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Biomedical subjects

Valentino Piacentino

Publications and source records attributed to Valentino Piacentino.

At least 19 recordsLinked to original sources

The inotropic effect of cardioactive glycosides in ventricular myocytes requires Na+-Ca2+ exchanger function.

Glycoside-induced cardiac inotropy has traditionally been attributed to direct Na(+)-K(+)-ATPase inhibition, causing increased intracellular [Na(+)] and consequent Ca(2+) gain via the Na(+)-Ca(2+) exchanger (NCX). However, recent studies suggested alternative mechanisms of glycoside-induced inotropy: (1) direct activation of sarcoplasmic reticulum Ca(2+) release channels (ryanodine receptors; RyRs); (2) increased Ca(2+) selectivity of Na(+) channels (slip-mode conductance); and (3) other signal transduction pathways. None of these proposed mechanisms requires NCX or an altered [Na(+)] gradient. Here we tested the ability of ouabain (OUA, 3 microm), digoxin (DIG, 20 microm) or acetylstrophanthidin (ACS, 4 microm) to alter Ca(2+) transients in completely Na(+)-free conditions in intact ferret and cat ventricular myocytes. We also tested whether OUA directly activates RyRs in permeabilized cat myocytes (measuring Ca(2+) sparks by confocal microscopy). In intact ferret myocytes (stimulated at 0.2 Hz), DIG and ACS enhanced Ca(2+) transients and cell shortening during twitches, as expected. However, prior depletion of [Na(+)](i) (in Na(+)-free, Ca(2+)-free solution) and in Na(+)-free solution (replaced by Li(+)) the inotropic effects of DIG and ACS were completely prevented. In voltage-clamped cat myocytes, OUA increased Ca(2+) transients by 48 +/- 4% but OUA had no effect in Na(+)-depleted cells (replaced by N-methyl-d-glucamine). In permeabilized cat myocytes, OUA did not change Ca(2+) spark frequency, amplitude or spatial spread (although spark duration was slightly prolonged). We conclude that the acute inotropic effects of DIG, ACS and OUA (and the effects on RyRs) depend on the presence of Na(+) and a functional NCX in ferret and cat myocytes (rather than alternate Na(+)-independent mechanisms).

Animals↗

Phosphorylation of phospholamban at threonine-17 reduces cardiac adrenergic contractile responsiveness in chronic pressure overload-induced hypertrophy.

Physiological hemodynamic stress, such as aerobic exercise, is intermittent and requires an increase in Ca2+ -dependent contractility through sympathetic nervous system activation. Pathological hemodynamic stress, such as hypertension, is persistent and requires sustained increases in cardiac function. Over time, this causes left ventricular hypertrophy (LVH)-reduced responsiveness to sympathetic stimulation. In this study, we examined the hypothesis that blunted in vivo adrenergic contractile responsiveness in pressure overload (PO)-induced cardiac hypertrophy is caused by abnormalities in the abundance and/or basal phosphorylation state of Ca2+ regulatory proteins. PO, induced by aortic constriction, caused concentric LVH or dilated LVH. Only animals with dilation exhibited a decrease in baseline left ventricle function [fractional area change (FAC); measured with echocardiography]. All PO animals had a reduced contractile response to adrenergic agonists (increase in FAC with 40 microg.kg(-1).min(-1) dobutamine, control 0.30 +/- 0.04, n = 5 vs. banded 0.10 +/- 0.03, n = 10; P < 0.01). PO animals had reduced phospholamban (PLB) protein abundance (P = 0.07, not significant) and increased PLB phosphorylation at the calmodulin-dependent kinase II (CaMKII)-specific site (PLB-Thr17, P < 0.05) but not at the protein kinase A-specific site (PLB-Ser16). PLB-Thr17 phosphorylation was inversely correlated with dobutamine-induced increases in contractility in PO animals (r2 = 0.81, P < 0.05). Continuous induction of Ca2+ transients in isolated ventricular myocytes for 24 h increased phosphorylation at PLB-Thr17 and diminished inotropic responsiveness and PLB-Ser16 phosphorylation after exposure to isoproterenol (P < 0.05). These data show that reduced adrenergic responsiveness in feline PO hypertrophy and failure involves increases in basal PLB-Thr17 phosphorylation, suggesting that activation of CaMKII in PO hypertrophy contributes to defective adrenergic reserve in compensated LVH and early heart failure.

