Despite aggressive treatment, heart failure (HF) remains a major clinical problem with high mortality. HF is characterized by depressed cardiac pump function. Recent studies have shown that depressed contractile protein function underlies, in part, depressed pump function in HF; however, the molecular mechanisms are largely unknown. Studies proposed in project 3 emphasize ?Control of Sarcomere Dynamics?, with a strong focus on cardiac myosin light chain 2 (cMLC2) phosphorylation. Strong synergistic interactions of project 3 continue with project 1 (biased ligand signaling targeting sarcomeres) and project 2 (sarcomere growth and remodeling). In addition project 3 relies critically on the support from Core B (Human Tissue;
aims 1 and 2) and Core C (Proteomics and Analytical Biochemistry;
aim 3). The significance of cMLC2 phosphorylation was substantially enhanced by the recent identification of a cardiac specific isoform of myosin light chain kinase (cMLCK), which is upregulated in HF. However, both the extent and regional variation of cMLC2 phosphorylation in health and disease, as well as the functional impact of this post-translational modification on cardiac contractile biology has not been studied in detail. Accordingly, the overall goal of project 3 is to define the role of cMLC2 on human myofilament function in health and disease. We hypothesize that human cMLC2 is a critical regulator of myocyte contraction that is dysregulated in HF, and that increasing MLC2 phosphorylation will reverse myofilament dysfunction and improve cardiac pump function. To test this hypothesis, we have developed three independent specific aims.
In aim 1 we will determine the role of cMLC2 in skinned myocardium from healthy and failing human hearts. Biophysical experiments will focus on skinned human isolated myocardium where we will alter contractile protein phosphorylation status by treatment with kinases or phosphatase, or recombinant protein exchange.
In aim 2 we will determine the role of cMLC2 in healthy and diseased intact cells under simulated length-force relationships that approximate in-situ pressure- volume loops. Finally, in aim 3 we will determine the extent of cMLC2 biochemical alterations by using state of the art proteomic analysis. Specific attention will be on MLC2 phosphorylation on S15 as well as the extent of N14 deamidation, and the regional variation of this parameter. We expect to identify decreased cMLC2 phosphorylation as a significant mechanism underlying sarcomeric dysfunction in heart failure. Our results may provide a path to a novel therapeutic target in the treatment of heart failure, where restoration of cardiac myosin light chain 2 phosphorylation levels is expected to improve cardiac pump performance.

Public Health Relevance

Project 3: Narrative Depressed cardiac pump function in heart failure (HF) is caused, in part, by depressed contractile protein function; the underlying mechanisms are incompletely understood. Recent evidence indicates a significant role for myosin light chain 2 (cMLC2) phosphorylation in HF. Studies proposed here will employ state of the art biophysical techniques to define human cMLC2 function in health and disease, as well as state of the art proteomic approaches to determine cMLC2 phosphorylation in human HF. Our studies may provide a path to novel therapeutic strategies to combat depressed cardiac pump function in human HF.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Program Projects (P01)
Project #
5P01HL062426-17
Application #
9281839
Study Section
Heart, Lung, and Blood Initial Review Group (HLBP)
Program Officer
Evans, Frank
Project Start
Project End
Budget Start
2017-06-01
Budget End
2018-05-31
Support Year
17
Fiscal Year
2017
Total Cost
$409,504
Indirect Cost
Name
University of Illinois at Chicago
Department
Type
Domestic Higher Education
DUNS #
098987217
City
Chicago
State
IL
Country
United States
Zip Code
60612
Dvornikov, Alexey V; de Tombe, Pieter P; Xu, Xiaolei (2018) Phenotyping cardiomyopathy in adult zebrafish. Prog Biophys Mol Biol 138:116-125
Le, Long V; Mohindra, Priya; Fang, Qizhi et al. (2018) Injectable hyaluronic acid based microrods provide local micromechanical and biochemical cues to attenuate cardiac fibrosis after myocardial infarction. Biomaterials 169:11-21
Mkrtschjan, Michael A; Gaikwad, Snehal B; Kappenman, Kevin J et al. (2018) Lipid signaling affects primary fibroblast collective migration and anchorage in response to stiffness and microtopography. J Cell Physiol 233:3672-3683
Yan, Jiajie; Thomson, Justin K; Zhao, Weiwei et al. (2018) Role of Stress Kinase JNK in Binge Alcohol-Evoked Atrial Arrhythmia. J Am Coll Cardiol 71:1459-1470
Bohlooli Ghashghaee, Nazanin; Li, King-Lun; Solaro, R John et al. (2018) Role of the C-terminus mobile domain of cardiac troponin I in the regulation of thin filament activation in skinned papillary muscle strips. Arch Biochem Biophys 648:27-35
Yan, Jiajie; Zhao, Weiwei; Thomson, Justin K et al. (2018) Stress Signaling JNK2 Crosstalk With CaMKII Underlies Enhanced Atrial Arrhythmogenesis. Circ Res 122:821-835
Ait Mou, Younss; Lacampagne, Alain; Irving, Thomas et al. (2018) Altered myofilament structure and function in dogs with Duchenne muscular dystrophy cardiomyopathy. J Mol Cell Cardiol 114:345-353
Ferrantini, Cecilia; Coppini, Raffaele; Pioner, Josè Manuel et al. (2017) Pathogenesis of Hypertrophic Cardiomyopathy is Mutation Rather Than Disease Specific: A Comparison of the Cardiac Troponin T E163R and R92Q Mouse Models. J Am Heart Assoc 6:
Alves, Marco L; Warren, Chad M; Simon, Jillian N et al. (2017) Early sensitization of myofilaments to Ca2+ prevents genetically linked dilated cardiomyopathy in mice. Cardiovasc Res 113:915-925
Zak, Taylor J; Koshman, Yevgenia E; Samarel, Allen M et al. (2017) Regulation of Focal Adhesion Kinase through a Direct Interaction with an Endogenous Inhibitor. Biochemistry 56:4722-4731

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