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B D Hoit

Publications and source records attributed to B D Hoit.

At least 55 records · Page 3Linked to original sources

In vivo determination of left ventricular wall stress-shortening relationship in normal mice.

Although targeted alterations of the mouse genome are used increasingly to identify the mechanisms underlying cardiac function, the methods used to study the phenotypic expression of these alterations in vivo are limited. To derive a relatively noninvasive, load-independent measure of left ventricular (LV) contractility in mice, we cannulated the femoral artery and performed two-dimensional directed M-mode echo studies in 28 anesthetized FVB/N mice, using a 9-MHz transducer. Loading conditions were altered by intraarterial methoxamine (3-12 microg/g), and LV shortening fraction was determined at several steady states, both before and after myocardial contractility was altered by either 4 microg/g intraperitoneal dobutamine (n = 16) or 1-2 microg/g verapamil (n = 12). The relation between LV systolic meridional stress and fractional shortening derived from pooled baseline data was inverse and linear [r = 0.80, slope = -0.19, intercept = 48%, standard error of estimate (SEE) = 5.5%, P < 0.001]. Dobutamine produced a parallel upward shift of the relation (r = 0.87, slope = -0.21, intercept = 61%, SEE = 4.5%, P < 0.001), and verapamil produced a downward shift of the relation (r = 0.48, slope = -0.05, intercept = 24%, SEE = 3.7%, P < 0.05). At matched levels of end-systolic stress, dobutamine increased and verapamil decreased the LV shortening fraction. We conclude that 1) inverse stress-shortening relations can be assessed noninvasively in mice; and 2) these relations are sensitive to alterations in inotropic state, independent of loading conditions.

Animals↗

Left atrial systolic and diastolic function after cessation of pacing in tachycardia-induced heart failure.

Studies in the rapid-pacing model of heart failure have shown that left ventricular (LV) systolic function normalizes on cessation of pacing and LV diastolic dysfunction persists, but there is no information regarding atrial function under these conditions. To determine the effects of cessation of pacing on left atrial (LA) systolic and diastolic function, ten dogs with rapid pacing-induced heart failure (250 beats/min for 3-4 wk), six dogs with regression of heart failure (4 wk after cessation of rapid pacing), and seven control dogs were instrumented with LA sonomicrometers and micromanometers. At matched LA pressure, LA ejection (10.2 +/- 3.0 vs. 17.4 +/- 5.5%), reservoir volume fractions (19 +/- 8 vs. 35 +/- 11%), and heart rate-corrected mean normalized systolic ejection rate (1.25 +/- 0.33 vs. 1.60 +/- 0.44 EF/s) were significantly less, and the volume-normalized diastolic stiffness constant (4.9 +/- 0.8 vs. 3.2 +/- 1.1) was significantly greater, in regression versus control dogs; these changes were associated with incomplete regression of LA hypertrophy and a persistent 77.4% increase in beta-myosin heavy chain (beta-MHC) in the LA body. LV systolic function and weight were not significantly different, whereas the time constant of LV relaxation was longer (52.5 +/- 4.4 vs. 40.8 +/- 7.6 ms; P < 0.05) and LV end-diastolic pressure was greater (12.2 +/- 1.8 vs. 7.1 +/- 2.0 mmHg; P < 0.05) in regression compared with control dogs. Thus, unlike the normalization of LV systolic function observed with cessation of rapid pacing, LA systolic function is persistently abnormal, owing in part to persistent LV diastolic dysfunction, residual LA hypertrophy, and MHC isoform switches.

Animals↗

Invasive hemodynamics and force-frequency relationships in open- versus closed-chest mice.

