PubMed Health⌕ Search

Biomedical subjects

Michael J Joyner

Publications and source records attributed to Michael J Joyner.

At least 19 recordsLinked to original sources

Systemic hypoxia and vasoconstrictor responsiveness in exercising human muscle.

Exercise blunts sympathetic alpha-adrenergic vasoconstriction (functional sympatholysis). We hypothesized that sympatholysis would be augmented during hypoxic exercise compared with exercise alone. Fourteen subjects were monitored with ECG and pulse oximetry. Brachial artery and antecubital vein catheters were placed in the nondominant (exercising) arm. Subjects breathed hypoxic gas to titrate arterial O2 saturation to 80% while remaining normocapnic via a rebreath system. Baseline and two 8-min bouts of rhythmic forearm exercise (10 and 20% of maximum) were performed during normoxia and hypoxia. Forearm blood flow, blood pressure, heart rate, minute ventilation, and end-tidal CO2 were measured at rest and during exercise. Vasoconstrictor responsiveness was determined by responses to intra-arterial tyramine during the final 3 min of rest and each exercise bout. Heart rate was higher during hypoxia (P < 0.01), whereas blood pressure was similar (P = 0.84). Hypoxic exercise potentiated minute ventilation compared with normoxic exercise (P < 0.01). Forearm blood flow was higher during hypoxia compared with normoxia at rest (85 +/- 9 vs. 66 +/- 7 ml/min), at 10% exercise (276 +/- 33 vs. 217 +/- 27 ml/min), and at 20% exercise (464 +/- 32 vs. 386 +/- 28 ml/min; P < 0.01). Arterial epinephrine was higher during hypoxia (P < 0.01); however, venoarterial norepinephrine difference was similar between hypoxia and normoxia before (P = 0.47) and during tyramine administration (P = 0.14). Vasoconstriction to tyramine (%decrease from pretyramine values) was blunted in a dose-dependent manner with increasing exercise intensity (P < 0.01). Interestingly, vasoconstrictor responsiveness tended to be greater (P = 0.06) at rest (-37 +/- 6% vs. -33 +/- 6%), at 10% exercise (-27 +/- 5 vs. -22 +/- 4%), and at 20% exercise (-22 +/- 5 vs. -14 +/- 4%) between hypoxia and normoxia, respectively. Thus sympatholysis is not augmented by moderate hypoxia nor does it contribute to the increased blood flow during hypoxic exercise.

Adrenergic Uptake Inhibitors↗

Dietary sodium restriction and beta2-adrenergic receptor polymorphism modulate cardiovascular function in humans.

Dietary Na+ intake influences beta2-adrenergic receptor (beta2AR) responsiveness. While receiving a normal Na+ diet (150 mmol day(-1)), subjects homozygous for glycine at amino acid 16 (Gly16) have greater forearm beta2AR-mediated vasodilatation than subjects homozygous for arginine (Arg16), an effect that is mediated by endothelial NO. We tested the hypothesis that dietary Na+ restriction eliminates genotype differences in forearm and systemic beta2AR-mediated dilatation in these groups. We measured heart rate, mean arterial pressure and cardiac output (CO, acetylene breathing) responses to administration of intravenous terbutaline (TRB) before and after 5 days of low dietary Na+ intake (10 mmol day(-1)) in healthy Gly16 (n = 17; age, 31 +/- 7 year) and Arg16 homozygotes (n = 15; age, 29 +/- 8 year). After the low-Na+ diet, a catheter was placed in the brachial artery to measure forearm blood flow (FBF, plethysmography) responses to administration of isoprenaline (isoproterenol) before and after NO inhibition with NG-mono-methyl-L-arginine (L-NMMA). In the Gly16 group, the low-Na+ diet decreased baseline CO from 6.4 +/- 1.4 to 5.5 +/- 1.2 l min(-1) (P = 0.003, paired t test), tended to decrease stroke volume from 97.0 +/- 20.6 to 86.9 +/- 21.7 ml (P = 0.06) and increased peripheral resistance from 1106 +/- 246 to 1246 +/- 222 dynes s cm(-5) (P = 0.02); significant effects of the low-Na+ diet were not observed in Arg16 subjects. In a repeated measures ANOVA, the responses of all cardiovascular measures to systemic administration of TRB were not influenced by genotype or diet. Additionally, the FBF response to incremental doses of isoprenaline did not differ between genotype groups before or after administration of L-NMMA. We conclude that dietary Na+ restriction blunted the increased forearm NO-mediated beta2AR responsiveness in Gly16 homozygotes observed in a previous study after normal dietary Na+ intake, while baseline CO decreased and peripheral resistance increased in this group. This study provides evidence that dietary Na+ modulates effects of the Arg16Gly polymorphism on cardiovascular function.

