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Published in: European Journal of Applied Physiology 3/2008

01-06-2008 | Original Article

Changes in blood flow in conduit artery and veins of the upper arm during leg exercise in humans

Authors: Anna Ooue, Tomoko K. Ichinose, Yoshimitsu Inoue, Takeshi Nishiyasu, Shunsaku Koga, Narihiko Kondo

Published in: European Journal of Applied Physiology | Issue 3/2008

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Abstract

This study investigated changes in blood flow in the conduit artery, superficial vein, and deep vein of the upper arm during increase in internal temperature due to leg cycling. Additionally, we sought to demonstrate the contributions of blood velocity and vessel diameter on blood flow responses. Fourteen subjects performed supine cycling exercise at 60–69% maximal oxygen uptake for 30 min at an ambient temperature of 28°C and relative humidity of 50%. Blood velocity and diameter in the brachial artery, basilic vein (superficial vein), and brachial vein (deep vein) were measured using ultrasound Doppler, and blood flow was calculated. Blood flow in the artery and superficial vein increased linearly with rising oesophageal temperature (ΔT oes) after ΔT oes was about 0.3°C (within threshold), as well as cutaneous vascular conductance on the forearm. Changes in blood velocity in these vessels were similar to those in blood flow. Conversely, the brachial artery and superficial vein diameter did not affect the blood flow response. Blood flow variables in the deep vein did not change remarkably with rising ΔT oes. These results suggest that blood flow response, by an increase in velocity, in the conduit artery with rising ΔT oes during exercise is similar to that in the superficial vein, but not deep vein. Also, it is indicated that these increases in blood flow relate to the increase in skin blood flow on the forearm with the rise in body temperature during exercise.
Literature
go back to reference Abraham P, Leftheriotis G, Desvaux B, Saumet M, Saumet JL (1994a) Diameter and blood velocity changes in the saphenous vein during thermal stress. Eur J Appl Physiol 69:305–308CrossRef Abraham P, Leftheriotis G, Desvaux B, Saumet M, Saumet JL (1994a) Diameter and blood velocity changes in the saphenous vein during thermal stress. Eur J Appl Physiol 69:305–308CrossRef
go back to reference Abraham P, Leftheriotis G, Desvaux B, Saumet M, Saumet JL (1994b) Diameter and velocity changes in the femoral vein during thermal stress in humans. Clin Physiol 14:15–21PubMedCrossRef Abraham P, Leftheriotis G, Desvaux B, Saumet M, Saumet JL (1994b) Diameter and velocity changes in the femoral vein during thermal stress in humans. Clin Physiol 14:15–21PubMedCrossRef
go back to reference Abraham P, Leftheriotis G, Desvaux B, Saumet M, Saumet JL (1994c) Venous return in lower limb during heat stress. Am J Physiol Heart Circ Physiol 267:H1337–H1440 Abraham P, Leftheriotis G, Desvaux B, Saumet M, Saumet JL (1994c) Venous return in lower limb during heat stress. Am J Physiol Heart Circ Physiol 267:H1337–H1440
go back to reference Beaver WL, Wasserman K, Whipp BJ (1986) A new method for detecting anaerobic threshold by gas exchange. J Appl Physiol 60:2020–2027PubMed Beaver WL, Wasserman K, Whipp BJ (1986) A new method for detecting anaerobic threshold by gas exchange. J Appl Physiol 60:2020–2027PubMed
go back to reference Bergeron R, Kjær M, Simonsen L, Bülow J, Skovgaard D, Howlett K, Galbo H (2001) Splanchnic blood flow and hepatic glucose production in exercising humans: role of rennin-angiotensin system. Am J Physiol Regul Integr Comp Physiol 281:R1854–R1861PubMed Bergeron R, Kjær M, Simonsen L, Bülow J, Skovgaard D, Howlett K, Galbo H (2001) Splanchnic blood flow and hepatic glucose production in exercising humans: role of rennin-angiotensin system. Am J Physiol Regul Integr Comp Physiol 281:R1854–R1861PubMed