Animals↗

Effect of acute unloading via head-up tilt on QTc prolongation in patients with ischemic or non-ischemic cardiomyopathy.

Patients with advanced cardiomyopathy develop prolongations in ventricular myocyte action potential duration that are reflected by prolongations of QT intervals on surface electrocardiograms. Recent studies demonstrate that the placement of a left ventricular (LV) assist device, which induces profound cardiac decompression, acutely increases QT intervals within hours. The goal of this study was to use head-up tilt (HUT) to examine electrocardiographic responses to cardiac unloading in patients with cardiomyopathy. Surface electrocardiograms were analyzed during HUT in 21 patients with cardiomyopathy (ejection fraction <30%) and in 33 age-matched controls. Four to 6 different QT and RR intervals were measured at baseline (supine), at 5 and 25 minutes after HUT. The heart-rate-adjusted QT interval (QTc) was calculated using Bazett's formula. The mean QTc in control patients decreased at 5 minutes (426 +/- 31 vs 418 +/- 28 ms, p < 0.05, vs supine) and was unchanged at 25 minutes (426 +/- 31 vs 423 +/- 25 ms, p = NS, vs supine). However, in patients with cardiomyopathy, there was a significant increase in QTc during HUT (455 +/- 45 vs 473 +/- 42 and 479 +/- 42 ms, p < 0.001, vs supine). The change in heart rate during HUT did not differ between patients with cardiomyopathy and controls. In conclusion, HUT is associated with the immediate prolongation of myocardial repolarization in patients with cardiomyopathy. This response was not seen in age-matched controls. These results suggest that adaptations to chronic cardiac distention may include processes that help accelerate repolarization. Conversely, the prolongation of repolarization after unloading may modulate myocardial relaxation and arrhythmogenic risk.

Aged↗

Prolonged repolarization after ventricular assist device support is associated with arrhythmias in humans with congestive heart failure.

BACKGROUND: Recent observations indicate that the QTc interval often increases in the early postoperative period (<1 week) after mechanical unloading of severely failing hearts with a left ventricular assist device (LVAD). The present study examined whether early changes in ventricular repolarization after LVAD placement are associated with ventricular arrhythmias. METHODS AND RESULTS: An electrocardiogram was obtained within 4 days before LVAD placement, <12 hours after LVAD placement, and weekly thereafter. Patient records were reviewed for documented ventricular tachycardia (VT) or ventricular fibrillation (VF) for 1 week preoperatively and the first 2 weeks postoperatively. Differences in QTc interval between patients with and without VT were evaluated. Ten of 17 patients enrolled (59%) had VT or VF after LVAD placement. Of these, 4 required therapeutic intervention because of clinical instability or symptoms. The change in the QTc (DeltaQTc) between the preoperative and immediate postoperative period was significantly different among patients with VT/VF compared with patients without VT/VF (+23 ms vs. -68 ms, P < .001). CONCLUSION: The early period after initiation of LVAD support of the failing human heart is associated with a relatively high incidence of significant ventricular arrhythmias after LVAD placement. Beyond the impact of myocardial inflammation and wound healing occurring after all LVAD implants, early postoperative increases in the QTc interval after cardiac unloading appear to predispose to ventricular arrhythmias.

Electrocardiography↗

Altered myocardial Ca2+ cycling after left ventricular assist device support in the failing human heart.

