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Determining the Role of Maternally-Expressed Genes in Early Development with Maternal Crispants
Published on: December 21, 2021
Maternal HMB treatment affects bone and hyaline cartilage development in their weaned piglets via the
Ewa Tomaszewska1, Siemowit Muszyński2, Piotr Dobrowolski3
1Department of Animal Physiology, Faculty of Veterinary Medicine, University of Life Sciences in Lublin, Lublin, Poland.
Insights
Maternal supplementation with β-hydroxy-β-methylbutyrate (HMB) during gestation improved offspring bone development and strength. This study highlights HMB
Area of Science:
- Animal Science
- Biochemistry
- Bone Biology
Background:
- Prenatal leucine metabolite, β-hydroxy-β-methylbutyrate (HMB), influences offspring growth and bone mechanics sex-dependently.
- Previous animal studies suggest HMB impacts skeletal development.
Purpose of the Study:
- To evaluate the effect of maternal HMB supplementation during gestation on bone development in weaned offspring.
- To investigate HMB's influence on bone morphology, mechanical strength, and biochemical markers.
Main Methods:
- Pregnant sows received either a basal diet or HMB-supplemented diet from day 70 to 90 of gestation.
- Femora from weaned offspring (35 days) were analyzed for morphological, mechanical, and elemental properties.
- Analysis included assessment of proteoglycans, collagen structure, and hormonal markers (leptin, osteoprotegerin, IGF-1).
Main Results:
- Maternal HMB treatment significantly increased offspring body weight and femur mechanical strength in both sexes.
- HMB supplementation elevated bone micro- and macroelement concentrations and proteoglycan content in articular cartilage.
- Sex influenced collagen structure and maturity in cartilage and trabecular bone, independent of HMB treatment.
Conclusions:
- Maternal HMB supplementation accelerates bone development and enhances bone strength in offspring via leptin and osteoprotegerin pathways.
- Sex is a significant factor influencing collagen structure and maturity in developing bone tissues.
- This study provides novel insights into HMB's role in prenatal bone development and its interaction with sex-specific factors.
Abstract:
It has been demonstrated in animal studies that prenatal administration of β-hydroxy-β-methylbutyrate (HMB, metabolite of leucine) influences general growth and mechanical endurance of long bones in newborn offspring in sex-dependent manner. The present experiment was conducted to evaluate the effect of HMB treatment of pregnant sows on bone development in offspring at weaning. From 70th day until the 90th day of gestation, sows received either a basal diet (n = 12) or the same diet supplemented with HMB (n = 12) at the dose of 0.2 g/kg of body weight/day. Femora obtained from six males and females in each group weaned at the age of 35 days were examined. Maternal HMB treatment significantly enhanced body weight and changed bone morphology increasing femur mechanical strength in both sexes. Maternal HMB supplementation also elevated bone micro- and macroelement concentrations and enhanced content of proteoglycans in articular cartilage. Based on the obtained results, it can be concluded that maternal HMB supplementation in the mid-gestation period significantly accelerated bone development in both sexes by upregulation of a multifactorial system including leptin and osteoprotegerin. However, the sex (irrespective of the HMB treatment) was the factor which influenced the collagen structure in cartilages and trabecular bone, as demonstrated both by the Picrosirius red staining and performed analysis of thermal stability of collagenous tissues. The structural differences in collagen between males and females were presumably related to a different collagen maturity. No studies conducted so far provided a detailed morphological analysis of bone, articular cartilage, growth plate and the activities of the somatotropic and pituitary-gonadal axes, as well as leptin/osteoprotegerin system in weaned offspring prenatally treated with HMB. This study showed also the relationship between the maternal HMB treatment and bone osteometric and mechanical traits, hormones, and growth and bone turnover markers such as leptin, osteoprotegerin and insulin-like growth factor-1.
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