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Biomedical subjects

M M LeWinter

Publications and source records attributed to M M LeWinter.

At least 19 recordsLinked to original sources

Alterations in the determinants of diastolic suction during pacing tachycardia.

In cardiomyocytes, generation of restoring forces (RFs) responsible for elastic recoil involves deformation of the sarcomeric protein titin in conjunction with shortening below slack length. At the left ventricular (LV) level, recoil and filling by suction require contraction to an end-systolic volume (ESV) below equilibrium volume (Veq) as well as large-scale deformations, for example, torsion or twist. Little is known about RFs and suction in the failing ventricle. We undertook a comparison of determinants of suction in open-chest dogs previously subjected to 2 weeks of pacing tachycardia (PT) and controls. To assess the ability of the LV to contract below Veq, we used a servomotor to clamp left atrial pressure and produce nonfilling diastoles, allowing measurement of fully relaxed pressure at varying volumes. We quantified twist with sonomicrometry. We also assessed transmural ratios of N2B to N2BA titin isoforms and total titin to myosin heavy chain (MHC) protein. In PT, the LV did not contract below Veq, even with marked reduction of volume (end-diastolic pressure [EDP], 1 to 2 mm Hg), whereas in controls ESV was less than Veq when EDP was less than approximately 5 mm Hg. In PT, both systolic twist and diastolic untwisting rate were reduced, and there was exaggerated transmural variation in titin isoform and titin-to-MHC ratios, consistent with the more extensible N2BA being present in larger amounts in the subendocardium. Thus, in PT, determinants of suction at the level of the LV are markedly impaired. The altered transmural titin isoform gradient is consistent with a decrease in RFs and may contribute to these findings.

Animals↗

Ingenuous interpretation of elevated blood levels of macromolecular markers of myocardial injury: a recipe for confusion.

Several assumptions about elevations of macromolecular markers of myocardial injury in blood require critical consideration. The dichotomy of modest, persistent elevations of troponins I and T as prognostic factors in patients with unstable angina and absent elevations of isoenzymes of creatine kinase is presently unexplained. Factors influencing the appearance of macromolecular markers of myocardial injury in blood are considered, including the need to estimate baseline values, to consider elevations as deviations from baseline rather than simply points within a distribution of baseline values in normal subjects, to recognize operative biochemical and physiologic determinants of marker release from injured myocytes and washout and to take into account the influence of apoptosis. Elucidation and consideration of mechanisms underlying the appearance of specific macromolecular markers in blood appear likely to improve diagnosis and explain the prognostic power of the troponins in patients with unstable angina. Detection of proteolytic breakdown products of troponins in blood is likely to explain the modest, persistent elevations seen in some patients with unstable angina and their prognostic implications.

Angina, Unstable↗

Effect of enalapril therapy on left ventricular mass and volumes in asymptomatic chronic, severe mitral regurgitation secondary to mitral valve prolapse.

Quantitative 2-dimensional and Doppler echocardiography was used to assess the longitudinal effects of angiotensin-converting enzyme inhibition in asymptomatic patients with chronic, severe mitral regurgitation due to mitral valve prolapse. Over a 6-month period, angiotensin-converting enzyme inhibition therapy resulted in significant reductions in left ventricular volumes and mass in association with a minor reduction in regurgitant fraction.

Adult↗

Left ventricular systolic torsion and early diastolic filling by echocardiography in normal humans.

This study describes a novel 2-dimensional echocardiographic technique to measure left ventricular (LV) systolic twist in humans and relates this measure to early ventricular filling. LV twist is the counterclockwise rotation of the left ventricle during systole when viewed from the apex. The effect of ventricular twist has been postulated to store potential energy, which ultimately aids in diastolic recoil, leading to ventricular suction. The generated negative early diastolic pressures may augment early ventricular filling. We measured ventricular twist in 40 patients with normal transthoracic echocardiograms. End-systolic twist was determined by measuring rotation of the anterolateral papillary muscle about the center of the ventricle. LV filling was assessed by analysis of transmitral Doppler flow velocities. The mean value obtained was 9 +/- 7 degrees of rotation. Twist measurements were highly reproducible with an intraobserver correlation coefficient of r = 0.881, p <0.001. The magnitude of ventricular twist was strongly correlated positively with acceleration of the mitral E-wave (r = 0.75; p <0.0001) and negatively with the mitral E-wave acceleration time (r = -0.83; p <0.0001).

Adolescent↗

Left ventricular restoring forces: modulation by heart rate and contractility.