We compared hemodynamics, ventricular function, and force-frequency relationships in six open-chest and six closed-chest anesthetized mice (FVB/N strain). Left ventricular (LV) pressure was measured with a 1.8- or 1.4-Fr Millar catheter placed via the right carotid artery and the LV apex in the closed- and open-chest state, respectively. Pacing was performed with electrodes placed either directly on atrial appendages (open chest) or with a 1-Fr bipolar catheter via the jugular vein (closed chest). Closed-chest animals had greater spontaneous heart rate (267 +/- 106 vs. 147 +/- 27 beats/min), LV systolic (81 +/- 14 vs. 48 +/- 9 mmHg) and diastolic pressures (11.2 +/- 4.8 vs. 5.6 +/- 2.4 mmHg), and maximal rise (+ dP/dtmax: 6,208 +/- 2,519 vs. 3,682 +/- 671 mmHg/s) and fall in pressure development (-dP/dtmax: -6,094 +/- 2,386 vs. -3,001 +/- 399 mmHg/s). LV systolic pressure (98 +/- 18 vs. 52 +/- 11 mmHg), + dP/dtmax (9,240 +/- 2,459 vs. 5,777 +/- 2,473 mmHg/s), and -dP/dtmax (-8,375 +/- 2,551 vs. -3,753 +/- 1,170 mmHg/s) were significantly higher when animals were matched at a heart rate of 420 beats/min in closed-chest vs. open-chest animals. Biphasic force-frequency relationships were seen in all animals, but the critical heart rate was greater in the closed- than open-chest animals (432 +/- 42 vs. 318 +/- 42 beats/min). We conclude that 1) there are significant differences between invasive indexes of systolic and diastolic function between the closed- and open-chest preparations, 2) there is a biphasic force-frequency relationship in the anesthetized mouse, and 3) dP/dtmax can be used to assess the cardiovascular phenotype.

Anesthesia, General↗

The effects of a thyroid hormone analog on left ventricular performance and contractile and calcium cycling proteins in the baboon.

To determine the biochemical and related functional effects of the thyroid analog diiodothyroproprionic acid (DITPA) on primate myocardium, we examined, both before and after 23 days of DITPA (3.75 mg/kg): myosin heavy-chain (MHC) isoforms and sarcoplasmic reticulum (SR) calcium cycling proteins; left ventricular (LV) function; and the LV force-frequency relation in four baboons chronically instrumented with sonomicrometers and micromanometers. The force-frequency relation was measured as the response of isovolumic contraction (dP/dtmax) to incremental pacing and the critical heart rate (HRcrit) as the rate at which dP/dtmax reached its maximum. DITPA increased basal LV dPt/dtmax (3,300 +/- 378 versus 2,943 +/- 413 mm Hg/sec; p = .09), and velocity of circumferential shortening (1.13 +/- 0.30 versus 0.76 +/- 0.30 circ/sec; p < .01), decreased the basal time constant of isovolumic relaxation (24.2 +/- 1.6 versus 29.9 +/- 2.5 msec; p < .05), and increased the HRcrit (203 +/- 19 versus 168 +/- 20 bpm; p < .05), without effecting significant changes in either basal heart rate (119 +/- 14 versus 111 +/- 17 bpm) or systolic blood pressure (137 +/- 14 versus 126 +/- 8 mm Hg). Quantitative immunoblotting revealed significant decreases in both phospholamban and the ratio of phospholamban to SR Ca2+ adenosine triphosphatase in DITPA-treated animals when compared to four untreated controls. By contrast, alpha-MHC isoform was undetectable in both DITPA treated and control baboons. Thus, DITPA favorably alters the stoichiometry between the SR calcium pump and its inhibitor, phospholamban, and has positive inotropic and lusitropic effects in the normal primate left ventricle, which may be useful in the treatment of heart failure. Unlike thyroid hormone, these changes occur in the absence of detectable alpha-MHC isoform protein expression and without an increase in heart rate.

Animals↗

Cardiac-specific overexpression of phospholamban alters calcium kinetics and resultant cardiomyocyte mechanics in transgenic mice.

