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Recent Advances in Exercise Pressor Reflex Function in Health and Disease

Overview
Journal Auton Neurosci
Publisher Elsevier
Specialty Neurology
Date 2020 Aug 31
PMID 32861944
Citations 36
Authors
Affiliations
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Abstract

Autonomic alterations at the onset of exercise are critical to redistribute cardiac output towards the contracting muscles while preventing a fall in arterial pressure due to excessive vasodilation within the contracting muscles. Neural mechanisms responsible for these adjustments include central command, the exercise pressor reflex, and arterial and cardiopulmonary baroreflexes. The exercise pressor reflex evokes reflex increases in sympathetic activity to the heart and systemic vessels and decreases in parasympathetic activity to the heart, which increases blood pressure (BP), heart rate, and total peripheral resistance through vasoconstriction of systemic vessels. In this review, we discuss recent advancements in our understanding of exercise pressor reflex function in health and disease. Specifically, we discuss emerging evidence suggesting that sympathetic vasoconstrictor drive to the contracting and non-contracting skeletal muscle is differentially controlled by central command and the metaboreflex in healthy conditions. Further, we discuss evidence from animal and human studies showing that cardiovascular diseases, including hypertension, diabetes, and heart failure, lead to an altered exercise pressor reflex function. We also provide an update on the mechanisms thought to underlie this altered exercise pressor reflex function in each of these diseases. Although these mechanisms are complex, multifactorial, and dependent on the etiology of the disease, there is a clear consensus that several mechanisms are involved. Ultimately, approaches targeting these mechanisms are clinically significant as they provide alternative therapeutic strategies to prevent adverse cardiovascular events while also reducing symptoms of exercise intolerance.

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References
1.
Mizuno M, Iwamoto G, Vongpatanasin W, Mitchell J, Smith S . Exercise training improves functional sympatholysis in spontaneously hypertensive rats through a nitric oxide-dependent mechanism. Am J Physiol Heart Circ Physiol. 2014; 307(2):H242-51. PMC: 4101645. DOI: 10.1152/ajpheart.00103.2014. View

2.
Sabino-Carvalho J, Teixeira A, Samora M, Daher M, Vianna L . Blunted cardiovascular responses to exercise in Parkinson's disease patients: role of the muscle metaboreflex. J Neurophysiol. 2018; 120(4):1516-1524. DOI: 10.1152/jn.00308.2018. View

3.
Janig W . Mechanical allodynia generated by stimulation of unmyelinated afferent nerve fibres. J Physiol. 2011; 589(Pt 18):4407-8. PMC: 3208212. DOI: 10.1113/jphysiol.2011.217083. View

4.
Muller M, Drew R, Blaha C, Mast J, Cui J, Reed A . Oxidative stress contributes to the augmented exercise pressor reflex in peripheral arterial disease patients. J Physiol. 2012; 590(23):6237-46. PMC: 3530129. DOI: 10.1113/jphysiol.2012.241281. View

5.
Hureau T, Weavil J, Thurston T, Wan H, Gifford J, Jessop J . Pharmacological attenuation of group III/IV muscle afferents improves endurance performance when oxygen delivery to locomotor muscles is preserved. J Appl Physiol (1985). 2019; 127(5):1257-1266. PMC: 6879838. DOI: 10.1152/japplphysiol.00490.2019. View