Calcium-independent negative inotropy by β-myosin heavy chain gene transfer in cardiac myocytes

被引:42
作者
Herron, Todd J.
Vandenboom, Rene
Fomicheva, Ekaterina
Mundada, Lakshmi
Edwards, Terri
Metzger, Joseph M.
机构
[1] Univ Michigan, Dept Mol & Integrat Physiol, Ann Arbor, MI 48109 USA
[2] Univ Michigan, Dept Internal Med Cardiol, Ann Arbor, MI 48109 USA
关键词
adenovirus; contractility; gene transfer; intracellular calcium; muscle contraction; myosin; ventricular myocytes;
D O I
10.1161/01.RES.0000264102.00706.4e
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Increased relative expression of the slow molecular motor of the heart (beta-myosin heavy chain [MyHC]) is well known to occur in many rodent models of cardiovascular disease and in human heart failure. The direct effect of increased relative beta-MyHC expression on intact cardiac myocyte contractility, however, is unclear. To determine the direct effects of increased relative beta-MyHC expression on cardiac contractility, we used acute genetic engineering with a recombinant adenoviral vector (AdMYH7) to genetically titrate beta-MyHC protein expression in isolated rodent ventricular cardiac myocytes that predominantly expressed alpha-MyHC ( fast molecular motor). AdMYH7-directed beta-MyHC protein expression and sarcomeric incorporation was observed as soon as 1 day after gene transfer. Effects of beta-MyHC expression on myocyte contractility were determined in electrically paced single myocytes (0.2 Hz, 37 degrees C) by measuring sarcomere shortening and intracellular calcium cycling. Gene transfer-based replacement of alpha-MyHC with beta-MyHC attenuated contractility in a dose-dependent manner, whereas calcium transients were unaffected. For example, when beta-MyHC expression accounted for approximate to 18% of the total sarcomeric myosin, the amplitude of sarcomere-length shortening (nanometers, nm) was depressed by 42% (151.0 +/- 10.7 [ control] versus 87.0 +/- 5.4 nm [ AdMYH7 transduced]); and genetic titration of beta-MyHC, leading to 38% beta-MyHC content, attenuated shortening by 57% (138.9 +/- 13.0 versus 59.7 +/- 7.1 nm). Maximal isometric cross-bridge cycling rate was also slower in AdMYH7-transduced myocytes. Results indicate that small increases of beta-MyHC expression ( 18%) have Ca2+ transient-independent physiologically relevant effects to decrease intact cardiac myocyte function. We conclude that beta-MyHC is a negative inotrope among the cardiac myofilament proteins.
引用
收藏
页码:1182 / 1190
页数:9
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