Adult↗

The Arg16Gly polymorphism of the beta2-adrenergic receptor and the natriuretic response to rapid saline infusion in humans.

The beta2-adrenergic receptors (beta2ARs) play a role in renal Na+ regulation. Subjects homozygous for glycine at amino acid 16 (Gly16) of the beta2AR have been shown to have enhanced beta2-mediated vascular relaxation when compared to subjects homozygous for arginine (Arg16). However, Gly16 subjects have been shown to have higher blood pressure than Arg16 subjects. Given the dominant role of the kidneys in long-term blood pressure regulation, we sought to determine whether there were differences in renal Na+ handling between Gly16 (n = 17) and Arg16 (n = 14) subjects (Gly16: age, 30 +/- 2 years; body mass index (BMI), 25 +/- 11 kg m(-2); Arg16: age, 30 +/- 2 years; BMI, 25 +/- 1 kg m(-2)). We measured urinary Na+ content before and for 3 h following rapid intravenous saline infusion (30 ml kg(-1) in approximately 16 min). Prior to the infusion, there were no differences in 24-h Na+ excretion between Gly16 and Arg16 subjects (Gly16, 183 +/- 21 mmol; Arg16, 184 +/- 20 mmol); however, systolic blood pressure (SBP) was significantly higher in Gly16 than Arg16 subjects with no differences observed in diastolic blood pressure (DBP) or mean arterial pressure (MAP) (SBP: Gly16, 117 +/- 3 mmHg; Arg16, 109 +/- 2 mmHg; DBP: Gly16, 78 +/- 2 mmHg; Arg16, 77 +/- 2 mmHg; MAP: Gly16, 90 +/- 2 mmHg; Arg16, 89 +/- 2 mmHg). With rapid saline infusion, MAP increased in both genotype groups (Gly16, 6.7%; Arg16, 3.4%; P > 0.05). In the 3 h following Na+ infusion, Na+ excretion was less in Gly16 when compared to Arg16 subjects, with a trend towards significance when expressed as total Na+ excreted (Gly16, 66 +/- 7 mmol; Arg16, 85 +/- 9 mmol; P = 0.07), and a significant difference when expressed as a fraction of the administered load (Gly16, 0.18 +/- 0.02; Arg16, 0.28 +/- 0.03; P < 0.01). These results suggest that the Arg16Gly polymorphism of the beta2AR is associated with differences in natriuretic response to rapid saline infusion, which may influence long-term regulation of blood pressure.

Adult↗

Bimodal distribution of vasodilator responsiveness to adenosine due to difference in nitric oxide contribution: implications for exercise hyperemia.

