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May 4, 2011Circulation Heart Failure81 citations

Incomplete Recovery of Myocyte Contractile Function Despite Improvement of Myocardial Architecture With Left Ventricular Assist Device Support

AAAmrut V. AmbardekarLWLori A. WalkerJCJoseph C. Cleveland

Key Result

LVAD support improved unloaded ejection fraction (10.0% to 25.6%, P=0.007) and maximum calcium-saturated force (3.6 to 7.3 mN/mm2, P<0.001), but recovery remained incomplete.

Key Points

  • To determine whether cellular- and sarcomere-level contractility and biochemical remodeling explain why organ-level recovery and device removal remain rare after left ventricular assist device (LVAD) support.
  • Analyzed paired frozen left ventricular tissue from 8 patients with nonischemic cardiomyopathy at LVAD implantation and subsequent cardiac transplantation, comparing them with 8 nonfailing donor hearts.
  • Assessed isolated skinned myocyte dimensions, maximum calcium-saturated force, calcium sensitivity, myofilament cooperativity, and the phosphorylation/abundance of sarcomeric contractile proteins.
  • LVAD support significantly improved ejection fraction (10.0±1.0% to 25.6±11.0%, P=0.007), reduced LV end-diastolic dimension (7.6±1.2 to 4.9±1.4 cm, P<0.001), and decreased myocyte cross-sectional area (1247±346 to 638±254 μm², P=0.001).
  • Maximum calcium-saturated force improved after LVAD implantation (3.6±0.9 to 7.3±1.8 mN/mm², P<0.001) but remained markedly lower than in nonfailing controls (17.6±1.8 mN/mm², P<0.001).
  • Post-LVAD tissue exhibited increased total troponin I phosphorylation alongside decreased protein kinase C-specific phosphorylation of troponin I, with no other sarcomeric biochemical alterations detected.

Study Design

Type

Observational (n=16)

Structured PICO

Does LVAD support improve myocyte contractility and biochemistry in patients with nonischemic cardiomyopathy?

P
Population
8 patients with nonischemic cardiomyopathy evaluated before LVAD implantation and before cardiac transplantation, compared with 8 nonfailing hearts.
E
Exposure
Left ventricular assist device (LVAD) support
C
Comparator
Baseline (before LVAD implantation) and nonfailing hearts
O
Outcome
Myocyte contractility (maximum calcium-saturated force) and biochemistry at the sarcomere levelsurrogate

LVAD support in nonischemic cardiomyopathy improves LV size and partially recovers myocyte contractility, but fails to fully restore sarcomeric function to nonfailing levels.

Main Result

Absolute Event Rate: 25.6% vs 10%

p-value: p=0.007

Abstract

BACKGROUND: Unloading a failing heart with a left ventricular assist device (LVAD) can improve ejection fraction (EF) and LV size; however, recovery with LVAD explantation is rare. We hypothesized that evaluation of myocyte contractility and biochemistry at the sarcomere level before and after LVAD may explain organ-level changes. METHODS AND RESULTS: Paired LV tissue samples were frozen from 8 patients with nonischemic cardiomyopathy at LVAD implantation (before LVAD) and before cardiac transplantation (after LVAD). These were compared with 8 nonfailing hearts. Isolated skinned myocytes were purified and attached to a force transducer, and dimensions, maximum calcium-saturated force, calcium sensitivity, and myofilament cooperativity were assessed. Relative isoform abundance and phosphorylation levels of sarcomeric contractile proteins were measured. With LVAD support, the unloaded EF improved (10.0±1.0% to 25.6±11.0%, P=0.007), LV size decreased (LV internal dimension at end diastole, 7.6±1.2 to 4.9±1.4 cm; P<0.001), and myocyte dimensions decreased (cross-sectional area, 1247±346 to 638±254 μm(2); P=0.001). Maximum calcium-saturated force improved after LVAD (3.6±0.9 to 7.3±1.8 mN/mm(2), P<0.001) implantation but was still lower than in nonfailing hearts (7.3±1.8 versus 17.6±1.8 mN/mm(2), P<0.001). An increase in troponin I (TnI) phosphorylation after LVAD implantation was noted, but protein kinase C phosphorylation of TnI decreased. Biochemical changes of other sarcomeric proteins were not observed after LVAD. CONCLUSIONS: There is significant improvement in LV and myocyte size with LVAD, but there is only partial recovery of EF and myocyte contractility. LVAD support was associated only with biochemical changes in TnI, suggesting that alternate mechanisms might contribute to contractile changes after LVAD and that additional interventions may be needed to alter biochemical remodeling of the sarcomere to further enhance myofilament and organ-level recovery.

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Cite This Study

Ambardekar et al. (2011) conducted an observational in nonischemic cardiomyopathy (n=16). Left ventricular assist device (LVAD) support vs. Before LVAD and nonfailing hearts was evaluated on Unloaded ejection fraction (p=0.007). LVAD support improved unloaded ejection fraction (10.0% to 25.6%, P=0.007) and maximum calcium-saturated force (3.6 to 7.3 mN/mm2, P<0.001), but recovery remained incomplete.

synapsesocial.com/papers/6a8316aea250d11ff44cd580https://doi.org/10.1161/circheartfailure.111.961326
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Myocardial Size and Fibrosis Changes During Left Ventricular Assist Device Support2012 · 17 citations
  2. 2Chronic Unloading by Left Ventricular Assist Device Reverses Contractile Dysfunction and Alters Gene Expression in End-Stage Heart Failure2000 · 297 citations
  3. 3LVAD or no LVAD: biomechanical signatures of mechanical unloading2026
  4. 4Changes in sarcolemmal Ca entry and sarcoplasmic reticulum Ca content in ventricular myocytes from patients with end-stage heart failure following myocardial recovery after combined pharmacological and ventricular assist device therapy2003 · 80 citations
  5. 5Clinical Recovery From End-Stage Heart Failure Using Left-Ventricular Assist Device and Pharmacological Therapy Correlates With Increased Sarcoplasmic Reticulum Calcium Content but Not With Regression of Cellular Hypertrophy2004 · 167 citations