go back to reference Bevegård BS, Shepherd JT (1966) Reaction in man of resistance and capacity vessels in forearm and hand to leg exercise. J Appl Physiol 21:123–132PubMed Bevegård BS, Shepherd JT (1966) Reaction in man of resistance and capacity vessels in forearm and hand to leg exercise. J Appl Physiol 21:123–132PubMed
go back to reference Blair DA, Glover WE, Roddie IC (1961) Vasomotor responses in the human arm during leg exercise. Circ Res 9:264–274 Blair DA, Glover WE, Roddie IC (1961) Vasomotor responses in the human arm during leg exercise. Circ Res 9:264–274
go back to reference Ekelund LG (1967) Circulatory and respiratory adaptation during prolonged exercise of moderate intensity in the sitting position. Acta Physiol Scand 69:327–340PubMedCrossRef Ekelund LG (1967) Circulatory and respiratory adaptation during prolonged exercise of moderate intensity in the sitting position. Acta Physiol Scand 69:327–340PubMedCrossRef
go back to reference Eriksen M, Waaler BA, Walløe L, Wesche J (1990) Dynamics and dimensions of cardiac output changes in humans at the onset and at the end of moderate rhythmic exercise. J Physiol 426:423–437PubMed Eriksen M, Waaler BA, Walløe L, Wesche J (1990) Dynamics and dimensions of cardiac output changes in humans at the onset and at the end of moderate rhythmic exercise. J Physiol 426:423–437PubMed
go back to reference Friedman D, Johnson J, Mitchell J, Secher N (1991) Neural control of the forearm cutaneous vasoconstrictor response to dynamic exercise. J Appl Physiol 71:1892–1896PubMed Friedman D, Johnson J, Mitchell J, Secher N (1991) Neural control of the forearm cutaneous vasoconstrictor response to dynamic exercise. J Appl Physiol 71:1892–1896PubMed
go back to reference Gaenzer H, Neumayr G, Marschang P, Sturm W, Kirchmair R, Patsch JR (2001) Flow-mediated vasodilation of the femoral and brachial artery induced by exercise in healthy nonsmoking and smoking men. J Am Coll Cardiol 38:1313–1319PubMedCrossRef Gaenzer H, Neumayr G, Marschang P, Sturm W, Kirchmair R, Patsch JR (2001) Flow-mediated vasodilation of the femoral and brachial artery induced by exercise in healthy nonsmoking and smoking men. J Am Coll Cardiol 38:1313–1319PubMedCrossRef
go back to reference Green D, Cheetham C, Mavaddat L, Watts K, Best M, Taylor R, O’Driscoll G (2002a) Effect of lower limb exercise on forearm vascular function: contribution of nitric oxide. Am J Physiol Heart Circ Physiol 283:H899–H907PubMed Green D, Cheetham C, Mavaddat L, Watts K, Best M, Taylor R, O’Driscoll G (2002a) Effect of lower limb exercise on forearm vascular function: contribution of nitric oxide. Am J Physiol Heart Circ Physiol 283:H899–H907PubMed
go back to reference Green D, Cheetham C, Reed C, Dembo L, O’Driscoll G (2002b) Assessment of brachial artery blood flow across the cardiac cycle: retrograde flows during cycle ergometry. J Appl Physiol 93:361–368PubMed Green D, Cheetham C, Reed C, Dembo L, O’Driscoll G (2002b) Assessment of brachial artery blood flow across the cardiac cycle: retrograde flows during cycle ergometry. J Appl Physiol 93:361–368PubMed
go back to reference Green D, Bilsborough W, Naylor LH, Reed C, Wright J, O’Drixcoll G, Walsh JH (2005) Comparison of forearm blood flow responses to incremental handgrip and cycle ergometer exercise: relative contribution of nitric oxide. J Physiol 562:617–628PubMedCrossRef Green D, Bilsborough W, Naylor LH, Reed C, Wright J, O’Drixcoll G, Walsh JH (2005) Comparison of forearm blood flow responses to incremental handgrip and cycle ergometer exercise: relative contribution of nitric oxide. J Physiol 562:617–628PubMedCrossRef
go back to reference Joannides R, Costentin A, Iacob M, Compagnon P, Lahary A, Thuillez C (2002) Influence of vascular dimension on gender difference in flow-dependent dilation of peripheral conduit arteries. Am J Physiol Heart Circ Physiol 282:H1262–H1269PubMed Joannides R, Costentin A, Iacob M, Compagnon P, Lahary A, Thuillez C (2002) Influence of vascular dimension on gender difference in flow-dependent dilation of peripheral conduit arteries. Am J Physiol Heart Circ Physiol 282:H1262–H1269PubMed
