Guide pratique sur le MAP

27 ↪ Guide pratique sur la maladie artérielle périphérique (MAP) Section 7 1. Adams J, Ogola G, Stafford P, Koutras P, Hartman J. High-intensity interval training for intermittent claudication in a vascular rehabilitation program. J Vasc Nurs 24: 46–49, 2006. 2. Brass EP. Skeletal muscle metabolism as a target for drug therapy in peripheral arterial disease. Vasc Med 1: 55–59, 1996. 3. Bronas UG, Treat-Jacobson D, Leon AS. Comparison of the effect of upper body-ergometry aerobic training vs treadmill training on central cardiorespiratory improvement and walking distance in patients with claudication. J Vasc Surg 53: 1557–1564, 2011. 4. Ernst EE, Matrai A. Intermittent claudication, exercise, and blood rheology. Circulation 76: 1110–1114, 1987. 5. Gardner AW, Skinner JS, Vaughan NR, Bryant CX, Smith LK. Comparison of treadmill walking and stair climbing over a range of exercise intensities in peripheral vascular occlusive disease. Angiology 44: 353–360, 1993. 6. Gerhard-Herman MD, Gornik HL, Barrett C, Barshes NR, Corriere MA, Drachman DE, Fleisher LA, Fowkes FGR, Hamburg NM, Kinlay S, Lookstein R, Misra S, Mureebe L, Olin JW, Patel RAG, Regensteiner JG, Schanzer A, Shishehbor MH, Stewart KJ, Treat-Jacobson D, Walsh ME. 2016 AHA/ACC Guideline on the Management of Patients With Lower Extremity Peripheral Artery Disease: A Report of the American College of Cardiology/ American Heart Association Task Force on Clinical Practice Guidelines. Journal of the American College of Cardiology 69: e71–e126, 2017. 7. Hiatt WR, Regensteiner JG, Wolfel EE, Carry MR, Brass EP. Effect of exercise training on skeletal muscle histology and metabolism in peripheral arterial disease. J Appl Physiol (1985) 81: 780–788, 1996. 8. Iso Y, Suzuki H, Kyuno E, Maeda A, Tsunoda F, Miyazawa R, Kowaita H, Kitai H, Takahashi T, Sambe T. Therapeutic potential of cycling high-intensity interval training in patients with peripheral artery disease: A pilot study. Int J Cardiol Heart Vasc 18: 30–32, 2018. 9. MacInnis MJ, Gibala MJ. Physiological adaptations to interval training and the role of exercise intensity. The Journal of Physiology (December 7, 2016). doi: 10.1113/JP273196. 10. Parmenter BJ, Dieberg G, Smart NA. Exercise training for management of peripheral arterial disease: a systematic review and meta-analysis. Sports Med 45: 231–244, 2015. 11. Pennywell DJ, Tan T-W, Zhang WW. Optimal management of infrainguinal arterial occlusive disease. Vasc Health Risk Manag 10: 599–608, 2014. 12. Prior BM, Ren J, Terjung RL, Yang HT. Signi cant, but limited collateral blood flow increases occur with prolonged training in rats with femoral artery occlusion. J Physiol Pharmacol 62: 197–205, 2011. 13. Riebe D, K Ehrman J, Liguori G, Magal M. ACSM's Guidelines for Exercise Testing and Prescription . 10 ed. Philadelphia: Wolters Kluwer, 2017. 14. Sanderson B, Askew C, Stewart I, Walker P, Gibbs H, Green S. Short-term effects of cycle and treadmill training on exercise tolerance in peripheral arterial disease. J Vasc Surg 44: 119–127, 2006. 15. Tew G, Nawaz S, Zwierska I, Saxton JM. Limb-speci c and cross-transfer effects of arm-crank exercise training in patients with symptomatic peripheral arterial disease. Clin Sci 117: 405–413, 2009. 16. Treat-Jacobson D, Bronas UG, Leon AS. Ef cacy of arm-ergometry versus treadmill exercise training to improve walking distance in patients with claudication. Vasc Med 14: 203–213, 2009. 17. Treesak C, Kasemsup V, Treat-Jacobson D, Nyman JA, Hirsch AT. Cost-effectiveness of exercise training to improve claudication symptoms in patients with peripheral arterial disease. Vasc Med 9: 279–285, 2004.

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