To gain insight into the role of adenosine (Ado) in exercise hyperemia, we compared forearm vasodilation induced by intra-arterial infusion of three doses of Ado with vasodilation during three workloads of forearm handgrip exercise in 27 human subjects. We measured forearm blood flow (FBF) using Doppler ultrasound and mean arterial pressure (MAP) via brachial artery catheters and calculated forearm vascular conductance (FVC = FBF/MAP) during each infusion dose or workload. We found that about half of the subjects demonstrated robust vasodilator responsiveness to both Ado infusion and exercise, and the other half demonstrated blunted vasodilator responsiveness to Ado infusion compared with exercise. In 15 subjects (identified as "Ado responders"), the change in FVC above baseline was 209 +/- 33, 419 +/- 57, and 603 +/- 75 ml.min(-1).100 mmHg(-1) for the low, medium, and high doses of Ado, respectively, and 221 +/- 35, 413 +/- 54, and 582 +/- 70 ml.min(-1).100 mmHg(-1) for the low, medium, and high exercise workloads, respectively. In the other 12 subjects (identified as "Ado nonresponders"), the change in FVC above baseline was 102 +/- 36, 113 +/- 42, and 151 +/- 54 ml.min(-1).100 mmHg(-1) for the low, medium, and high doses of Ado, respectively (P < 0.05 vs. Ado responders), whereas exercise hyperemia was not different from Ado responders (P > 0.05). Furthermore, infusion of NG-monomethyl-L-arginine (L-NMMA) blunted vasodilator responses to Ado infusion only in Ado responders (P < 0.01 vs. post-L-NMMA) and had no effect on exercise in either group. We also found differences in vasodilator responses to isoproterenol at all doses, but acetylcholine only at one dose, between Ado responders and nonresponders. We conclude that vasodilator responsiveness to Ado exhibits a bimodal distribution among human subjects involving differences in the contribution of nitric oxide to Ado-mediated vasodilation. Finally, our data support the concept that neither Ado nor nitric oxide is obligatory for exercise hyperemia.

Acetylcholine↗

Effects of combined inhibition of ATP-sensitive potassium channels, nitric oxide, and prostaglandins on hyperemia during moderate exercise.

ATP-sensitive potassium (KATP) channels have been suggested to contribute to coronary and skeletal muscle vasodilation during exercise, either alone or interacting in a parallel or redundant process with nitric oxide (NO), prostaglandins (PGs), and adenosine. We tested the hypothesis that KATP channels, alone or in combination with NO and PGs, regulate exercise hyperemia in forearm muscle. Eighteen healthy young adults performed 20 min of moderate dynamic forearm exercise, with forearm blood flow (FBF) measured via Doppler ultrasound. After steady-state FBF was achieved for 5 min (saline control), the KATP inhibitor glibenclamide (Glib) was infused into the brachial artery for 5 min (10 microg.dl(-1).min(-1)), followed by saline infusion during the final 10 min of exercise (n = 9). Exercise increased FBF from 71 +/- 11 to 239 +/- 24 ml/min, and FBF was not altered by 5 min of Glib. Systemic plasma Glib levels were above the therapeutic range, and Glib increased insulin levels by approximately 50%, whereas blood glucose was unchanged (88 +/- 2 vs. 90 +/- 2 mg/dl). In nine additional subjects, Glib was followed by combined infusion of NG-nitro-L-arginine methyl ester (L-NAME) plus ketorolac (to inhibit NO and PGs, respectively). As above, Glib had no effect on FBF but addition of L-NAME + ketorolac (i.e., triple blockade) reduced FBF by approximately 15% below steady-state exercise levels in seven of nine subjects. Interestingly, triple blockade in two subjects caused FBF to transiently and dramatically decrease. This was followed by an acute recovery of flow above steady-state exercise values. We conclude 1) opening of KATP channels is not obligatory for forearm exercise hyperemia, and 2) triple blockade of NO, PGs, and KATP channels does not reduce hyperemia more than the inhibition of NO and PGs in most subjects. However, some subjects are sensitive to triple blockade, but they are able to restore FBF acutely during exercise. Future studies are required to determine the nature of these compensatory mechanisms in the affected individuals.

Adenosine Triphosphate↗

Beta-2 adrenergic receptor polymorphisms and the forearm blood flow response to mental stress.

