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Kao, K. Y.

Publications and source records attributed to Kao, K. Y..

2 recordsLinked to original sources

The Dilated Cardiomyopathy E525K β-Myosin Mutation Causes Hypocontractility in Cardiomyocytes Without Altering Crossbridge Cycling

The cardiac {beta}-myosin (MYH7) mutation E525K was identified in 2012 in a patient with dilated cardiomyopathy (DCM). Work using engineered constructs has shown that this mutation stabilizes the interacting heads motif (IHM) of myosin and increases the ATPase activity of mutant motor S1 heads. However, no measurements have been made in myofilaments or cardiomyocytes to determine its effect on contractile function. Here, we present force and contractile kinetics measurements from induced pluripotent stem cell-derived cardiomyocytes (iPSC-CMs) engineered for heterozygous expression of E525K. Single-cell contraction for E525K hiPSC-CMs decreased by 65%, and isometric twitch force in engineered heart tissues (EHTs) decreased by 39%. In contrast, maximal Ca2+ activated isometric force in isolated myofibrils increased by 45% and sub-maximal Ca2+ activated force was similar to WT myofibrils. Structural analysis revealed reduced myofibril content (13.7% decrease) and decreased organization (increased z-disk dispersion angle) in E525K cells. We confirmed that E525K S1 myosin has higher actin affinity than WT S1 and elevated ATPase activity. However, there was no change in S1 ADP release rate. There was also no change in either the rate of force development or relaxation in myofibrils, cells, or EHTs. These findings suggest that E525K myosin crossbridge cycling is not altered during loaded contractions. To understand how twitch force of myocytes was reduced but maximal isometric force was increased, we used a spatially explicit sarcomere model. The results were explained by changing three rates: reduced recruitment from the OFF/IHM state, and increased rates of actin binding and Pi release. Additional force deficits in cells and EHTs likely result from the myofibrillar disorganization. This study demonstrates the value of multi-scale analysis and coupled, computational modeling to understand the molecular mechanisms of sarcomere mutations in cardiomyocytes. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=82 SRC="FIGDIR/small/733270v2_ufig1.gif" ALT="Figure 1"> View larger version (29K): org.highwire.dtl.DTLVardef@1a64b4aorg.highwire.dtl.DTLVardef@98f053org.highwire.dtl.DTLVardef@c9f839org.highwire.dtl.DTLVardef@1c795c6_HPS_FORMAT_FIGEXP M_FIG C_FIG A model for how the E525K mutation impacts contracting myofibrils Here, we show that the E525K mutation impacts contraction in multiple ways: (1) Decreased sarcomere organization in cells and tissues drives decreased force generation. (2) Increased binding affinity of E525K myosin for actin and faster Pi release contributes to increased force generation in isolated myofibrils. (3) Increased IHM stability reduces twitch force. (4) The rate-limiting step of loaded crossbridge cycling, ADP release, is unchanged by the E525K mutation, and the rates of loaded contraction and relaxation are unchanged at all scales of contraction.

biophysics↗

The G256E HCM mutation prolongs relaxation via altered nucleotide handling

Mutations in myosin alter its motor functions in diverse ways by affecting different structural and chemo-mechanical events. Multidisciplinary strategies can be used to understand how varying alterations in motor function converge to common phenotypes like hypercontractility and hypertrophic cardiomyopathy (HCM). Here, we combined molecular dynamics (MD) simulations with protein biochemical and myofibril mechanical analyses to study the HCM-causing myosin variant G256E. MD simulations demonstrated that G256E induces structural changes that increase the work required to displace ADP.Mg2+ from actomysoin complex. Stopped-flow biochemical analysis demonstrated increased ADP affinity for actomyosin and single myofibril mechanics analysis demonstrated increased force generation and reduced ADP sensitivity of the early, slow phase of relaxation. Together, these results demonstrate that slower ADP release from myosin during contraction is a significant contributor to pathological contractile nature of the G256E mutation. This study highlights the importance of detailed chemo-mechanical analysis of mutations associated with hereditary cardiac diseases.

biophysics↗