OBJECTIVES: The objective of the present study was to determine whether improved contractility after left ventricular assist device (LVAD) support reflects altered myocyte calcium cycling and changes in calcium-handling proteins. BACKGROUND: Previous reports demonstrate that LVAD support induces sustained unloading of the heart with regression of pathologic hypertrophy and improvements in contractile performance. METHODS: In the human myocardium of subjects with heart failure (HF), with non-failing hearts (NF), and with LVAD-supported failing hearts (HF-LVAD), intracellular calcium ([Ca(2+)](i)) transients were measured in isolated myocytes at 0.5 Hz, and frequency-dependent force generation was measured in multicellular preparations (trabeculae). Abundance of sarcoplasmic reticulum Ca(2+) adenosine triphosphatase (SERCA), Na(+)/Ca(2+) exchanger (NCX), and phospholamban was assessed by Western analysis. RESULTS: Compared with NF myocytes, HF myocytes exhibited a slowed terminal decay of the Ca(2+) transient (DT(terminal), 376 +/- 18 ms vs. 270 +/- 21 ms, HF vs. NF, p < 0.0008), and HF-LVAD myocytes exhibited a DT(terminal) that was much shorter than that observed in HF myocytes (278 +/- 10 ms, HF vs. HF-LVAD, p < 0.0001). Trabeculae from HF showed a negative force-frequency relationship, compared with a positive relationship in NF, whereas a neutral relationship was observed in HF-LVAD. Although decreased SERCA abundance in HF was not altered by LVAD support, improvements in [Ca(2+)](i) transients and frequency-dependent contractile function were associated with a significant decrease in NCX abundance and activity from HF to HF-LVAD. CONCLUSIONS: Improvement in rate-dependent contractility in LVAD-supported failing human hearts is associated with a faster decay of the myocyte calcium transient. These improvements reflect decreases in NCX abundance and transport capacity without significant changes in SERCA after LVAD support. Our results suggest that reverse remodeling may involve selective, rather than global, normalization of the pathologic patterns associated with the failing heart.

Blotting, Western↗

Myocyte nitric oxide synthase 2 contributes to blunted beta-adrenergic response in failing human hearts by decreasing Ca2+ transients.

BACKGROUND: Human heart failure (HF) usually exhibits blunted response to beta-adrenergic receptor (AR) stimulation. Here, we examined whether expression of nitric oxide synthase-2 (NOS2, or inducible NOS) contributes to this loss of inotropic reserve in human HF. METHODS AND RESULTS: Failing human hearts were obtained at transplantation. Contraction and [Ca2+]i measurements were performed in isolated cardiac myocytes and trabeculae. In HF myocytes and muscle, isoproterenol (ISO), a beta-AR agonist, led to small inotropic and lusitropic responses. Specific inhibition of NOS2 by aminoguanidine (AG) or L-NIL dramatically increased the ISO-induced inotropy and lusitropy, such that the ISO+AG response in HF approached that seen with ISO alone in nonfailing human myocytes or muscles. Ca2+ transient data directly paralleled these results, indicating that altered cellular Ca2+ handling is responsible. In nonfailing human hearts, NOS2 inhibition had no effects. In addition, NOS2 inhibition also had no effect in 30% of failing hearts, but in these myocytes and muscles, the ISO response alone was similar to that of nonfailing hearts. In line with these functional findings, NOS2 protein expression measured by Western blotting was induced in HF when AG/L-NIL had a functional effect but not when AG/L-NIL had no effect on contractility and Ca2+ transients. CONCLUSIONS: NOS2 expression strongly limited ISO-induced increases in contraction, twitch Delta[Ca2+]i, and lusitropy in trabeculae and isolated myocytes from failing human hearts. Thus, the beta-AR hyporesponsiveness in human HF is mediated in large part by NO (or related congeners) produced within cardiac myocytes via NOS2.

Adrenergic beta-Agonists↗

Use of LeVeen pleuroperitoneal shunt for refractory high-volume chylothorax.

We present a case of intractable high-volume (> 2L/d) chylothorax after transhiatal esophagectomy treated successfully with the simultaneous insertion of both Denver (Denver Biomedical, Golden, CO) and LeVeen (Becton-Dickinson, Rutherford, NJ) pleuroperitoneal shunts. The patient initially had chemoradiotherapy for a T4N1 squamous cell carcinoma of the thoracic esophagus. Re-staging showed a dramatic shrinkage of tumor, and a transhiatal esophagectomy was performed. Sequential bilateral thoracotomies were performed on postoperative days 19 and 26 for attempted control of high-volume chylothorax, but these were unsuccessful. Subsequent pleuroperitoneal shunt insertion was used, which immediately controlled the effusion. A shunt study was performed shortly after hospital discharge, which showed an occluded Denver shunt and a patent LeVeen shunt. The patient succumbed to metastatic carcinoma 18 months after discharge, but no pleural effusion had recurred.

Antineoplastic Combined Chemotherapy Protocols↗

Effect of older donor age on risk for mortality after heart transplantation.