Circulating epinephrine plays an important role in skeletal muscle vasodilation during mental stress. Normotensive adults homozygous for glycine (Gly) of the Arg16/Gly beta2-adrenergic receptor polymorphism have a greater forearm beta2-receptor mediated vasodilation and a higher cardiac output response to isometric handgrip than arginine (Arg) homozygotes. To test the hypothesis that the Arg16/Gly beta2-adrenergic receptor polymorphism affects the forearm blood flow (FBF) and hemodynamic response to mental stress, and whether venous catecholamine concentrations predicted these responses, we measured venous epinephrine, norepinephrine, heart rate (HR), arterial pressure (Finapres), and FBF during mental stress in healthy subjects homozygous for Gly16 (n = 30; mean age +/- SE: 30 +/- 1.2, 13 women) and Arg16 (n = 17, age 30 +/- 1.6, 11 women). Resting HR, blood pressure, and FBF responses to mental stress were similar between genotype groups. There were positive correlations between epinephrine and peak FBF (r = 0.694, P < 0.001), peak forearm vascular conductance (r = 0.677, P < 0.001) and the change in epinephrine to the change in HR (r = 0.456, P = 0.002) in all subjects. These correlations were not significantly different in the Gly16 and Arg16 groups. We conclude that venous epinephrine predicts the FBF response to mental stress, and the increase in epinephrine is also correlated with the increase in HR. Furthermore, the Arg16/Gly beta2-receptor polymorphism has no significant influence on the FBF or cardiovascular responses to mental stress.

Adult↗

Alpha-adrenergic control of skeletal muscle circulation at rest and during exercise in aging humans.

Aging is associated with many changes in autonomic nervous system function that often lead to impairments in the normal ability to respond to physiological stressors commonly encountered in daily life. In addition, many of these chronic age-related changes in autonomic-circulatory function can potentially predispose the older adult to elevated risk for acute and chronic cardiovascular complications. One of the most pronounced and repeatable findings with respect to changes in the autonomic nervous system with human aging is the progressive increase in basal muscle sympathetic nerve activity (MSNA) directed to skeletal muscle vascular beds. Although the mechanism(s) underlying this sustained age-associated increase in MSNA are not completely understood, several changes in sympathetic a-adrenergic function occur with age. In this review, the authors discuss how aging affects (1) a-adrenergic control of skeletal muscle vascular tone under resting conditions and the differences that exist in this control of the upper and lower limbs (forearm vs leg circulation); (2) vasoconstrictor responsiveness to endogenous norepinephrine release, as well as the specific responsiveness of postjunctional a(1)- and a(2)-adrenergic receptors; and (3) sympathetic a-adrenergic control of muscle blood flow and vascular tone during exercise in humans. Further, they discuss how these changes in sympathetic a-adrenergic control of skeletal muscle blood vessels have important physiological and clinical implications for the aging human.

Acute Disease↗

The effects of the alveolar recruitment maneuver and positive end-expiratory pressure on arterial oxygenation during laparoscopic bariatric surgery.

Abnormalities in gas exchange that occur during anesthesia are mostly caused by atelectasis, and these alterations are more pronounced in morbidly obese than in normal weight subjects. Sustained lung insufflation is capable of recruiting the collapsed areas and improving oxygenation in healthy patients of normal weight. We tested the effect of this ventilatory strategy on arterial oxygenation (Pao2) in patients undergoing laparoscopic bariatric surgery. After pneumoperitoneum was accomplished, the recruitment group received up to 4 sustained lung inflations with peak inspiratory pressures up to 50 cm H2O, which was followed by ventilation with 12 cm H2O positive end-expiratory pressure (PEEP). The patient's lungs in the control group were ventilated in a standard fashion with PEEP of 4 cm H2O. Variables related to gas exchange, respiratory mechanics, and hemodynamics were compared between recruitment and control groups. We found that alveolar recruitment effectively increased intraoperative Pao2 and temporarily increased respiratory system dynamic compliance (both P < 0.01). The effects of alveolar recruitment on oxygenation lasted as long as the trachea was intubated, and lungs were ventilated with high PEEP, but soon after tracheal extubation, all the beneficial effects on oxygenation disappeared. The mean number of vasopressor treatments given during surgery was larger in the recruitment group compared with the control group (3.0 versus 0.8; P = 0.04). In conclusion, our data suggest that the use of alveolar recruitment may be an effective mode of improving intraoperative oxygenation in morbidly obese patients. Our results showed the effect to be short lived and associated with more frequent intraoperative use of vasopressors.

Adult↗

Genotype related differences in beta2 adrenergic receptor density and cardiac function.