We used a servomotor system in open-chest dogs to rapidly clamp left atrial pressure below left ventricular (LV) diastolic pressure in order to produce nonfilling diastoles during which the LV fully relaxed at its end-systolic volume (ESV). Restoring forces (RFs) generated during contraction which result in LV filling by suction were considered to be present when the fully relaxed pressure (FRP) was negative. We characterized RFs in terms of the fully relaxed pressure-volume relation (FRPV relation, FRP plotted vs ESV), which has negative and positive portions and an equilibrium volume (FRP = 0 mmHg). A negative FRP is ordinarily present over the lower half of the physiologic filling range. Increased contractility (systemic dobutamine) shifts the FRPV relation downward, indicating greater RFs at any ESV. Intracoronary dobutamine administered via the left anterior descending coronary artery has the same effect. Acute increases in heart rate from about 100 to 150 beats/min did not alter the FRPV relation. In contrast, chronic tachycardia heart failure resulted in marked depression of the ability to generate RFs, even at very low volumes. Thus, RFs normally contribute to LV filling. They are augmented by acute increases in global and anterior wall contractility but not heart rate, within the range specified above. Chronic tachycardia heart failure markedly attenuated RFs. The latter may constitute a previously unappreciated mechanism of diastolic dysfunction in heart failure.

Animals↗

Mechanoenergetic studies in isolated mouse hearts.

We tested the feasibility of an isolated, balloon-in-ventricle, isovolumically contracting, crystalloid-perfused mouse heart preparation (n = 10) for studies of cardiac mechanoenergetics using the end-systolic pressure-volume relation (ESPVR) and myocardial oxygen consumption (VO2)-pressure-volume area (PVA) framework employed in larger species. The intraventricular balloon method was shown to be accurate for measurement of left ventricular volume, especially at relatively higher volumes. The ESPVR demonstrated contractility-dependent curvilinearity. Average slope of the ESPVR was 1,299 +/- 369 (SD) mmHg.g.ml-1, with a volume intercept of 0.018 +/- 0.006 ml. The VO2-PVA relation was well fitted by a straight line, with average slope and VO2 intercept of 3.57 +/- 1.31 x 10(-5) ml O2.mmHg-1.ml-1 and 0.92 +/- 0.21 x 10(-3) ml O2.beat-1.g-1, respectively. Decreasing perfusate Ca2+ concentration resulted in a decrease in the slope of the ESPVR, a decrease in the VO2 intercept of the VO2-PVA relation, but no significant change in its slope. Hearts from hypothyroid (n = 8) mice demonstrated similar mechanoenergetic changes. We conclude that delineation of the ESPVR and the VO2-PVA relation is feasible in the mouse heart. Our method should allow an assessment of cardiac mechanoenergetics as sophisticated as that previously possible only in larger hearts.

Animals↗

Effects of dobutamine on left ventricular restoring forces.

Restoring forces, which are generated when the left ventricle contracts below its equilibrium volume (Veq), are responsible for diastolic suction. Their magnitude is inversely related to end-systolic volume (ESV). In previous studies in which the mitral valve was replaced with a prosthesis, increased contractility was shown to augment restoring forces independently of ESV. In the present study, we quantified restoring forces in the presence of an intact mitral valve in open-chest dogs (n = 6) as the fully relaxed pressure (FRP) after completion of left ventricular pressure (LVP) fall during nonfilling diastoles produced by a servomotor system that clamped left atrial pressure below LVP. A negative FRP indicated a restoring force was present. We related FRP to ESV during control, intravenous, and left anterior descending coronary artery (intracoronary) administration of dobutamine. With intravenous dobutamine, we observed an approximately parallel downward and rightward shift of the FRP-ESV relation, indicating increased restoring forces at any ESV less than Veq. The downward shift averaged -2.6 +/- 1.6 (SD) mmHg at the control Veq. A similar shift occurred with intracoronary dobutamine. In additional experiments (n = 2), we found that over a common range of ESV dobutamine slightly increased wall thickness (<10%) during nonfilling diastoles, consistent with an increase in coronary blood volume. We conclude that dobutamine increases restoring forces independently of changes in ESV in conjunction with an increase in Veq. This effect may partly be related to increased coronary blood volume.

Animals↗

Decrease in forces responsible for diastolic suction during acute coronary occlusion.