Phospholamban is the regulator of the cardiac sarcoplasmic reticulum (SR) Ca(2+)-ATPase activity and an important modulator of basal contractility in the heart. To determine whether all the SR Ca(2+)-ATPase enzymes are subject to regulation by phospholamban in vivo, transgenic mice were generated which overexpressed phospholamban in the heart, driven by the cardiac-specific alpha-myosin heavy chain promoter. Quantitative immunoblotting revealed a twofold increase in the phospholamban protein levels in transgenic hearts compared to wild type littermate hearts. The transgenic mice showed no phenotypic alterations and no changes in heart/body weight, heart/lung weight, and cardiomyocyte size. Isolated unloaded cardiac myocytes from transgenic mice exhibited diminished shortening fraction (63%) and decreased rates of shortening (64%) and relengthening (55%) compared to wild type (100%) cardiomyocytes. The decreases in contractile parameters of transgenic cardiomyocytes reflected decreases in the amplitude (83%) of the Ca2+ signal and prolongation (131%) in the time for decay of the Ca2+ signal, which was associated with a decrease in the apparent affinity of the SR Ca(2+)-ATPase for Ca2+ (56%), compared to wild type (100%) cardiomyocytes. In vivo analysis of left ventricular systolic function using M mode and pulsed-wave Doppler echocardiography revealed decreases in fractional shortening (79%) and the normalized mean velocity of circumferential shortening (67%) in transgenic mice compared to wild type (100%) mice. The differences in contractile parameters and Ca2+ kinetics in transgenic cardiomyocytes and the depressed left ventricular systolic function in transgenic mice were abolished upon isoproterenol stimulation. These findings indicate that a fraction of the Ca(2+)-ATPases in native SR is not under regulation by phospholamban. Expression of additional phospholamban molecules results in: (a) inhibition of SR Ca2+ transport; (b) decreases in systolic Ca2+ levels and contractile parameters in ventricular myocytes; and (c) depression of basal left ventricular systolic function in vivo.

Adrenergic beta-Agonists↗

Effects of changes in atrioventricular gradient and contractility on left ventricular filling in human diastolic cardiac dysfunction.

The factors responsible for abnormalities in diastolic filling indexes as assessed by noninvasive testing in human beings have been extensively studied but are not completely understood. We therefore investigated left ventricular diastolic filling indexes by radionuclide angiography during right atrial pacing simultaneously with assessment of a directly measured left atrioventricular gradient and a time constant of isovolumic relaxation in 11 patients with hypertension and diastolic dysfunction. Loading conditions were altered with nitroprusside and phenylephrine, and contractility was improved by dobutamine infusion. The maximum left atrioventricular gradient at constant heart rates was determined by loading conditions and was not significantly affected by increases in contractility or an improvement in isovolumic relaxation rate. The peak filling rate according to radionuclide angiography was highly dependent on the atrioventricular gradient and was not affected by enhancement of the isovolumic relaxation rate.

Adult↗

Intravascular and intracardiac ultrasound: a tool of the future.

Intravascular ultrasonography has the capability to visualize the vessel wall and perivascular structures, to identify the spatial distribution and composition of atherosclerotic plaque, and to measure accurately vessel and wall dimensions. This article discusses relevant principles of instrumentation, issues pertaining to the validation and interpretation of intravascular ultrasound images, and the current and potential applications of intravascular (and intracardiac) imaging. Emphasis is placed on uses that are likely to be of interest to the critical care physician.

Animals↗

Effects of thyroid hormone on left ventricular performance and regulation of contractile and Ca(2+)-cycling proteins in the baboon. Implications for the force-frequency and relaxation-frequency relationships.

