Is perinatal neuroendocrine programming involved in the developmental origins of metabolic disorders?
David Iw Phillips1, Stephen G Matthews
1David IW Phillips, MRC Lifecourse Epidemiology Unit, Southampton General Hospital, Tremona Road, Southampton SO16 6YD, United Kingdom.
Insights
Small size at birth and during infancy increases the risk of metabolic diseases like diabetes later in life. This is linked to altered hormonal systems and stress responses, potentially an evolutionary adaptation to early adversity.
Area of Science:
- Developmental biology
- Endocrinology
- Metabolic disease research
Background:
- Small size at birth and infancy is linked to increased risk of diabetes and metabolic syndrome.
- Early life environmental factors are implicated, but mechanisms remain unclear.
- Hormonal systems (IGF-1/GH axis, gonadal hormones, stress response) are key regulators of growth and development.
Purpose of the Study:
- To explore the mechanisms linking early development, hormonal changes, and later-life metabolic disease risk.
- To investigate the role of neuroendocrine responses and phenotypic plasticity in metabolic health.
- To understand how early life adversity influences adult stress responses and disease susceptibility.
Main Methods:
- Review of animal and human studies on birth size, hormonal axes, and metabolic outcomes.
- Analysis of neuroendocrine mediators of stress response.
- Examination of evolutionary perspectives, including phenotypic plasticity.
Main Results:
- Small size at birth is associated with altered activity in the hypothalamic-pituitary-adrenal axis and sympathoadrenal system.
- Adverse prenatal experiences (e.g., famine, poor diet) correlate with enhanced stress responses decades later.
- Neuroendocrine mediators of stress are potent and likely influence metabolic disease risk.
Conclusions:
- Developmental factors, particularly early life size and stress system programming, significantly impact long-term metabolic health.
- Phenotypic plasticity, an adaptive response to early adversity, may predispose individuals to metabolic disease in environments with nutritional excess.
- Understanding these neuroendocrine pathways is crucial for preventing metabolic diseases linked to early life conditions.
Abstract:
The discovery that small size at birth and during infancy are associated with a higher risk of diabetes and related metabolic disease in later life has pointed to the importance of developmental factors in these conditions. The birth size associations are thought to reflect exposure to adverse environmental factors during early development but the mechanisms involved are still not fully understood. Animal and human work has pointed to the importance of changes in the set-point of a number of key hormonal systems controlling growth and development. These include the IGF-1/GH axis, gonadal hormones and, in particular, the systems mediating the classical stress response. Several studies show that small size at birth is linked with increased activity of the hypothalamic-pituitary-adrenal axis and sympathoadrenal system in adult life. More recent human studies have shown associations between specific adverse experiences during pregnancy, such as famine or the consumption of adverse diets, and enhanced stress responses many decades later. The mediators of these neuroendocrine responses are biologically potent and are likely to have a direct influence on the risk of metabolic disease. These neuroendocrine changes may also have an evolutionary basis being part of broader process, termed phenotypic plasticity, by which adverse environmental cues experienced during development modify the structure and physiology of the adult towards a phenotype adapted for adversity. The changes are clearly advantageous if they lead to a phenotype which is well-adapted for the adult environment, but may lead to disease if there is subsequent overnutrition or other unexpected environmental conditions.
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