BACKGROUND: The production of left ventricular (LV) restoring forces generated during contraction, which are responsible for diastolic suction, is dependent on end-systolic volume (ESV) and systolic transmural and 3D deformation. We tested the hypothesis that acute coronary occlusion would result in loss of forces that cause suction. METHODS AND RESULTS: Ten open-chest dogs were subjected to a 10-minute acute coronary occlusion (proximal left anterior descending coronary artery). A servomotor connected to the left atrium (LA) was used to rapidly clamp LA pressure during systole below the level of the succeeding LV diastolic pressure, resulting in nonfilling diastoles during which the LV fully relaxed at its ESV. LA clamps at multiple ESVs (conductance catheter) allowed delineation of positive and negative portions of the fully relaxed LV pressure-volume relation (FRPVR). A negative fully relaxed pressure (FRP) indicates the presence of restoring forces. After 10 minutes of acute coronary occlusion, there was an upward shift of the FRPVR. Thus, for example, at matched ESVs before and during coronary occlusion, FRP was -1.1+/-1.1 (+/-SD) mm Hg before versus 0.2+/-1.2 mm Hg after 10 minutes of coronary occlusion (P<.05). CONCLUSIONS: Acute coronary occlusion results in a rapid decrease in forces responsible for suction. This phenomenon is independent of the level of ESV and may contribute to ischemic diastolic dysfunction.

Animals↗

Altered expression of troponin T isoforms in mild left ventricular hypertrophy in the rabbit.

Alterations in troponin T (TnT) isoforms have been reported in severe human and experimental heart failure (HF), and may play a role in the depressed myofibrillar ATPase activity observed in this condition. It is unclear whether these alterations reflect very severe hemodynamic derangement or are a component of mild hypertrophic stress. Therefore, we studied the expression of TnT isoforms (SDS-PAGE, Western blots), myosin isoforms, myofibrillar ATPase activity, and left ventricular (LV) mechanoenergetics (rbc perfused, isovolumically contracting isolated heart) in a rabbit model of mild hypertrophy (LVH) due to gradual hypertension caused by 12 weeks of cellophane wrap of the kidneys (n=12). LV/body weight ratio increased by 28% in LVH compared to shams (P<0.001); no animals had evidence of HF. In LVH, the percentage of TnT2 was modestly but significantly increased compared to shams [6.2+/-1.9 (+/-S.D. ) v 3.7+/-1.0%, P<0.05], mainly as a consequence of a parallel decrease in TnT4 (P=0.07). Sham hearts ranged from 75-100% V3 isomyosin, whereas all LVH hearts had 100% of the V3 form. There were no significant differences in myofibrillar ATPase activity or mechanical variables, including contraction and relaxation rates. The slope of the VO2-pressure-volume-area relation (a measure of the energy conversion efficiency of the contractile machinery) was also unchanged. We conclude that in the rabbit, shifts in TnT isoforms toward a more "fetal" pattern occur during mild LVH and, therefore, are likely to be a general feature of the response to hemodynamic stress, rather than a phenomenon confined to end-stage disease. These modest shifts are not associated with major alterations in LV myofibrillar ATPase activity or mechanoenergetics.

Adenosine Triphosphatases↗

Estimation of nonmechanical VO2 in isolated rabbit heart: comparison of mechanical unloading and BDM method.

To understand the mechaneoenergetics of heart muscle, it is important to be able to accurately partition energy consumption into its two major components, that used for nonmechanical activity [mainly excitation-contraction (E-C) coupling and basal metabolism] and that used for mechanical activity (cross-bridge cycling). In most experiments in the beating heart, this has been accomplished by assuming that the unloaded oxygen consumption (VO2) represents nonmechanical VO2 and subtracting it from total VO2 to yield mechanical VO2. However, unloaded VO2 is "contaminated" by an uncertain amount of energy consumption for cross-bridge cycling under unloaded conditions. We recently, reported an alternative method to estimate nonmechanical VO2 using the negative inotropic drug 2,3-butanedione monoxime (BDM), which, in theory, should not include cross-bridge cycling-related energy consumption. In the present study, we compared changes in unloaded VO2 and the BDM estimate of nonmechanical VO2 as E-C coupling was varied by changing the perfusate Ca2+ concentration ([Ca2+]) in the isolated rabbit heart. An isolated, red blood cell-perfused, isovolumically contracting balloon in left ventricle preparation was employed. In one group (n = 8), contractility (maximal elastance), unloaded VO2, and the BDM estimate of nonmechanical VO2 were assessed at a perfusate [Ca2+] of 2.5 mM and then at 5.0 mM. In a second group (n = 6), perfusate was 1.0 and 2.5 mM. The change in contractility in each group as [Ca2+] was increased was comparable. Unloaded VO2 was systematically greater than the BDM estimate of nonmechanical VO2 under all conditions. However, the absolute change in both estimates was similar in both groups. In conclusion, over the range of perfusate [Ca2+] employed in this study, changes in unloaded VO2 and the BDM estimate of nonmechanical VO2 are similar. These results support the use of unloaded VO2, which is easier to measure and has less estimation error in individual cases than the BDM-derived value for nonmechanical VO2, as an accurate index of change in E-C coupling energy consumption.