The transcriptional, posttranscriptional, and related functional effects of thyroid hormone on primate myocardium are poorly understood. Therefore, we studied the effects of thyroid hormone on sarcoplasmic reticulum (SR) Ca(2+)-cycling proteins and myosin heavy chain (MHC) composition at the steady state mRNA and protein level and associated alterations of left ventricular (LV) performance in 8 chronically instrumented baboons. The force-frequency and relaxation-frequency relations were assessed as the response of LV isovolumic contraction (dP/dtmax) and relaxation (Tau), respectively, to incremental atrial pacing. Both the heart rate at which dP/dtmax was maximal and Tau was minimal (critical heart rates) in response to pacing were increased significantly after thyroid hormone. Postmortem LV tissue from 5 thyroid-treated and 4 additional control baboons was assayed for steady state mRNA levels with cDNA probes to MHC isoforms and SR Ca(2+)-cycling proteins. Steady state SR Ca(2+)-ATPase and phospholamban mRNA increased in the hyperthyroid state, and alpha-MHC mRNA appeared de novo, whereas beta-MHC mRNA decreased. Western analysis (4 thyroid-treated and 4 control baboons) showed directionally similar changes in MHC isoforms and a slight increase in SR Ca(2+)-ATPase. In contrast, there was a statistically nonsignificant decrease in phospholamban protein, which resulted in a significant 40% decrease in the ratio of phospholamban to SR Ca(2+)-ATPase. Thus, thyroid hormone increases the transcription of Ca(2+)-cycling proteins and shifts MHC isoform expression in the primate LV. Our data suggest that both transcriptional and posttranslational mechanisms determine the levels of these proteins in the hyperthyroid primate heart and mediate, in part, the observed enhanced basal and frequency-dependent LV performance.

Animals↗

Disparate effects of early pressure overload hypertrophy on velocity-dependent and force-dependent indices of ventricular performance in the conscious baboon.

BACKGROUND: The effects of early pressure overload on left ventricular (LV) chamber mechanics in the primate heart are poorly understood. METHODS AND RESULTS: To test the hypothesis that early LV pressure overload hypertrophy is associated with depression of velocity-dependent indices of LV systolic (LV dP/dt) and diastolic function (time constant of relaxation, tau) but unchanged systolic elastance (Ees), we studied six conscious baboons instrumented with LV micromanometers and LV dimension and wall thickness sonomicrometers. Loading conditions were altered by pharmacological angiotensin II generation both before and 12 weeks after producing renovascular hypertension (2 kidney, 1 clip). The LV systolic pressure (149 +/- 11 [SD] versus 114 +/- 5 mm Hg) and LV mass (125 +/- 25 versus 91 +/- 20 g) were greater 12 weeks after than before (both P < .05). Both Ees and Ees normalized for LV mass were similar before versus 12 weeks after (23.0 +/- 9.6 versus 22.3 +/- 9.8 mm Hg/mL and 26.5 +/- 14.5 versus 19.8 +/- 12.5 mm Hg/mL, respectively; both P = NS). At matched LV systolic and diastolic pressures, LV fractional shortening was similar (18.6 +/- 6.8% versus 21.6 +/- 4.9%), but the time constant of LV isovolumic relaxation was significantly longer (42.3 +/- 5.3 versus 31.4 +/- 7.0 ms, P < .05) and LV dP/dt and Vcf were significantly less (1891 +/- 352 versus 2342 +/- 284 mm Hg/s and 0.9 +/- 0.4 versus 1.1 +/- 0.3 circ/s, respectively; both P < .05) 12 weeks after than before. CONCLUSIONS: In conscious baboons with systemic arterial hypertension and early LV hypertrophy, there is depression of velocity-dependent indices of LV contraction and relaxation but unaltered force-dependent measures of contractility.

Animals↗

Mechanisms, diagnosis, and treatment of diastolic heart failure.