BACKGROUND: Despite the increasingly common use of donor hearts at least 50 years of age, controversy still remains regarding long-term outcome. Our goal was to determine if older donor age is associated with an increased risk of mortality and specifically if the use of donor hearts at least 50 years of age reduces survival. METHODS: We retrospectively studied records of all primary heart transplants performed between January 1990 and July 2002. Fifty-six patients who had received donor hearts at least 50 years of age were compared with 611 recipients of donor hearts less than 50 years of age. Clinicopathologic parameters were analyzed for their effect on mortality using the Cox proportional hazard model with calculation of hazard ratios (HR). Cut-point analysis of donor age was used to determine which donor age is associated with the greatest risk of mortality after transplant. RESULTS: Recipients of donor hearts at least 50 years of age were older (58.5 years +/- 7.0 vs 53.2 +/- 11.6; mean +/- standard deviation [SD]; p < 0.0001), suffered more often from ischemic cardiomyopathy (69% vs 50%, p = 0.01), and experienced a longer waiting time (192.2 days +/- 301.0 vs 138.6 +/- 190.8, p < 0.0001). Donor hearts at least 50 years of age (age 54.1 +/- 3.5 years) were more often female (50% vs 34%, p = 0.03), died less often of "head trauma" (9% vs 42%, p < 0.0001), and exhibited fewer cytomegalovirus (CMV) mismatches (29% vs 39%, p = 0.04) than donor hearts less than 50 years of age (age 26.8 +/- 12.3 years). Multivariate predictors of mortality were rejection index (HR 1.90 per unit [rejections/100 survival days], p < 0.0001), donor age (HR 1.16 per 10-year increment, p = 0.002), and recipient age (HR 1.24 per 10-year increment, p = 0.04). Recipients of donor hearts at least 50 years of age had reduced 1-year and 5-year survival ([65.7% vs 81.7%, p < 0.05] and [48.3% vs 68.4%, p < 0.05], respectively), as well as a higher proportion of deaths occurring within 1 month of transplant (41% of total deaths vs 23%, p = 0.06). Cut-point analysis indicated the characteristic of donor age of at least 40 years (categorical variable) to predict mortality with the same degree of fit as age used as a continuous variable. CONCLUSIONS: Although we observed a substantial reduction in survival among patients who were allocated donor hearts at least 50 years of age, this difference was not solely attributable to the categorical variable of donor age 50 in this group. Donor age as a continuous variable, however, was determined to be a notable predictor of survival and use of the donor age cut-point of 40 years (categorical variable) allowed risk stratification with similar accuracy. The use of a donor age cut-point of 40 years may be a useful clinical criterion for graft-related risk assessment.

Adult↗

Abnormal frequency-dependent responses represent the pathophysiologic signature of contractile failure in human myocardium.

BACKGROUND: - The normal increase in isometric developed force (DF) with faster pacing rates, known as the positive force-frequency response/relationship (FFR), is altered in failing myocardium, as shown by its negative response to increased pacing. The objective of this study was to determine if increasing Ca2+ influx with L-type Ca2+ channel (L-CaCh) agonists: BayK 8644 (BayK) and FPL 64176 (FPL) or increased extracellular Ca2+ could increase contractility and normalize the FFR in failing myocardium. METHODS: - Isometric DF was measured in right ventricular trabeculae from failing (n = 28) and non-failing (n = 12) human hearts at various stimulation frequencies (0.5-2.5 Hz) before and after bath application of BayK (250 nM), FPL (100 nM), or high Ca2+ (7.0 mM). Post-rest (PR) experiments were also conducted on several trabeculae. RESULTS: - In trabeculae from failing hearts, the DF decreased with an increase in pacing. Addition of L-CaCh agonists increased DF to similar levels in trabeculae from both failing and non-failing hearts at slow pacing rates, but did not alter the negative FFR in the failing group. During increased rest intervals, the amount of PR potentiation was diminished in trabeculae from failing hearts as compared to the non-failing preparations. CONCLUSION: - This study demonstrates that the abnormal FFR observed in trabeculae from failing hearts is a reliable physiologic signature of the cardiomyopathic state even when DF, at slow stimulation frequencies, is relatively high. These studies further demonstrate that the impaired FFR is not due to an inability to further increase contractility. Rather, our findings suggest that the abnormal FFR and blunted PR potentiation alike are a reflection of an altered functional balance between Ca2+ re-uptake and Ca2+ extrusion.

Calcium↗

Successful treatment of esophageal cancer with transhiatal esophagectomy after heart transplantation.