Animals↗

Rapid shortening during relaxation increases activation and improves systolic performance.

BACKGROUND: Previous studies in cardiac muscle and isolated heart preparations generally have attributed positive effects of ejection to greater length-dependent activation. However, there have been some reports of an ejection-related increase in contractile function that is independent of end-diastolic volume (EDV) history. The present study was designed to more fully characterize the mechanoenergetic results of the latter effect in the intact ventricle. METHODS AND RESULTS: A servomotor was used to initiate left ventricular volume reduction (VR) at end systole, with EDV kept constant. Seven isolated, red blood cell-perfused rabbit hearts were studied at constant EDV during isovolumic contraction, slow VR (5.0 +/- 0.9 EDV/s), and rapid VR (26.8 +/- 5.1 EDV/s). Compared with isovolumic beats, VR caused an enhancement in contractility. This effect was greater for rapid VR and required > 50 beats to attain steady state. Rapid VR increased developed pressure by 15% (92.2 +/- 23.7 [mean +/- SD] versus 105.9 +/- 27.6 mm Hg), maximum dP/dt by 17% (1223 +/- 401 versus 1435 +/- 505 mm Hg.s-1), and Emax (slope of the end-systolic pressure-volume relation) by 13% (69.4 +/- 19.9 versus 78.6 +/- 23.0 mm Hg/mL) (all P < .01). Left ventricular oxygen consumption (VO2) was unchanged with slow VR and decreased by 8% with rapid VR (0.0744 +/- 0.0194 versus 0.0683 +/- 0.0141 mL O2.beat-1.100 g-1; P < .05). In separate hearts (n = 8), costs (basal metabolism and excitation-contraction coupling) were estimated by use of 2,3-butanedione monoxime. Compared with control, rapid VR was associated with a 26% increase in nonmechanical VO2 (0.0248 +/- 0.0021 versus 0.0312 +/- 0.0022 mL O2.beat-1.100 g-1; P < .01), consistent with an increase in calcium cycled per beat. CONCLUSIONS: Ejection after end systole has a positive effect on ventricular performance that cannot be ascribed to length-dependent activation and is likely related to an increase in calcium available for activation. Similarly, an increase in nonmechanical VO2 associated with ejection suggests a positive interaction between myofilament shortening and activator calcium cycling.

Animals↗

Skeletal muscle and cardiovascular adaptations to exercise conditioning in older coronary patients.

BACKGROUND: Older coronary patients suffer from a low functional capacity and high rates of disability. Supervised exercise programs improve aerobic capacity in middle-aged coronary patients by improving both cardiac output and peripheral extraction of oxygen. Physiological adaptations to aerobic conditioning, however, have not been well studied in older coronary patients. METHODS AND RESULTS: The effect of a 3-month and a 1-year program of intense aerobic exercise was studied in 60 older coronary patients (mean age, 68 +/- 5 years) beginning 8 +/- 5 weeks after myocardial infarction or coronary bypass surgery. Outcome measures included peak aerobic capacity, cardiac output, arterio-venous oxygen difference, hyperemic calf blood flow, and skeletal muscle fiber morphometry, oxidative enzyme activity, and capillarity. Training results were compared with a sedentary, age- and diagnosis-matched control group (n = 10). Peak aerobic capacity increased in the intervention group at 3 months and at 1 year by 16% and 20%, respectively (both P < .01). Peak exercise cardiac output, hyperemic calf blood flow, and vascular conductance were unaffected by the conditioning protocol. At 3 and 12 months, arteriovenous oxygen difference at peak exercise was increased in the exercise group but not in control subjects. Histochemical analysis of skeletal muscle documented a 34% increase in capillary density and a 23% increase in succinate dehydrogenase activity after 3 months of conditioning (both P < .02). At 12 months, individual fiber area increased by 29% compared with baseline (P < .01). CONCLUSIONS: Older coronary patients successfully improve peak aerobic capacity after 3 and 12 months of supervised aerobic conditioning compared with control subjects. The mechanism of the increase in peak aerobic capacity is associated almost exclusively with peripheral skeletal muscle adaptations, with no discernible improvements in cardiac output or calf blood flow.

