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Fetal Undernutrition Programming, Sympathetic Nerve Activity, and Arterial Hypertension Development
Vinícius Schiavinatto Mariano1, Patrícia Aline Boer1, José Antônio Rocha Gontijo1
1Fetal Programming and Hydroelectrolyte Metabolism Laboratory, Nucleus of Medicine and Experimental Surgery, Department of Internal Medicine, Faculty of Medical Sciences, State University of Campinas, São Paulo, Brazil.
Insights
Maternal low-protein intake during pregnancy programs offspring for hypertension. This programming involves altered kidney function and sympathetic nervous system overactivity, impacting salt and water balance and blood pressure regulation.
Area of Science:
- Developmental programming
- Cardiovascular physiology
- Renal physiology
Background:
- Low birth weight, often linked to gestational environmental disruption, increases susceptibility to non-communicable diseases like hypertension.
- Maternal dietary disturbances, specifically low-protein (LP) intake, in animal models reveal mechanisms for arterial hypertension development in offspring.
Purpose of the Study:
- To review studies connecting sympathetic nervous system activity to water/salt handling and blood pressure control in offspring from protein-restricted pregnancies.
- To explore the role of neurokinins and catecholamines in these pathophysiological mechanisms.
Main Methods:
- Review of existing functional and observational studies on maternal protein restriction and offspring cardiovascular health.
- Analysis of mechanisms involving renal sodium excretion, renin-angiotensin-aldosterone system, sympathetic nervous system activity, and adrenal medulla secretion.
Main Results:
- Maternal LP intake causes renal sodium excretion decrease and renin-angiotensin-aldosterone system dysfunction in offspring.
- Reduced nephron number and glomerulosclerosis contribute to hypertension.
- Overactivity of the sympathetic nervous system, driven by altered renal afferent nerve activity, enhances proximal sodium reabsorption, contributing to hypertension.
Conclusions:
- Maternal protein restriction reprograms offspring, leading to hypertension through complex interactions between renal and sympathetic nervous systems.
- Adrenal medulla secretion changes and neurochemical pathways (neurokinins, catecholamines) are implicated in the development of hypertension.
Abstract:
A wealth of evidence showed that low birth weight is associated with environmental disruption during gestation, triggering embryotic or fetal adaptations and increasing the susceptibility of progeny to non-communicable diseases, including metabolic and cardiovascular diseases, obesity, and arterial hypertension. In addition, dietary disturbance during pregnancy in animal models has highlighted mechanisms that involve the genesis of arterial hypertension, particularly severe maternal low-protein intake (LP). Functional studies demonstrated that maternal low-protein intake leads to the renal decrease of sodium excretion and the dysfunction of the renin-angiotensin-aldosterone system signaling of LP offspring. The antinatriuretic effect is accentuated by a reduced number of nephron units and glomerulosclerosis, which are critical in establishing arterial hypertension phenotype. Also, in this way, studies have shown that the overactivity of the central and peripheral sympathetic nervous system occurs due to reduced sensory (afferent) renal nerve activity. As a result of this reciprocal and abnormal renorenal reflex, there is an enhanced tubule sodium proximal sodium reabsorption, which, at least in part, contributes directly to arterial hypertension development in some of the programmed models. A recent study has observed that significant changes in adrenal medulla secretion could be involved in the pathophysiological process of increasing blood pressure. Thus, this review aims to compile studies that link the central and peripheral sympathetic system activity mechanisms on water and salt handle and blood pressure control in the maternal protein-restricted offspring. Besides, these pathophysiological mechanisms mainly may involve the modulation of neurokinins and catecholamines pathways.
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