go back to reference Johnson JM (1979) Responses of forearm blood flow to graded leg exercise in man. J Appl Physiol 46:457–462PubMed Johnson JM (1979) Responses of forearm blood flow to graded leg exercise in man. J Appl Physiol 46:457–462PubMed
go back to reference Johnson JM, Park MK (1981) Effect of upright exercise on threshold for cutaneous vasodilation and sweating. J Appl Physiol 50:814–818PubMed Johnson JM, Park MK (1981) Effect of upright exercise on threshold for cutaneous vasodilation and sweating. J Appl Physiol 50:814–818PubMed
go back to reference Johnson JM, Park MK (1982) Effect of heat stress on cutaneous vascular responses to the initiation of exercise. J Appl Physiol 53:744–749PubMedCrossRef Johnson JM, Park MK (1982) Effect of heat stress on cutaneous vascular responses to the initiation of exercise. J Appl Physiol 53:744–749PubMedCrossRef
go back to reference Johnson JM, Rowell LB (1975) Forearm skin and muscle vascular responses to prolonged leg exercise in man. J Appl Physiol 39:920–924PubMed Johnson JM, Rowell LB (1975) Forearm skin and muscle vascular responses to prolonged leg exercise in man. J Appl Physiol 39:920–924PubMed
go back to reference Johnson JM, Rowell LB, Brengelmann GL (1974) Modification of the skin blood flow–body temperature relationship by upright exercise. J Appl Physiol 37:880–886PubMed Johnson JM, Rowell LB, Brengelmann GL (1974) Modification of the skin blood flow–body temperature relationship by upright exercise. J Appl Physiol 37:880–886PubMed
go back to reference Kellogg DL, Johnson JM, Kosiba WA (1991) Control of internal temperature threshold for active cutaneous vasodilation by dynamic exercise. J Appl Physiol 71:2476–2482PubMed Kellogg DL, Johnson JM, Kosiba WA (1991) Control of internal temperature threshold for active cutaneous vasodilation by dynamic exercise. J Appl Physiol 71:2476–2482PubMed
go back to reference Kenney WL, Ho CW (1995) Age alters regional distribution of blood flow during moderate-intensity exercise. J Appl Physiol 79:1112–1119PubMed Kenney WL, Ho CW (1995) Age alters regional distribution of blood flow during moderate-intensity exercise. J Appl Physiol 79:1112–1119PubMed
go back to reference Nadel ER, Bullard RW, Stolwijk JAJ (1971) Importance of skin temperature in the regulation of sweating. J Appl Physiol 31:80–87PubMed Nadel ER, Bullard RW, Stolwijk JAJ (1971) Importance of skin temperature in the regulation of sweating. J Appl Physiol 31:80–87PubMed
go back to reference Ooue A, Ichinose KT, Shamsuddin AKM, Inoue Y, Nishiyasu T, Koga S, Kondo N (2007) Changes in blood flow in a conduit artery and superficial vein of the upper arm during passive heating in humans. Eur J Appl Physiol 101:97–103PubMedCrossRef Ooue A, Ichinose KT, Shamsuddin AKM, Inoue Y, Nishiyasu T, Koga S, Kondo N (2007) Changes in blood flow in a conduit artery and superficial vein of the upper arm during passive heating in humans. Eur J Appl Physiol 101:97–103PubMedCrossRef
go back to reference Rådegran G, Saltin B (2000) Human femoral artery diameter in relation to knee extensor muscle mass, peak blood flow, and oxygen uptake. Am J Physiol Heart Circ Physiol 278: H162–H167PubMed Rådegran G, Saltin B (2000) Human femoral artery diameter in relation to knee extensor muscle mass, peak blood flow, and oxygen uptake. Am J Physiol Heart Circ Physiol 278: H162–H167PubMed
go back to reference Roddie IC, Shepherd JT, Whelan RF (1956) Evidence from venous oxygen saturation measurements that the increase in forearm blood flow during body heating is confined to the skin. J Physiol 134:444–459PubMed Roddie IC, Shepherd JT, Whelan RF (1956) Evidence from venous oxygen saturation measurements that the increase in forearm blood flow during body heating is confined to the skin. J Physiol 134:444–459PubMed
go back to reference Rowell LB (1986) Thermal stress. In: Human circulation regulation during physical stress. Oxford University Press, New York, pp 174–212 Rowell LB (1986) Thermal stress. In: Human circulation regulation during physical stress. Oxford University Press, New York, pp 174–212