Diastolic heart failure, in the absence of LV systolic dysfunction, is a common clinical condition that can be demonstrated in as many as one third of patients with congestive heart failure. Diastolic dysfunction caused by abnormalities in LV filling can be a result of many pathologic conditions, including hypertrophy, infiltrative cardiomyopathies, or myocardial ischemia. The major physiologic determinants of LV filling can be divided into cellular mechanisms, hemodynamic characteristics, and hormonal influences. Cellular mechanisms for impaired LV inactivation are determined by the handling of calcium within the myocyte during excitation-contraction-relaxation coupling. The hemodynamic characteristics of LV diastolic filling are determined by loading conditions, the time constant of isovolumic relaxation, heart rate, ventricular nonuniformity, pericardial restraint, myocardial elasticity, chamber compliance, and coronary blood flow. The sympathetic nervous system and the renin-angiotensin system are important modulators of diastolic filling, directly or indirectly. The diagnosis of heart failure is confirmed by a combination of clinical tests including invasive and noninvasive techniques, each of which has advantages and disadvantages. Treatment of medical conditions in which diastolic heart failure is a prominent component include pharmacotherapy with calcium channel antagonists, beta-adrenergic blocking agents, diuretic agents, and angiotensin-converting-enzyme inhibitors. Certain conditions associated with diastolic filling abnormalities such as pericardial disease or severe ischemic heart disease may be best managed by surgical or percutaneous intervention. Future research will include further delineation of the cellular mechanisms of active myocardial relaxation and clinical investigation into treatment directed at improving outcome.

Diagnosis, Differential↗

In vivo echocardiographic detection of enhanced left ventricular function in gene-targeted mice with phospholamban deficiency.

We evaluated the ability of M-mode and Doppler echocardiography to assess left ventricular (LV) function reliably and repeatedly in mice and tested whether these techniques could detect physiological alterations in phospholamban (PLB)-deficient mice. Anesthetized wild-type mice (n = 7) and mice deficient in PLB (n = 8) were studied with two-dimensional guided M-mode and Doppler echocardiography using a 9-MHz imaging and 5- to 7.5-MHz Doppler transducer. Data were acquired in the baseline state and after intraperitoneal isoproterenol administration (2.0 micrograms/g IP). Interobserver and intraobserver variability and reproducibility were excellent. PLB-deficient mice were associated with significant (P < .05) increases in several physiological parameters (mean +/- SD) compared with wild-type control mice: normalized mean velocity of circumferential shortening (7.7 +/- 2.1 versus 5.5 +/- 1.0 circ/sec), peak aortic velocity (105 +/- 13 versus 75 +/- 9.2 cm/s), mean aortic acceleration (57 +/- 16 versus 31 +/- 4 m/s2), and peak early-diastolic transmitral velocity (80.0 +/- 7.2 versus 66.9 +/- 7.7 cm/s). LV dimensions, shortening fractions, heart rates, late diastolic transmitral (A) velocities, and early to late (E/A) diastolic velocity ratios were similar in both groups. Isoproterenol administration resulted in significant increases in Doppler indices of ventricular function in control but not PLB-deficient mice. These findings indicate that assessment of LV function can be performed noninvasively in mice under varying physiological conditions and that PLB regulates basal LV function in vivo.

Animals↗

Effects of angiotensin II generated by an angiotensin converting enzyme-independent pathway on left ventricular performance in the conscious baboon.

Human chymase is a serine proteinase that converts angiotensin (Ang) I to Ang II independent of angiotensin converting enzyme (ACE) in vitro. The effects of chymase on systemic hemodynamics and left ventricular function in vivo were studied in nine conscious baboons instrumented with a LV micromanometer and LV minor axis and wall thickness sonomicrometer crystal pairs. Measurements were made at baseline and after [Pro11DAla12] Ang I, a specific substrate for human chymase, was given in consecutive fashion as a 0.1 mg bolus, an hour-long intravenous infusion of 5 mg, a 3 mg bolus, and after 5 mg of an Ang II receptor antagonist. [Pro11DAla12]Ang I significantly increased LV systolic and diastolic pressure, LV end-diastolic and end systolic dimensions and the time constant of LV relaxation and significantly decreased LV fractional shortening and wall thickening. Administration of a specific Ang II receptor antagonist reversed all the hemodynamic changes. In separate studies, similar results were obtained in six of the baboons with ACE blockade (20 mg, intravenous captopril). Post-mortem studies indicated that chymase-like activity was widely distributed in multiple tissues. Thus, in primates, Ang I is converted into Ang II by an enzyme with chymase-like activity. This study provides the first in vivo evidence of an ACE-independent pathway for Ang II production.

