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Published on: October 31, 2025
Increased Regulatory T Cells Precede the Development of Bronchopulmonary Dysplasia in Preterm Infants
Julia Pagel1,2,3,4, Nele Twisselmann1, Tanja K Rausch1,5
1Department of Pediatrics, University of Lübeck, Lübeck, Germany.
Insights
Preterm infants show higher frequencies and enhanced function of regulatory T cells (Tregs), which may contribute to inflammation and bronchopulmonary dysplasia (BPD). These Tregs have a unique, dynamic phenotype in early life.
Area of Science:
- Immunology
- Neonatology
- Respiratory Medicine
Background:
- Regulatory T cells (Tregs) are crucial for immune homeostasis.
- The role of Tregs in bronchopulmonary dysplasia (BPD) development in preterm infants is not well understood.
- Preterm infants face significant risks of immune dysregulation and chronic lung disease.
Purpose of the Study:
- To characterize the frequencies, phenotype, and function of Tregs in preterm infants.
- To investigate the association between Treg characteristics and the development of BPD.
- To compare Treg profiles in preterm neonates with those in term neonates and adults.
Main Methods:
- Analysis of peripheral blood from 382 preterm infants (23-36 weeks gestational age) within the first 28 days of life.
- Immunophenotyping of CD4+ CD25+ forkhead box protein 3 (FoxP3)+ Tregs.
- Functional assays comparing Treg suppressive capacity in preterm, term, and adult blood.
Main Results:
- Extreme prematurity correlated with increased Treg frequencies, peaking in the second week of life.
- Elevated Treg frequencies preceded BPD development, irrespective of gestational age.
- Preterm infant Tregs exhibited a distinct, dynamic phenotype (naïve to activated) and greater immunosuppressive function compared to adults.
Conclusions:
- Preterm neonates have increased frequencies and enhanced function of Tregs with a unique, changing phenotype.
- The sustained abundance and activity of Tregs may promote inflammation, contributing to BPD.
- Tregs represent a potential target for future diagnostic and therapeutic strategies in BPD.
Abstract:
Regulatory T cells (Tregs) are important for the ontogenetic control of immune activation and tissue damage in preterm infants. However, the role of Tregs for the development of bronchopulmonary dysplasia (BPD) is yet unclear. The aim of our study was to characterize CD4+ CD25+ forkhead box protein 3 (FoxP3)+ Tregs in peripheral blood of well-phenotyped preterm infants (n = 382; 23 + 0 - 36 + 6 weeks of gestational age) with a focus on the first 28 days of life and the clinical endpoint BPD (supplemental oxygen for longer than 28 days of age). In a subgroup of preterm infants, we characterized the immunological phenotype of Tregs (n = 23). The suppressive function of Tregs on CD4+CD25- T cells was compared in preterm, term and adult blood. We observed that extreme prematurity was associated with increased Treg frequencies which peaked in the second week of life. Independent of gestational age, increased Treg frequencies were noted to precede the development of BPD. The phenotype of preterm infant Tregs largely differed from adult Tregs and displayed an overall naïve Treg population (CD45RA+/HLA-DR-/Helios+), especially in the first days of life. On day 7 of life, a more activated Treg phenotype pattern (CCR6+, HLA-DR+, and Ki-67+) was observed. Tregs of preterm neonates had a higher immunosuppressive capacity against CD4+CD25- T cells compared to the Treg compartment of term neonates and adults. In conclusion, our data suggest increased frequencies and functions of Tregs in preterm neonates which display a distinct phenotype with dynamic changes in the first weeks of life. Hence, the continued abundance of Tregs may contribute to sustained inflammation preceding the development of BPD. Functional analyses are needed in order to elucidate whether Tregs have potential as future target for diagnostics and therapeutics.
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