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Published on: October 25, 2015
Physiological development of the equine fetus during late gestation
A L Fowden1, D A Giussani1, A J Forhead1
1Department of Physiology, Development and Neuroscience, University of Cambridge, Cambridge, UK.
Insights
Fetal development in horses significantly impacts adult health and performance. Early life stresses can alter equine phenotype, affecting metabolic, cardiovascular, and endocrine systems, with implications for athletic potential.
Area of Science:
- Equine science
- Developmental programming
- Reproductive technologies
Background:
- In utero development influences neonatal viability, adult phenotype, and disease susceptibility across species.
- Environmental factors like maternal nutrition and stress can induce long-term cardiovascular and metabolic dysfunction.
- Limited knowledge exists on fetal horse development and its long-term phenotypic impacts due to accessibility and lifespan.
Purpose of the Study:
- To review normal metabolic, cardiovascular, and endocrine development in fetal horses during late gestation.
- To examine the responsiveness of fetal equine systems to late-gestation stresses (hypoglycemia, hypotension).
- To explore the role of the equine placenta and fetal endocrine glands in mediating developmental changes.
Main Methods:
- Review of existing data on fetal horse development.
- Examination of physiological system responses to induced stresses.
- Emphasis on the equine placenta and fetal endocrine glands' roles.
Main Results:
- Early life environment can alter subsequent equine metabolic, cardiovascular, and endocrine phenotype.
- Postnatal growth and bone development are also affected by early life conditions.
- The immediate neonatal environment is a critical window for programming equine phenotype.
Conclusions:
- Developmental programming influences equine health and athletic performance.
- Horses born with abnormal body weight or via assisted reproductive technologies may have altered early life environments.
- Further research into cellular and molecular mechanisms is needed.
Abstract:
In many species, the pattern of growth and physiological development in utero has an important role in determining not only neonatal viability but also adult phenotype and disease susceptibility. Changes in fetal development induced by a range of environmental factors including maternal nutrition, disease, placental insufficiency and social stresses have all been shown to induce adult cardiovascular and metabolic dysfunction that often lead to ill health in later life. Compared to other precocious animals, much less is known about the physiological development of the fetal horse or the longer-term impacts on its phenotype of altered development in early life because of its inaccessibility in utero, large size and long lifespan. This review summaries the available data on the normal metabolic, cardiovascular and endocrine development of the fetal horse during the second half of gestation. It also examines the responsiveness of these physiological systems to stresses such as hypoglycaemia and hypotension during late gestation. Particular emphasis is placed on the role of the equine placenta and fetal endocrine glands in mediating the changes in fetal development seen towards term and in response to nutritional and other environmental cues. The final part of the review presents the evidence that the early life environment of the horse can alter its subsequent metabolic, cardiovascular and endocrine phenotype as well as its postnatal growth and bone development. It also highlights the immediate neonatal environment as a key window of susceptibility for programming of equine phenotype. Although further studies are needed to identify the cellular and molecular mechanisms involved, developmental programming of physiological phenotype is likely to have important implications for the health and potential athletic performance of horses, particularly if born with abnormal bodyweight, premature or dysmature characteristics or produced by assisted reproductive technologies, indicative of an altered early life environment.
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