ArticleThe Journal of physiology2018
Effect of centrally acting angiotensin converting enzyme inhibitor on the exercise-induced increases in muscle sympathetic nerve activity.
Article in The Journal of physiology, 2018. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 11 papers.
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Who cites it
11 citing papers in PubMed, 19 citations in OpenAlex.
- Low-dose fentanyl does not alter muscle sympathetic nerve activity, blood pressure, or tolerance during progressive central hypovolemia.American journal of physiology. Regulatory, integrative and comparative physiology · 2022Trial
- Additional blood-pressure-lowering effect of exercise in adults on stable antihypertensive medication: a systematic review and meta-analysis of randomised controlled trials.Hypertension research : official journal of the Japanese Society of Hypertension · 2026Review
- Maintained sympathetic reactivity but blunted pressor response to static handgrip exercise in heart failure with preserved ejection fraction.Clinical autonomic research : official journal of the Clinical Autonomic Research Society · 2025Article
- Abnormal neurovascular control during central and peripheral chemoreceptors stimulation in heart failure patients with preserved ejection fraction.Clinical autonomic research : official journal of the Clinical Autonomic Research Society · 2024Article
- Control of blood pressure in the cold: differentiation of skin and skeletal muscle vascular resistance.Experimental physiology · 2023Article
- Global Reach 2018: sympathetic neural and hemodynamic responses to submaximal exercise in Andeans with and without chronic mountain sickness.American journal of physiology. Heart and circulatory physiology · 2022Article
- Early sympathetic neural responses during a cold pressor test linked to pain perception.Clinical autonomic research : official journal of the Clinical Autonomic Research Society · 2021Article
- Mechanisms of sympathetic restraint in human skeletal muscle during exercise: role of α-adrenergic and nonadrenergic mechanisms.American journal of physiology. Heart and circulatory physiology · 2020Article
- Muscle sympathetic nerve activity during exercise.The journal of physiological sciences : JPS · 2019Review
- New insights into arterial baroreflex function during acute exercise: role of central angiotensin II.The Journal of physiology · 2018Article
- Antihypertensive Treatment Fails to Control Blood Pressure During Exercise.Hypertension (Dallas, Tex. : 1979) · 2018Article
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6 authors at 2 institutions in 1 country.
Funding
Abstract
key pointsThe arterial baroreflex's operating point pressure is reset upwards and rightwards from rest in direct relation to the increases in dynamic exercise intensity. The intraneural pathways and signalling mechanisms that lead to upwards and rightwards resetting of the operating point pressure, and hence the increases in central sympathetic outflow during exercise, remain to be identified. We tested the hypothesis that the central production of angiotensin II during dynamic exercise mediates the increases in sympathetic outflow and, therefore, the arterial baroreflex operating point pressure resetting during acute and prolonged dynamic exercise. The results identify that perindopril, a centrally acting angiotensin converting enzyme inhibitor, markedly attenuates the central sympathetic outflow during acute and prolonged dynamic exercise. ABSTRACT: We tested the hypothesis that the signalling mechanisms associated with the dynamic exercise intensity related increases in muscle sympathetic nerve activity (MSNA) and arterial baroreflex resetting during exercise are located within the central nervous system. Participants performed three randomly ordered trials of 70° upright back-supported dynamic leg cycling after ingestion of placebo and two different lipid soluble angiotensin converting enzyme inhibitors (ACEi): perindopril (high lipid solubility), captopril (low lipid solubility). Repeated measurements of whole venous blood (n = 8), MSNA (n = 7) and arterial blood pressures (n = 14) were obtained at rest and during an acute (SS1) and prolonged (SS2) bout of steady state dynamic exercise. Arterial baroreflex function curves were modelled at rest and during exercise. Peripheral venous superoxide concentrations measured by electron spin resonance spectroscopy were elevated during exercise and were not altered by ACEi at rest (P ≥ 0.4) or during exercise (P ≥ 0.3). Baseline MSNA and mean arterial pressure were unchanged at rest (P ≥ 0.1; P ≥ 0.8, respectively). However, during both SS1 and SS2, the centrally acting ACEi perindopril attenuated MSNA compared to captopril and the placebo (P < 0.05). Arterial pressures at the operating point and threshold pressures were decreased with perindopril from baseline to SS1 with no further changes in the operating point pressure during SS2 under all three conditions. These data suggest that centrally acting ACEi is significantly more effective at attenuating the increase in the acute and prolonged exercise-induced increases in MSNA.
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