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Updated: May 7, 2026

A Swine Model of Neonatal Asphyxia
Published on: October 11, 2011
Skeletal consequences of preterm birth in pigs as a model for preterm infants
Brittany M Wilson1, Frank C Ko1,2, Meghan M Moran1,2
1Department of Anatomy & Cell Biology, Rush University Medical Center, Chicago, IL, 60612, United States.
Insights
A new pig model replicates preterm birth complications, including metabolic bone disease of prematurity (MBDP). Early IGF-1 treatment showed minimal impact on bone development in preterm pigs, highlighting the need for further research into skeletal health challenges.
Area of Science:
- Neonatal research
- Skeletal biology
- Animal models
Background:
- Preterm birth impacts 10% of live births, causing health issues like metabolic bone disease of prematurity (MBDP).
- Limited understanding of bone structure, strength, and quality post-preterm birth due to lack of suitable animal models.
Purpose of the Study:
- To evaluate a pig model for replicating preterm birth and MBDP clinical features.
- To assess the efficacy of early postnatal Insulin-like Growth Factor-1 (IGF-1) treatment in preterm pigs.
Main Methods:
- Preterm pigs (90% gestation) were compared to term pigs under intensive care.
- Preterm pigs received vehicle or IGF-1 treatment (2.25 mg/kg/d).
- Bone tissues were analyzed at postnatal days 1, 5, and 19.
Main Results:
- Preterm birth significantly affected bone development markers, including elevated alkaline phosphatase and reduced phosphate and calcium.
- Bone resorption markers (C-terminal crosslinks of type I collagen) were increased in preterm pigs.
- IGF-1 supplementation demonstrated minimal effect on bone outcomes in preterm pigs.
- Preterm pigs exhibited reduced femoral cortical properties, indicating decreased bone strength.
Conclusions:
- The preterm pig model effectively replicates human infant preterm bone development and MBDP features.
- This model facilitates direct examination of skeletal tissues to understand underlying mechanisms.
- Early IGF-1 treatment was not effective in improving bone health in this preterm pig model.
Abstract:
Preterm birth affects about 10% of all live births with many resultant health challenges, including metabolic bone disease of prematurity (MBDP), which is characterized by elevated alkaline phosphatase, suppressed phosphate, and deficient skeletal development. Because of the lack of an animal model, very little is known about bone structure, strength, and quality after preterm birth. This study investigated the utility of a pig model to replicate clinical features of preterm birth, including MBDP, and sought to determine if early postnatal administration of IGF-1 was an effective treatment. Preterm pigs, born by caesarean section at 90% gestation, were reared in intensive care facilities (respiratory, thermoregulatory, and nutritional support) and compared with sow-reared term pigs born vaginally. Preterm pigs were systemically treated with vehicle or IGF-1 (recombinant human IGF-1/BP-3, 2.25 mg/kg/d). Tissues were collected at postnatal days 1, 5, and 19 (the normal weaning period in pigs). Most bone-related outcomes were affected by preterm birth throughout the study period, whereas IGF-1 supplementation had almost no effect. By day 19, alkaline phosphatase was elevated, phosphate and calcium were reduced, and the bone resorption marker C-terminal crosslinks of type I collagen was elevated in preterm pigs compared to term pigs. Preterm pigs also had decrements in femoral cortical cross-sectional properties, consistent with reduced whole-bone strength. Thus, the preterm pig model replicates many features of preterm bone development in infants, including features of MBDP, and allows for direct interrogation of skeletal tissues, enhancing the field's ability to examine underlying mechanisms.
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