A 55-year-old heart transplant recipient with reflux esophagitis presented for routine endoscopic surveillance of an area of Barrett's metaplasia initially seen 3 years previously. Esophagogastroduodenoscopy revealed adenocarcinoma at 33 cm from the incisors. The preoperative clinical stage was T1N0M0 by endoscopic ultrasound. Transhiatal esophagectomy was performed with R0 resection of the cancer, and the patient recovered uneventfully. Pathologic examination confirmed esophageal adenocarcinoma (T1N0M0) in Barrett's mucosa. The patient is doing well, and has no evidence of disease after 18 months.

Adenocarcinoma↗

Dynamic regulation of sodium/calcium exchange function in human heart failure.

BACKGROUND: Sarcolemmal Na/Ca exchange (NCX) regulates cardiac Ca and contractility. NCX function during the cardiac cycle is determined by intracellular [Ca] and [Na] ([Ca]i, and [Na]i) and membrane potential (Em), which all change in human heart failure (HF). Therefore, changes in NCX function may contribute to abnormal Ca regulation in human HF. METHODS AND RESULTS: We assessed the cellular bases of differences in NCX function in ventricular myocytes from failing (F) and nonfailing (NF) human hearts. Allosteric activation of NCX by [Ca]i was comparable in F and NF myocytes (K1/2=150+/-31 nmol/L, n=7). The steady-state relation between [Ca]i and NCX current (INCX) was used to infer the local submembrane [Ca]i ([Ca]sm) that is sensed by NCX dynamically during the action potential (AP) and Ca transient (37 degrees C). This involved "tail" INCX measurement during abrupt repolarization of APs and Ca transients, where peak inward INCX indicates [Ca]sm. This allows inference of the direction of Ca transport by the NCX during the AP. In NF myocytes, NCX extrudes Ca for most of the AP. Three factors shift the direction of NCX-mediated Ca transport (to favor more Ca influx) in F versus NF myocytes, as follows: (1) reduced [Ca]sm, (2) prolonged AP duration, and (3) elevated [Na]i. CONCLUSIONS: These results show that Ca entry through NCX may limit systolic dysfunction due to reduced sarcoplasmic reticulum Ca stores in HF but could contribute to slow decay of the [Ca]i transient and to diastolic dysfunction.

Action Potentials↗

Phenotypic differences in transient outward K+ current of human and canine ventricular myocytes: insights into molecular composition of ventricular Ito.

The Ca(2+)-independent transient outward K(+) current (I(to)) plays an important electrophysiological role in normal and diseased hearts. However, its contribution to ventricular repolarization remains controversial because of differences in its phenotypic expression and function across species. The dog, a frequently used model of human cardiac disease, exhibits altered functional expression of I(to). To better understand the relevance of electrical remodeling in dogs to humans, we studied the phenotypic differences in ventricular I(to) of both species with electrophysiological, pharmacological, and protein-chemical techniques. Several notable distinctions were elucidated, including slower current decay, more rapid recovery from inactivation, and a depolarizing shift of steady-state inactivation in human vs. canine I(to). Whereas recovery from inactivation of human I(to) followed a monoexponential time course, canine I(to) recovered with biexponential kinetics. Pharmacological sensitivity to flecainide was markedly greater in human than canine I(to), and exposure to oxidative stress did not alter the inactivation kinetics of I(to) in either species. Western blot analysis revealed immunoreactive bands specific for Kv4.3, Kv1.4, and Kv channel-interacting protein (KChIP)2 in dog and human, but with notable differences in band sizes across species. We report for the first time major variations in phenotypic properties of human and canine ventricular I(to) despite the presence of the same subunit proteins in both species. These data suggest that differences in electrophysiological and pharmacological properties of I(to) between humans and dogs are not caused by differential expression of the K channel subunit genes thought to encode I(to), but rather may arise from differences in molecular structure and/or posttranslational modification of these subunits.

Animals↗

Calcium entry via Na/Ca exchange during the action potential directly contributes to contraction of failing human ventricular myocytes.