INTRODUCTION: Several common polymorphisms of the beta2 adrenergic (ADRB2) have been described including a Glycine (Gly) for arginine (Arg) substitution at amino acid 16. In vivo studies have attributed phenotypic differences in the Arg16Gly polymorphism of the ADRB2 to differences in agonist-mediated desensitization. Some studies, however, have shown differences between genotype groups under non-agonist-mediated conditions suggesting baseline differences in receptor function or in receptor density. We sought to determine whether genetic variation of the ADRB2 influenced ADRB2 density and, consequently, resting cardiovascular function. METHODS: We measured ADRB2 density on isolated lymphocytes in 30 healthy subjects (15 homozygous for Arg, Arg16, and 15 homozygous for Gly, Gly16) matched for age, cardiovascular fitness, BMI, and gender. In addition, we measured cardiac output (Q), heart rate (HR), and stroke volume (SV) after 5 min of quiet rest in these same subjects. RESULTS: Arg16 subjects had lower receptor density (1220 +/- 78 vs 1574 +/- 110, mean +/- SE, P < 0.01) as well as lower resting cardiac output due to a reduced stroke volume, but a higher HR when compared with the Gly16 subjects (Q = 4.3 +/- 0.2 vs 5.0 +/- 0.3 L.min(-1), SV = 65 +/- 6 vs 86 +/- 7 mL.beat(-1), HR = 70 +/- 4 vs 60 +/- 3 beats.min(-1), for the Arg16 and Gly16 groups, respectively, P < 0.01). In addition, ADRB2 density for all subjects was positively associated with cardiac output (r = 0.428, P = 0.009) and stroke volume (r = 0.407, P = 0.001). CONCLUSIONS: These data suggest that the Arg16Gly polymorphism of the ADRB2 influences receptor density, which, in turn, contributes to resting differences in cardiac output and stroke volume.

Adult↗

Influence of beta2-adrenergic receptor genotype on airway function during exercise in healthy adults.

BACKGROUND: In humans, beta(2)-adrenergic receptors (beta(2)ARs) influence airway tone. There are known functional polymorphisms of the beta(2)AR, such as substitution of glycine for arginine at codon 16. We sought to determine if this variation in genotype differentially influences airway function during exercise. METHODS: Healthy subjects without asthma who were either homozygous for Arg16 (n = 16; mean age, 29 +/- 2 years [+/- SD]; mean maximum oxygen uptake [Vo(2)], 32 +/- 2 mL/kg/min) or the Gly16 allele (n = 26; mean age, 30 +/- 1 years; mean maximum Vo(2), 33 +/- 1 mL/kg/min) participated in the study. Baseline testing included spirometry and maximal symptom-limited exercise. On a separate day, an arterial cannula was placed to measure catecholamine levels. Subjects then performed exercise at two work levels (40% and 75% of peak work) for 9 min each and performed spirometry at 3-min intervals for assessment of airway function. RESULTS: There were no statistically significant differences between groups in maximum Vo(2) or baseline spirometry (p > 0.05). With both light and heavy exercise, the groups had similar increases in the forced expiratory flow at 50% of vital capacity (FEF(50)). FEF(50) increased by 14 +/- 4% and 15 +/- 3% in arginine and glycine groups, respectively, by end exercise (p > 0.05). During recovery (5 min and 10 min after), the Gly16 homozygotes demonstrated persistent bronchodilation (10 min after FEF(50) = + 7 +/- 2% over pre-exercise) while the Arg16 subjects had a rapid return to baseline (10 min after FEF(50) = - 3 +/- 3%, p = 0.007 between groups). No differences were observed in the catecholamine responses between genotypes, although the increase in epinephrine in the arginine group tended to be higher (p = 0.07). CONCLUSIONS: These data suggest that the Arg16Gly polymorphism of the beta(2)AR does not influence airway function during short-duration low- and high-intensity exercise. However, during recovery, the Arg16 genotype is associated with a reduced bronchodilation, possibly due to increased catecholamine desensitization.

Adult↗

Effects of pioglitazone versus glipizide on body fat distribution, body water content, and hemodynamics in type 2 diabetes.

