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May 28, 2015Journal of Applied Physiology76 citations

Skeletal muscle vasodilation during systemic hypoxia in humans

FDFrank A. Dinenno

Key Result

Combined nitric oxide and prostaglandin inhibition during hypoxic exercise blunts augmented vasodilation and hyperemia by approximately 50% compared with control conditions.

Structured PICO

What are the roles of nitric oxide and prostaglandins in regulating skeletal muscle vasodilation during systemic hypoxia in humans?

P
Population
Humans (focusing on skeletal muscle during systemic hypoxia)
I
Intervention
Nitric oxide (NO) and prostaglandin (PG) inhibition during systemic hypoxia (at rest and during submaximal rhythmic exercise)
C
Comparator
Control (normoxic) conditions or hypoxia alone
O
Outcome
Skeletal muscle vasodilation and blood flowsurrogate

Nitric oxide and prostaglandins are obligatory for hypoxic vasodilation in resting human skeletal muscle, but other local substances contribute during hypoxic exercise.

Abstract

In humans, the net effect of acute systemic hypoxia in quiescent skeletal muscle is vasodilation despite significant reflex increases in muscle sympathetic vasoconstrictor nerve activity. This vasodilation increases tissue perfusion and oxygen delivery to maintain tissue oxygen consumption. Although several mechanisms may be involved, we recently tested the roles of two endothelial-derived substances during conditions of sympathoadrenal blockade to isolate local vascular control mechanisms: nitric oxide (NO) and prostaglandins (PGs). Our findings indicate that 1) NO normally plays a role in regulating vascular tone during hypoxia independent of the PG pathway; 2) PGs do not normally contribute to vascular tone during hypoxia, however, they do affect vascular tone when NO is inhibited; 3) NO and PGs are not independently obligatory to observe hypoxic vasodilation when assessed as a response from rest to steady-state hypoxia; and 4) combined NO and PG inhibition abolishes hypoxic vasodilation in human skeletal muscle. When the stimulus is exacerbated via combined submaximal rhythmic exercise and systemic hypoxia to cause further red blood cell (RBC) deoxygenation, skeletal muscle blood flow is augmented compared with normoxic exercise via local dilator mechanisms to maintain oxygen delivery to active tissue. Data obtained in a follow-up study indicate that combined NO and PG inhibition during hypoxic exercise blunts augmented vasodilation and hyperemia compared with control (normoxic) conditions by ∼50%; however, in contrast to hypoxia alone, the response is not abolished, suggesting that other local substances are involved. Factors associated with greater RBC deoxygenation such as ATP release, or nitrite reduction to NO, or both likely play a role in regulating this response.

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Cite This Study

Frank A. Dinenno (2015) conducted a review in Systemic hypoxia. Combined NO and PG inhibition vs. Control (normoxic) conditions was evaluated on Skeletal muscle vasodilation and hyperemia. Combined nitric oxide and prostaglandin inhibition during hypoxic exercise blunts augmented vasodilation and hyperemia by approximately 50% compared with control conditions.

synapsesocial.com/papers/6a23b8bb9ed8aa0626a04158https://doi.org/10.1152/japplphysiol.00256.2015
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