UNLABELLED: Prolongation of the Ca2+ transient and action potential (AP) durations are two characteristic changes in myocyte physiology in the failing human heart. The hypothesis of this study is that Ca2+ influx via reverse mode Na+/Ca2+ exchanger (NCX) or via L-type Ca2+ channels directly activates contraction in failing human myocytes while in normal myocytes this Ca2+ is transported into the sarcoplasmic reticulum (SR) to regulate SR Ca2+ stores. METHODS: Myocytes were isolated from failing human (n=6), nonfailing human (n=3) and normal feline hearts (n=9) and whole cell current and voltage clamp techniques were used to evoke and increase the duration of APs (0.5 Hz, 37 degrees C). Cyclopiazonic acid (CPA 10(-6) M), nifedipine (NIF;10(-6) M) and KB-R 7943 (KB-R; 3x10(-6) M) were used to reduce SR Ca2+ uptake, Ca2+ influx via the L-type Ca2+ current and reverse mode NCX, respectively. [Na+)i was changed by dialyzing myocytes with 0, 10 and 20 mM Na(+) pipette solutions. RESULTS: Prolongation of the AP duration caused an immediate prolongation of contraction and Ca2+ transient durations in failing myocytes. The first beat after the prolonged AP was potentiated by 21+/-5 and 27+/-5% in nonfailing human and normal feline myocytes, respectively (P<0.05), but there was no significant effect in failing human myocytes (+5+/-4% vs. steady state). CPA blunted the potentiation of the first beat after AP prolongation in normal feline and nonfailing human myocytes, mimicking the failing phenotype. NIF reduced steady state contraction in feline myocytes but the potentiation of the first beat after AP prolongation was unaltered (21+/-3% vs. base, P<0.05). KB-R reduced basal contractility and abolished the potentiation of the first beat after AP prolongation (2+/-1% vs. steady state). Increasing [Na+]i shortened AP, Ca2+ transient and contraction durations and increased steady state and post AP prolongation contractions. Dialysis with 0 Na+ eliminated these effects. CONCLUSIONS: Ca2+ enters both normal and failing cardiac myocytes during the late portion of the AP plateau via reverse mode NCX. In (normal) myocytes with good SR function, this Ca(2+) influx helps maintain and regulate SR Ca2+ load. In (failing) human myocytes with poor SR function this Ca2+ influx directly contributes to contraction. These studies suggest that the Ca2+ transient of the failing human ventricular myocytes has a higher than normal reliance on Ca2+ influx via the reverse mode of the NCX during the terminal phases of the AP.

Action Potentials↗

Cellular basis of abnormal calcium transients of failing human ventricular myocytes.

Depressed contractility is a central feature of the failing human heart and has been attributed to altered [Ca2+]i. This study examined the respective roles of the L-type Ca2+ current (ICa), SR Ca2+ uptake, storage and release, Ca2+ transport via the Na+-Ca2+ exchanger (NCX), and Ca2+ buffering in the altered Ca2+ transients of failing human ventricular myocytes. Electrophysiological techniques were used to measure and control V(m) and measure I(m), respectively, and Fluo-3 was used to measure [Ca2+]i in myocytes from nonfailing (NF) and failing (F) human hearts. Ca2+ transients from F myocytes were significantly smaller and decayed more slowly than those from NF hearts. Ca2+ uptake rates by the SR and the amount of Ca2+ stored in the SR were significantly reduced in F myocytes. There were no significant changes in the rate of Ca2+ removal from F myocytes by the NCX, in the density of NCX current as a function of [Ca2+]i, ICa density, or cellular Ca2+ buffering. However, Ca2+ influx during the late portions of the action potential seems able to elevate [Ca2+]i in F but not in NF myocytes. A reduction in the rate of net Ca2+ uptake by the SR slows the decay of the Ca2+ transient and reduces SR Ca2+ stores. This leads to reduced SR Ca2+ release, which induces additional Ca2+ influx during the plateau phase of the action potential, further slowing the decay of the Ca2+ transient. These changes can explain the defective Ca2+ transients of the failing human ventricular myocyte.

Action Potentials↗

Off-pump technique for Thoratec left ventricular assist device insertion.

We present a case of left ventricular assist device (Thoratec; Thoratec Laboratories Corp, Pleasanton, CA) insertion performed through a left thoracotomy without cardiopulmonary bypass in a patient with severe end-stage congestive heart failure with renal and respiratory dysfunction and a history of multiple cardiac operations.

Assisted Circulation↗

L-type Ca2+ channel density and regulation are altered in failing human ventricular myocytes and recover after support with mechanical assist devices.