Angiotensin I↗

Previously unrecognized intrapericardial hematoma leading to refractory abdominal ascites.

Delayed traumatic pericardial syndromes are well recognized. We describe a case in which a patient presented 3 years after an initial trauma with manifestations of constrictive pericarditis. The etiology in this report is attributable to a large intrapericardial hematoma, which is rarely described. This article also illustrates the complimentary nature of magnetic imaging and Doppler echocardiography in the evaluation of pericardial disease.

Aged↗

Left atrial mechanical and biochemical adaptation to pacing induced heart failure.

OBJECTIVE: To determine the left atrial mechanical and biochemical adaptations to congestive heart failure, 10 dogs with rapid atrial and ventricular pacing and seven control dogs were studied. METHODS: Animals were instrumented with left atrial sonomicrometers and micromanometers and left atrial pressure-volume relationships were generated by phenylephrine boluses for maximum elastance (Emax) and end systolic elastance (Ees) calculations. Left atrial maximum volume, ejection fraction, and mean circumferential fibre shortening (Vcf) were compared at matched left atrial pressure. At necropsy, myosin heavy chain (MHC) isoforms from the left atrial body and appendage were separated with SDS-PAGE, stained with monoclonal antibodies to alpha and beta MHC, and quantified with laser densitometry. RESULTS: Left atrial ejection fraction and Vcf were significantly lower and maximum atrial volume and atrial systolic stroke volume were significantly greater in heart failure than in control. Emax was not significantly altered in heart failure, at 5.9(SD 2.9) v 4.5(1.6) mm Hg.ml-1 in controls. However, Vcf was lower (P < 0.05) and the A loop pressure-volume area (an index of eternal mechanical work performed by the left atrium) was greater (P < 0.05) in heart failure than in control dogs. The percent beta MHC in the left atrial body was greater in dogs with heart failure than in controls, at 42.6(9.8) v 17.3(9.0)%, P < 0.05. By contrast there was no significant beta MHC isoform switch in the left atrial appendage [14.4(7.6) v 17.9(9.7)%]. CONCLUSIONS: In this model of left atrial pressure and volume overload, there is significant upregulation of beta MHC in the left atrial body but not in the appendage and this isoform switch is associated with decreased velocity of left atrial contraction, increased atrial mechanical work, and unchanged force generation.

Animals↗

Characteristics of chronic left ventricular dysfunction induced by coronary embolization in a canine model.

We have characterized the coronary vascular reserve, left ventricular function and inotropic response in dogs with chronic heart failure consequent to intracoronary embolization (EMB) with 50 microns spheres. We conducted studies 12-39 months after embolization and contrasted the findings with normal (CON) dogs. Acute embolization produced sustained LV volume enlargement and increased wall thickness, reduction of LV ejection fraction and elevated end-diastolic pressures; resting catecholamine levels were also increased. Responses to phenylephrine, nitroprusside, and dobutamine were identical in CON and EMB and coronary vasodilator reserve was reduced despite larger coronary vascular volume. Analysis by light microscopy showed a diffuse focal and interstitial fibrosis distributed uniformly from endocardium to epicardium associated with 14% loss of myocytes. This created a functional separation of myocardial muscle bundles and a disruption of the syncytial nature of the heart. Electron microscopy of the areas of fibrosis revealed myocytes in states ranging from normal appearing, to ghosts with evidence of cytolysis and loss of the sarcolemma. This model of chronic congestive heart failure with LV systolic dysfunction and elevated LV diastolic pressures shares a number of features with the syndrome in humans.

Animals↗