Adaptation, Physiological↗

Effects of exercise on left ventricular performance determined by echocardiography in chronic, severe mitral regurgitation secondary to mitral valve prolapse.

Data on the effects of exercise on left ventricular (LV) volumes and ejection performance in patients with severe mitral regurgitation (MR) are limited. With use of a matched-pairs design, 10 asymptomatic patients with chronic, severe MR and normal LV systolic function who were not receiving vasodilator therapy (group 1) and 10 matched normal control subjects with no structural heart disease (group 2) performed symptom-limited upright bicycle ergometry with quantitative echocardiographic analysis. An additional 8 patients with severe, chronic MR and normal LV systolic function who were receiving vasodilator therapy at the time of testing (group 3) were studied for comparison. The 3 cohorts exercised for similar periods of time. Group 1 and 3 patients had similar end-diastolic volumes at rest, both of which were significantly greater than those of normal controls. Although resting LV end-systolic volume was greater in groups 1 and 3 than in normal controls, the 3 groups had similar relative percent reductions in end-systolic volume during exercise (30 +/- 12%, 32 +/- 13%, and 30 +/- 24%; p = NS). A similar percent increase in LV ejection fraction was also observed in all 3 cohorts (18 +/- 9%, 15 +/- 9%, and 14 +/- 6%; p = NS). Forward stroke volume increased significantly in group 1 (59 +/- 21 and 71 +/- 18 ml; p <0.001) and in group 3 (59 +/- 17 and 68 +/- 13 ml; p < 0.05). Thus, in asymptomatic patients with chronic, severe MR and normal LV ejection fraction at rest, there is an improvement in LV ejection fraction and an increase in forward stroke volume during exercise. These effects are comparable to those observed in normal controls. Directional differences in the cohort receiving no activity therapy were indistinguishable from either patients receiving vasodilator therapy or normal control subjects.

Adult↗

Restoring forces assessed with left atrial pressure clamps.

A negative pressure (P) in the fully relaxed left ventricle (LV) indicates the presence of restoring forces generated during contraction. To assess restoring forces in the intact LV under physiological filling conditions, a servomotor system was used in anesthetized open-chest dogs (n = 8) to produce nonfilling diastoles by left atrial pressure (LAP) clamping during systole such that LAP was less than left ventricular pressure (LVP) during the subsequent diastole. Steady-state LV end-diastolic pressure (EDP) was varied by volume infusion from 4.0 +/- 1.5 (+/-SD) to 12.8 +/- 2.1 mmHg. The corresponding fully relaxed LVPs increased from -2.1 +/- 1.9 to 1.1 +/- 3.2 mmHg, P < 0.001. LAP clamping increased the rate of LVP fall by 34 +/- 28% (P < 0.001) during 10 ms after the LVP dropped below the level of the LVP-LAP crossover of the preceding normal beat. During clamped beats, two-dimensional echo revealed substantial downward displacement of the mitral valve (MV) leaflets despite the reversed LA-LV gradient and absence of filling. Thus 1) restoring forces are present at low physiological EDP but absent at high physiological EDP; 2) filling retards the rate of fall of LVP; 3) even in the absence of filling, the process of LV relaxation facilitates MV opening.

Animals↗

Effects of EMD 57033 on contraction and relaxation in isolated rabbit hearts.

BACKGROUND: Ca2+ sensitizers are reported to enhance contractility with modest effects on energy utilization. In the present study we assessed the effects of the relatively "pure" Ca2+ sensitizer EMD 57033 on mechanical performance and energy consumption in the beating heart. METHODS AND RESULTS: In 10 isolated, red blood cell-perfused rabbit hearts the effects of EMD 57033 (5.0 to 5.8 mumol/L) on left ventricular (LV) pressure and O2 consumption (VO2) were examined at heart rates of 100 and 150 beats per minute (bpm) and perfusate [Ca2+] ([Ca2+]o) of 2.5 and 1.0 mmol/L (isovolumic contractions). LV developed pressure and maximum dP/dt increased, but less so at 150 bpm or 1.0 mmol/L [Ca2+]. End-diastolic pressure also increased, more so at 150 bpm or 1.0 mmol/L [Ca2+]o. EMD 57033 decreased time to peak isovolumic pressure (Tmax) and prolonged time to 50% pressure decline (T1/2). These changes were greater at slower heart rate or lower [Ca2+]o. The magnitude of increased VO2 with EMD 57033 was greater at 100 bpm than 150 bpm but unaffected by [Ca2+]o. We then investigated the influence of ejection on the response to EMD 57033 (n = 7). The increase in developed pressure with EMD 57033 was greater for ejecting than isovolumic beats (25.5 +/- 10.2 versus 14.7 +/- 7.5 mm Hg at 100 bpm, P < .01), while the increase in end-diastolic pressure was less (P = NS). The increase in VO2 was significantly greater for ejecting than isovolumic beats (0.027 +/- 0.013 versus 0.020 +/- 0.009 mL O2/beat per 100 g at 100 bpm, P < .01). CONCLUSIONS: EMD 57033 enhances contractility and prolongs relaxation. Its effects are modulated by heart rate, [Ca2+]o, and contraction mode, with positive inotropic effects being more prominent for ejecting beats.

