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March 1, 1997AJP Heart and Circulatory Physiology289 citations

Four weeks of cycle training increases basal production of nitric oxide from the forearm

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BKBronwyn A. KingwellBSBridget SherrardGJGarry Jennings

Key Result

Four weeks of cycle training caused greater forearm vasoconstriction in response to L-NMMA compared to sedentary activity (P=0.004), indicating increased basal nitric oxide production.

Key Points

  • This research aims to explore how cycle training influences nitric oxide production in nontrained vascular beds.
  • Thirteen sedentary males underwent 4 weeks of cycle training and 4 weeks of normal activity in a randomized order.
  • Venous occlusion plethysmography assessed blood flow responses to various agents after each intervention.
  • Intrabrachial blood pressure and other hemodynamic changes were measured pre- and post-training.
  • Training resulted in increased maximal workload and oxygen consumption, while blood pressure decreased.
  • L-NMMA led to significantly greater vasoconstriction post-training (P = 0.004).
  • Nitrate and nitrite consumption decreased post-training, indicating enhanced nitric oxide metabolism (P = 0.04).

Study Design

Type

RCT (n=13)

Randomization

Randomized crossover

Structured PICO

Does 4 weeks of cycle training increase basal production of nitric oxide in nontrained vascular beds in healthy sedentary men?

P
Population
13 healthy, sedentary male volunteers who underwent 4 weeks of cycle training and 4 weeks of sedentary activity in a randomized crossover design.
I
Intervention
4 weeks of cycle training
C
Comparator
4 weeks of normal sedentary activity (crossover design)
O
Outcome
Forearm blood flow responses to intra-arterial infusions of the nitric oxide synthase inhibitor N(G)-monomethyl-L-arginine (L-NMMA), acetylcholine, and sodium nitroprusside measured by venous occlusion plethysmographysurrogate

Four weeks of cycle training increases basal nitric oxide production in non-exercising vascular beds, suggesting a systemic mechanism for the cardiovascular protective effects of exercise.

Main Result

p-value: p=0.004

Abstract

The purpose of this study was to determine whether nontrained vascular beds might contribute to the beneficial effects of exercise, including reduced blood pressure by enhanced nitric oxide production. Thirteen healthy, sedentary male volunteers performed 4 wk of normal sedentary activity and 4 wk of cycle training in a randomized order. At the end of each intervention, venous occlusion plethysmography was used to study the forearm blood flow responses to intra-arterial infusions of the nitric oxide synthase inhibitor N(G)-monomethyl-L-arginine (L-NMMA), acetylcholine, and sodium nitroprusside. Training increased the maximal work-load and maximal oxygen consumption, whereas intrabrachial blood pressure was reduced. L-NMMA caused a greater vasoconstriction after training (P = 0.004). Net nitrate and nitrite consumption by the forearm was less after training both before and after administration of L-NMMA (P = 0.04), consistent with increased nitrate and nitrite production from nitric oxide metabolism. There was no difference in the response to acetylcholine or sodium nitroprusside between the two states. Preliminary studies showed an increase in forearm blood flow and blood viscosity after cycling, suggesting that elevated shear stress in this vascular bed may contribute to endothelial adaptation and the cardiovascular protective effects of exercise training.

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Cite This Study

Kingwell et al. (1997) conducted an RCT in Healthy, sedentary (n=13). Cycle training vs. Normal sedentary activity was evaluated on Forearm vasoconstriction response to L-NMMA (p=0.004). Four weeks of cycle training caused greater forearm vasoconstriction in response to L-NMMA compared to sedentary activity (P=0.004), indicating increased basal nitric oxide production.

synapsesocial.com/papers/6a62dd5d809dd4a9e2c1a5achttps://doi.org/10.1152/ajpheart.1997.272.3.h1070
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

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  4. 4Nitric Oxide Biomarkers Increase During Exercise-Induced Vasodilation in the Forearm2000 · 35 citations
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