OBJECTIVE: Pioglitazone, a peroxisome proliferator-activated receptor agonist and glipizide, an insulin secretagogue, are commonly used to treat type 2 diabetes. Our study was designed to examine the effects of pioglitazone versus glipizide on body water, body composition, and hemodynamic parameters in the presence of comparable glycemic control between groups. RESEARCH DESIGN AND METHODS: We studied 19 diabetic subjects randomly assigned to either 45 mg pioglitazone (n = 8) or 10 mg (median dose) glipizide (n = 11) for 12 weeks. Body water content was measured with deuterated water, body composition by dual-energy X-ray absorptiometry and computed tomography, and cardiac output and systemic vascular resistance by acetylene rebreathing technique both before and after therapy. RESULTS: Pioglitazone increased (P < 0.001 from baseline) total body water (+2.4 +/- 0.5 l) accounting for 75% of the total weight gain (+3.1 +/- 2.0 kg) but did not alter vascular endothelial growth factor concentrations. Total abdominal (-32.2 +/- 19 cm(2)) and visceral fat area (-16.1 +/- 8 cm(2)) tended to decrease with pioglitazone but increased (P < 0.02 for differences between groups) with glipizide (+38.4 +/- 17 cm(2) abdominal; +19.1 +/- 9 cm(2) visceral). Pioglitazone tended to reduce (P = 0.05) diastolic (-8.4 +/- 4 mmHg) and mean (-9.5 +/- 5 mmHg; P = 0.08) blood pressure and reduced (P < 0.001) systemic vascular resistance (2,785 +/- 336 vs. 2,227 +/- 136 dynes/s per m(2)), while there were no differences in these parameters with glipizide. Neither therapy altered circulating catecholamine concentrations. CONCLUSIONS: When pioglitazone and glipizide are given in doses sufficient to achieve equivalent glycemic control in people with type 2 diabetes, pioglitazone increases total body water, thereby accounting for the majority of weight gain, tended to decrease visceral and abdominal fat content and blood pressure, and reduces systemic vascular resistance.

Adult↗

Arg16Gly polymorphism of the beta2-adrenergic receptor is associated with differences in cardiovascular function at rest and during exercise in humans.

In humans, subjects homozygous for arginine (ArgArg) at codon 16 of the beta2-adrenergic receptor (beta2AR) have been shown to have greater agonist-mediated desensitization than subjects homozygous for glycine (GlyGly). We sought to determine if this substitution differentially influenced cardiovascular function during short duration (9 min) low and high intensity exercise (40 and 75% of peak work). Healthy Caucasian ArgArg (n = 16), GlyGly (n = 31) and ArgGly (n = 17) subjects matched for age, sex and peak oxygen uptake were studied. There were no differences in adrenaline (ADR) at rest or with heavy exercise, but the ArgArg group had lower ADR with light exercise (P = 0.04). Resting heart rate (HR) was higher in ArgArg (P < 0.01), while cardiac output (Q), stroke volume (SV), and mean arterial pressure (MAP) were lower than the other groups (HR = 86+/-2, 78+/-2, 80+/-1 beats min(-1); Q = 5.7+/-0.81, 6.1+/-0.18, 6.7+/-0.22 l min(-1); SV = 68+/-3, 82+/-3, 89+/-4 ml beat(-1); MAP = 92+/-1, 103+/-2, 98+/-1 mmHg-- for ArgArg, ArgGly and GlyGly, respectively, means +/-s.e.m., P < 0.01), however, no differences were observed in systemic vascular resistance (SVR). With low intensity exercise and high intensity exercise the ArgArg group continued to have a lower , SV and MAP compared to the other groups (P < 0.05), with no differences observed in SVR. During recovery, the ArgArg subjects continued to have a lower MAP but there were no differences in HR, , or SVR. These data suggest that subjects homozygous for Arg at codon 16 of the beta2AR have reduced and MAP at rest that persist during exercise with no evidence for differential changes over the course of exercise despite large changes in catecholamines. This may suggest possible genotype-related differences in baseline receptor function or density which causes phenotypic differences at rest that are sustained during short-term exercise.

Adult↗

Reduced forearm alpha1-adrenergic vasoconstriction is associated with enhanced heart rate fluctuations in humans.

