multidimensional protein identification technology to assess quantitative and qualitative differences in surfactant protein B and C expression, in vivo metabolic labeling with stable isotopically labeled precursors to estimate surfactant protein B and C and phospholipid metabolic rates, and cohort sizes that provide statistical power (0.8), we will use race-specific, severity-stratified case-control (N=480) and case comparison (N=250) designs to understand genetically regulated, metabolic mechanisms that cause surfactant deficiency by disrupting expression or altering processing of surfactant proteins B or C or by disrupting surfactant phospholipid composition in human newborn infants. Improved understanding of genetic regulation of surfactant deficiency will suggest novel diagnostic strategies to identify and categorize high risk infants and therapeutic strategies that target discrete steps in pulmonary surfactant metabolism to improve outcomes of infants with neonatal respiratory distress syndrome.

Who can participate

Healthy volunteers accepted: No

Only the study team can determine whether someone qualifies for participation.

Inclusion criteria

  • Newborn infants with respiratory distress syndrome who require mechanical ventilation via endotracheal tube or tracheostomy in the first 6 months of life

Exclusion criteria

  • Infants with conditions likely to cause imminent death

Treatment and study plan

Nutrient

Drug

We administer stable isotopically labeled precursors of surfactant phospholipids ([1-13C1] acetate) and of surfactant protein-B ([5,5,5-2H3] leucine) to infants with neonatal respiratory distress syndrome. Using mass spectrometry, we measure incorporation of stable isotopically labeled precursors in tracheal aspirates and compare surfactant phospholipid and surfactant protein-B turnover.

Other names: [1-13C1] acetate, [5,5,5-2H3] leucine

Primary outcomes

  1. Association of specific variants or interactions among variants in SFTPB, SFTPC, and ABCA3 with neonatal respiratory distress syndrome

    Time frame: 1 week

    Statistical association of increased risk of neonatal respiratory distress in term or near term infants with specific genomic variants in SFTPB, SFTPC, and ABCA3

Secondary outcomes

  1. Association of specific variants or interactions among variants in SFTPB, SFTPC, and ABCA3 with fractional synthetic rate and/or fractional catabolic rate of surfactant phospholipids, surfactant protein-B, and surfactant protein-C

    Time frame: 1 week

    Statistical association of quantitative surfactant phospholipid metabolic characteristics with specific genomic variants in SFTPB, SFTPC, and ABCA3

Sponsors and collaborators

Lead sponsor

Washington University School of Medicine

Other

Collaborators

  • National Heart, Lung, and Blood Institute (NHLBI)

Registry information

Official study title

Genetic Regulation of Surfactant Deficiency in Human Newborn Infants

Important dates

Study start
2007
Primary completion
2013
Study completion
2013
First posted
Jan 23, 2009
Registry last updated
Jun 7, 2021

OpenTrials presents study information sourced from ClinicalTrials.gov. The official registry record should be consulted for the latest information.

View the official ClinicalTrials.gov record (opens in a new tab)

This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.

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