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Published on: June 13, 2021
Prenatal programming of hypertension induces sympathetic overactivity in response to physical stress
Masaki Mizuno1, Khurrum Siddique, Michel Baum
1Departments of Health Care Sciences, University of Texas Southwestern Medical Center, Dallas, TX, USA.
Insights
Prenatal programming of hypertension (PPH) leads to exaggerated sympathetic nervous system responses to physical stress in adult rats. This heightened response may contribute to the development of high blood pressure in individuals born small for gestational age.
Area of Science:
- Cardiovascular Physiology
- Developmental Biology
- Neuroendocrinology
Background:
- Small-for-gestational-age (SGA) infants often develop hypertension later in life.
- Prenatal programming of hypertension (PPH) is linked to factors like maternal malnutrition and stress.
- The role of the sympathetic nervous system in PPH is not fully understood.
Purpose of the Study:
- To directly measure renal sympathetic nerve activity in an animal model of PPH.
- To assess sympathetic responses to physical stress in offspring exposed to prenatal protein restriction.
- To investigate the mechanisms linking SGA to adult hypertension.
Main Methods:
- Adult male rat offspring from dams fed 6% (PPH) or 20% protein (control) diets were studied.
- Systolic blood pressure was measured via tail cuff in conscious rats.
- Renal sympathetic nerve activity was recorded under anesthesia and during physical stress (exercise pressor reflex activation).
Main Results:
- PPH rats exhibited higher systolic blood pressure than controls.
- Baseline sympathetic activity did not differ between groups.
- Physical stress significantly amplified blood pressure, heart rate, and renal sympathetic activity in PPH rats compared to controls.
Conclusions:
- The sympathetic nervous system response to physical stress is markedly exaggerated in a rat model of PPH.
- This exaggerated sympathetic response likely plays a key role in the development of hypertension in SGA individuals.
- Targeting sympathetic overactivity may offer therapeutic strategies for PPH.
Abstract:
Small-for-gestational-age infants are known to develop hypertension in adulthood. This prenatal programming of hypertension (PPH) can result from several insults including maternal dietary protein deprivation, uteroplacental insufficiency, and prenatal administration of glucocorticoids. The mechanisms underlying the development of hypertension remain unclear although the sympathetic nervous system has been indirectly implicated. This study was designed to directly measure renal sympathetic nerve activity both at rest and during physical stress in an animal model of PPH. The adult male offspring of rats fed either a 6% (PPH) or 20% protein diet (control) were investigated. Conscious systolic blood pressure measured by tail cuff was significantly higher in PPH compared with control (140 ± 3 versus 128 ± 3 mm Hg; P<0.05). Baseline mean arterial pressure, heart rate, and renal sympathetic activity were not different between groups during isoflurane anesthesia or after decerebration. Physical stress was induced in decerebrate animals by activating the exercise pressor reflex during static muscle contraction. Stimulation of the exercise pressor reflex evoked significantly larger changes from baseline in mean arterial pressure (40 ± 7 versus 20 ± 4 mm Hg; P<0.05), heart rate (19 ± 3 versus 5 ± 1 bpm; P<0.05), and renal sympathetic activity (198 ± 29% versus 68 ± 14%; P<0.05) in PPH as compared with control. The data demonstrate that the sympathetic response to physical stress is markedly exaggerated in PPH and may play a significant role in the development of hypertension in adults born small for gestational age.
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