go back to reference Rowell LB (1993) Control of regional blood flow during dynamic exercise. In: Human cardiovascular control. Oxford University Press, New York, pp 204–254 Rowell LB (1993) Control of regional blood flow during dynamic exercise. In: Human cardiovascular control. Oxford University Press, New York, pp 204–254
go back to reference Smolander J, Saalo J, Korhonen O (1991) Effect of work load on cutaneous vascular response to exercise. J Appl Physiol 71:1614–1619PubMed Smolander J, Saalo J, Korhonen O (1991) Effect of work load on cutaneous vascular response to exercise. J Appl Physiol 71:1614–1619PubMed
go back to reference Tanaka H, Shimizu S, Ohmori F, Muraoka Y, Kumagai M, Yoshizawa M, Kagaya A (2006) Increases in blood flow and shear stress to nonworking limbs during incremental exercise. Med Sci Sports Exerc 38:81–85PubMedCrossRef Tanaka H, Shimizu S, Ohmori F, Muraoka Y, Kumagai M, Yoshizawa M, Kagaya A (2006) Increases in blood flow and shear stress to nonworking limbs during incremental exercise. Med Sci Sports Exerc 38:81–85PubMedCrossRef
go back to reference Taylor JA, Hand GA, Johnson DG, Seals DR (1992) Augmented forearm vasoconstriction during dynamic exercise in healthy older men. Circulation 86:1789–1799PubMed Taylor JA, Hand GA, Johnson DG, Seals DR (1992) Augmented forearm vasoconstriction during dynamic exercise in healthy older men. Circulation 86:1789–1799PubMed
go back to reference Van Beekvelt MCP, Shoemaker JK, Tschakovsky ME, Hopman MTE, Hughson RL (2001) Blood flow and muscle oxygen uptake at the onset and end of moderate and heavy dynamic forearm exercise. Am J Physiol Regul Integr Comp Physiol 280:R1741–R1747PubMed Van Beekvelt MCP, Shoemaker JK, Tschakovsky ME, Hopman MTE, Hughson RL (2001) Blood flow and muscle oxygen uptake at the onset and end of moderate and heavy dynamic forearm exercise. Am J Physiol Regul Integr Comp Physiol 280:R1741–R1747PubMed
go back to reference Wasserman K, Whipp BJ, Koyal SN, Beaver WL (1973) Anaerobic threshold and respiratory gas exchange during exercise. J Appl Physiol 35:236–243PubMed Wasserman K, Whipp BJ, Koyal SN, Beaver WL (1973) Anaerobic threshold and respiratory gas exchange during exercise. J Appl Physiol 35:236–243PubMed
go back to reference Wenger CB, Roberts MF, Stolwijk JAJ, Nadel ER (1975) Forearm blood flow during body temperature transients produced by leg exercise. J Appl Physiol 38:58–63PubMed Wenger CB, Roberts MF, Stolwijk JAJ, Nadel ER (1975) Forearm blood flow during body temperature transients produced by leg exercise. J Appl Physiol 38:58–63PubMed
go back to reference Yanagimoto S, Kuwahara T, Zhang Y, Koga S, Inoue Y, Kondo N (2003) Intensity-dependent thermoregulatory responses at the onset of dynamic exercise in mildly heated humans. Am J Physiol Regul Integr Comp Physiol 285:R200–R207PubMed Yanagimoto S, Kuwahara T, Zhang Y, Koga S, Inoue Y, Kondo N (2003) Intensity-dependent thermoregulatory responses at the onset of dynamic exercise in mildly heated humans. Am J Physiol Regul Integr Comp Physiol 285:R200–R207PubMed
go back to reference Zelis R, Mason DT, Braunwald E (1969) Partition of blood flow to the cutaneous and muscular beds of the forearm at rest and during leg exercise in normal subjects and in patients with heart failure. Circ Res 24:799–806PubMed Zelis R, Mason DT, Braunwald E (1969) Partition of blood flow to the cutaneous and muscular beds of the forearm at rest and during leg exercise in normal subjects and in patients with heart failure. Circ Res 24:799–806PubMed
Metadata
Title
Changes in blood flow in conduit artery and veins of the upper arm during leg exercise in humans
Authors
Anna Ooue
Tomoko K. Ichinose
Yoshimitsu Inoue
Takeshi Nishiyasu
Shunsaku Koga
Narihiko Kondo
Publication date
01-06-2008
Publisher
Springer-Verlag
Published in
European Journal of Applied Physiology / Issue 3/2008
Print ISSN: 1439-6319
Electronic ISSN: 1439-6327
DOI
https://doi.org/10.1007/s00421-008-0706-x

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