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Blood protein profiles related to preterm birth and retinopathy of prematurity
Hanna Danielsson1,2, Abdellah Tebani3,4,5, Wen Zhong3
1Department of Microbiology, Tumor and Cell Biology, Centre for Translational Microbiome Research, Karolinska Institutet, Stockholm, Sweden.
Insights
This study analyzed serum proteins in extremely preterm infants, identifying 20 linked to gestational age and retinopathy of prematurity (ROP). Lower protein levels were observed in infants with severe ROP, aiding understanding of this condition.
Area of Science:
- Neonatal Medicine
- Proteomics
- Ophthalmology
Background:
- Nearly 10% of births are preterm, with extreme prematurity associated with significant morbidity and mortality.
- Retinopathy of prematurity (ROP) is a serious neurovascular complication in extremely preterm infants, potentially leading to blindness.
- Advances in omics technologies enable detailed protein expression analysis for clinical insights.
Purpose of the Study:
- To investigate longitudinal serum protein profiles in extremely preterm infants.
- To identify protein associations with gestational age and the development of ROP.
- To enhance understanding of the pathophysiological mechanisms underlying ROP.
Main Methods:
- Longitudinal serum samples from 14 extremely preterm infants were analyzed.
- 448 unique protein targets were quantified using Proximity Extension Assays.
- Data was integrated with perinatal and ROP clinical information.
Main Results:
- Twenty serum proteins were significantly associated with gestational age and/or ROP.
- Identified proteins are involved in angiogenesis, hematopoiesis, immune function, bone regulation, and lipid metabolism.
- Infants with severe ROP exhibited persistently lower levels of certain proteins.
Conclusions:
- This research elucidates the relationship between serum protein levels, immaturity, and ROP development.
- Findings are crucial for improving ROP diagnosis, treatment, and prevention strategies.
- Longitudinal protein profiling offers valuable insights into the complex factors affecting extremely preterm infants.
Background:
Nearly one in ten children is born preterm. The degree of immaturity is a determinant of the infant's health. Extremely preterm infants have higher morbidity and mortality than term infants. One disease affecting extremely preterm infants is retinopathy of prematurity (ROP), a multifactorial neurovascular disease that can lead to retinal detachment and blindness. The advances in omics technology have opened up possibilities to study protein expressions thoroughly with clinical accuracy, here used to increase the understanding of protein expression in relation to immaturity and ROP.
Methods:
Longitudinal serum protein profiles the first months after birth in 14 extremely preterm infants were integrated with perinatal and ROP data. In total, 448 unique protein targets were analyzed using Proximity Extension Assays.
Results:
We found 20 serum proteins associated with gestational age and/or ROP functioning within mainly angiogenesis, hematopoiesis, bone regulation, immune function, and lipid metabolism. Infants with severe ROP had persistent lower levels of several identified proteins during the first postnatal months.
Conclusions:
The study contributes to the understanding of the relationship between longitudinal serum protein levels and immaturity and abnormal retinal neurovascular development. This is essential for understanding pathophysiological mechanisms and to optimize diagnosis, treatment and prevention for ROP.
Impact:
Longitudinal protein profiles of 14 extremely preterm infants were analyzed using a novel multiplex protein analysis platform combined with perinatal data. Proteins associated with gestational age at birth and the neurovascular disease ROP were identified. Among infants with ROP, longitudinal levels of the identified proteins remained largely unchanged during the first postnatal months. The main functions of the proteins identified were angiogenesis, hematopoiesis, immune function, bone regulation, lipid metabolism, and central nervous system development. The study contributes to the understanding of longitudinal serum protein patterns related to gestational age and their association with abnormal retinal neuro-vascular development.
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