In the present study, we assessed whether heart rate (HR) or arterial pressure fluctuations are enhanced in healthy young humans with reduced alpha-adrenergic vasoconstrictor responses and, if so, whether this occurs for both alpha1- and alpha2-adrenergic receptor-mediated vasoconstriction. Arterial pressure (brachial artery catheter) and HR (ECG) were monitored continuously, and alpha1- and alpha2-adrenergic responsiveness was determined by assessing the effects of brachial artery infusions of phenylephrine (alpha1-adrenergic agonist) and dexmedetomidine (alpha2-adrenergic agonist), respectively, on forearm blood flow (strain gauge plethysmography). alpha1-Adrenergic responsiveness varied markedly among the subjects (n=20) and was inversely correlated with coefficient of variation for HR (R2=0.37, P<0.01), whereas the responsiveness was not correlated with the coefficient of variation for either systolic or diastolic arterial pressure. alpha1-Adrenergic responsiveness was inversely and more strongly correlated with baroreflex sensitivity (R2=0.62, P<0.0001), determined from beat-to-beat changes in HR and systolic arterial pressure, than the coefficient of variation for HR. On the other hand, alpha2-adrenergic responsiveness was not correlated with any of the parameters determined above. These results suggest that, in healthy young subjects, the enhanced HR response to changes in systolic pressure helps maintain the stability of arterial blood pressure when alpha1-adrenergic responsiveness is reduced.

Adult↗

Baroreceptor function during exercise: resetting the record.

This paper briefly reviews the historical evolution of ideas about how baroreflexes operate and continue to regulate arterial blood pressure during exercise. Observations from studies conducted in conscious humans and animals are emphasized and three main questions are asked. First, do baroreflexes contribute to arterial blood pressure regulation during exercise? Second, if baroreflexes contribute to blood pressure regulation during exercise, how do they do it? Third, are there any pathophysiological conditions in which manipulation of baroreflexes or baroreflex 'dysfunction' might alter exercise responses? In this context, ideas related to baroreflex resetting during exercise are emphasized, and the potential improvement in exercise tolerance in cardiovascular disease that might be achieved by electrical stimulation of the carotid sinus nerve is highlighted. Additionally, the key contributions of John Shepherd and the late David Donald (along with their colleagues) on related issues are noted.

Animals↗

Exercise hyperemia and vasoconstrictor responses in humans with cystic fibrosis.

ATP released from circulating erythrocytes is a potential signal regulating muscle blood flow during exercise (exercise hyperemia), and intravascular ATP appears to blunt sympathetic vasoconstriction during exercise. Erythrocytes from patients with cystic fibrosis (CF) do not release ATP. The goal of the present study was to determine whether increases in forearm blood flow during exercise are blunted in CF patients and whether CF patients exhibit greater vasoconstrictor responsiveness during exercise. Nine control subjects and 10 CF patients who were free of other disease complications (approximately 96% O2 saturation) performed incremental rhythmic forearm exercise at 5, 10, and 15% of maximum handgrip strength for 21 min (7 min at each workload). We used a cold pressor test to evoke sympathetic vasoconstriction under resting conditions and at each exercise workload. As a control, subjects performed a second exercise bout without the cold pressor test. Continuous brachial artery blood velocity was monitored beat-to-beat, and vessel diameter was assessed by Doppler ultrasound. Artery diameter, as well as blood pressure, heart rate, and O2 saturation, was measured at steady-state exercise and at 1 min into the cold pressor stimulus. Blood pressure and heart rate responses to the forearm exercise and each cold pressor test were similar in both groups (P > 0.05). Contrary to our hypothesis, forearm blood flow (P = 0.91) and forearm vascular conductance (P = 0.82) were similar at rest and at each level of exercise between CF patients and controls. Additionally, there was no difference in the degree of sympathetic vasoconstriction between groups at rest and at each level of exercise (P = 0.22). Our results suggest that ATP released from the deformation of erythrocytes is not an obligatory signal for exercise hyperemia in human skeletal muscle.

Adenosine Triphosphate↗