Animals↗

Relation between left ventricular shape and Doppler filling parameters in patients with left ventricular dysfunction secondary to coronary artery disease.

Left ventricular (LV) shape is an independent predictor of exercise capacity in patients with systolic LV dysfunction. Recent studies suggest that end-systolic LV shape is related to the generation of restoring forces during contraction that facilitate filling at lower LV pressure during subsequent diastole. To test the hypothesis that preservation of a more elliptical LV shape would be associated with a distribution of diastolic inflow characterized by increased early relative-to-late filling, 32 outpatients with coronary artery disease and ejection fraction < 40% underwent quantitative 2-dimensional and Doppler echocardiography. LV volumes, ejection fraction, and eccentricity index were measured as were standard Doppler indexes of LV filling. Simple and multiple linear regression models were used to examine relations between LV shape and Doppler measurements. LV eccentricity at end-systole correlated strongly with the Doppler atrial filling fraction (r = -0.670; p < 0.001) and the ratio of early-to-late flow velocity integrals (r = 0.648; p < 0.001). No other 2-dimensional echocardiographic variable was significantly correlated with any other Doppler index of LV filling. Thus, LV shape at end-systole appears to be an important determinant of diastolic filling patterns. In patients with systolic LV dysfunction, preservation of a more elliptical chamber is associated with a diastolic inflow pattern characterized by increased early relative-to-late diastolic filling.

Aged↗

Observations suggesting a high incidence of exercise-induced severe mitral regurgitation in patients with mild rheumatic mitral valve disease at rest.

OBJECTIVES: The aim of this study was to determine the hemodynamic effects of upright bicycle ergometry in symptomatic patients with mild, mixed mitral stenosis and regurgitation. BACKGROUND: Patients with seemingly mild rheumatic mitral valve disease often complain of exertional dyspnea or fatigue. These symptoms are usually ascribed to flow-dependent increases in the gradient across the stenotic mitral valve. Although catheterization studies in these patients may demonstrate an increase in mitral valve gradient proportional to an increase in cardiac output, this approach does not specifically address the underlying mechanism of any observed increases in mitral gradient or left atrial (i.e., pulmonary capillary wedge) pressure. Exercise echocardiography is uniquely suited to the dynamic assessment of exercise-induced hemodynamic changes. METHODS: Fourteen symptomatic patients with exertional dyspnea and mild mitral stenosis and regurgitation at rest performed symptom-limited upright bicycle ergometry with quantitative two-dimensional, Doppler and color Doppler echocardiographic analysis. RESULTS: Average pulmonary artery systolic pressure in the 13 patients with adequate spectral signals of tricuspid regurgitation increased from 36 +/- 5 mm Hg (mean +/- SD) at rest to 63 +/- 14 mm Hg at peak exercise (p < 0.001). The mean transmitral pressure gradient in all patients increased from 4.5 +/- 1.4 mm Hg at rest to 12.7 +/- 2.7 mm Hg at peak exercise (p < 0.001). Five patients developed severe mitral regurgitation during exercise. CONCLUSIONS: Patients with exertional dyspnea and mild mitral stenosis and regurgitation at rest demonstrate a marked increase in pulmonary artery systolic pressure and mean transmitral pressure gradient during dynamic exercise. In a subset of these patients, marked worsening of mitral regurgitation appears to be the underlying mechanism of this hemodynamic deterioration. Because of the small sample size, this novel observation must be considered preliminary with respect to the true prevalence of exercise-related development of severe mitral regurgitation. If additional studies confirm the importance of this phenomenon, it has important implications for the management of patients with rheumatic mitral valve disease.

Adult↗