Ca2+ influx through the L-type calcium channel (LTCC) induces Ca2+ release from the sarcoplasmic reticulum (SR) and maintains SR Ca2+ loading. Alterations in LTCC properties, their contribution to the blunted adrenergic responsiveness in failing hearts and their recovery after support with LV assist devices (LVAD) were studied. L-type Ca2+ current (I(Ca,L)) was measured under basal conditions and in the presence of isoproterenol (ISO), dibutyryl-cAMP (db-cAMP), Bay K 8644 (BayK), Okadaic acid (OA, a phosphatase inhibitor), and phosphatase 2A (PP2A) in nonfailing (NF), failing (F), and LVAD-supported human left ventricular myocytes (HVMs). Basal I(Ca,L) density was not different in the 3 groups but I(Ca,L) was activated at more negative voltages in F- and LVAD- versus NF-HVMs (V(0.5): -7.18+/-1.4 and -7.0+/-0.9 versus 0.46+/-1.1 mV). Both ISO and db-cAMP increased I(Ca,L) in NF- and LVAD- significantly more than in F-HVMs (NF >LVAD> F: ISO: 90+/-15% versus 77+/-19% versus 24+/-12%; db-cAMP: 235%>172%>90%). ISO caused a significant leftward shift of the I(Ca,L) activation curve in NF- and LVAD- but not in F-HVMs. After ISO and db-cAMP, the I(Ca,L) activation was not significantly different between groups. BayK also increased I(Ca,L) more in NF- (81+/-30%) and LVAD- (70+/-15%) than in F- (51+/-8%) HVMs. OA increased I(Ca, L) by 85.6% in NF-HVMs but had no effect in F-HVMs, while PP2A decreased I(Ca, L) in F-HVMs by 35% but had no effect in NF-HVMs. These results suggest that the density of LTCC is reduced in F-HVMs but basal I(Ca,L) density is maintained by increasing in LTCC phosphorylation.

3-Pyridinecarboxylic acid, 1,4-dihydro-2,6-dimethy↗

Rate dependence of [Na+]i and contractility in nonfailing and failing human myocardium.

BACKGROUND: In the failing human heart, altered Ca2+ homeostasis causes contractile dysfunction. Because Ca2+ and Na+ homeostasis are intimately linked through the Na+/Ca2+ exchanger, we compared the regulation of [Na+]i in nonfailing (NF) and failing human myocardium. METHODS AND RESULTS: [Na+]i was measured in SBFI-loaded muscle strips. At slow pacing rates (0.25 Hz, 37 degrees C), isometric force was similar in NF (n=6) and failing (n=12) myocardium (6.4+/-1.2 versus 7.2+/-1.9 mN/mm2), but [Na+]i and diastolic force were greater in failing (22.1+/-2.6 mmol/L and 15.6+/-3.2 mN/mm2) than in NF (15.9+/-3.1 mmol/L and 3.50+/-0.55 mN/mm2; P<0.05) myocardium. In NF hearts, increasing stimulation rates resulted in a parallel increase in force and [Na+]i without changes in diastolic tension. At 2.0 Hz, force increased to 136+/-17% of the basal value (P<0.05), and [Na+]i to 20.5+/-4.2 mmol/L (P<0.05). In contrast, in failing myocardium, force declined to 45+/-3%, whereas [Na+]i increased to 27.4+/-3.2 mmol/L (both P<0.05), in association with significant elevations in diastolic tension. [Na+]i was higher in failing than in NF myocardium at every stimulation rate. [Na+]i predicted in myocytes from Na+ (pipette)-contraction relations was 8.0 mmol/L in NF (n=9) and 12.1 mmol/L in failing (n=57; P<0.05) myocardium at 0.25 Hz. Reverse-mode Na+/Ca2+ exchange induced significant Ca2+ influx in failing but not NF myocytes, compatible with higher [Na+]i in failing myocytes. CONCLUSIONS: Na+i homeostasis is altered in failing human myocardium. At slow heart rates, the higher [Na+]i in failing myocardium appears to enhance Ca2+ influx through Na+/Ca2+ exchange and maintain sarcoplasmic reticulum Ca(2+) load and force development. At faster rates, failing myocytes with high [Na+]i cannot further increase sarcoplasmic reticulum Ca2+ load and are prone to diastolic Ca2+ overload.

Benzofurans↗