Remodeling the Cardiac Sarcomere Using Transgenesis
- 1 March 2000
- journal article
- review article
- Published by Annual Reviews in Annual Review of Physiology
- Vol. 62 (1) , 261-287
- https://doi.org/10.1146/annurev.physiol.62.1.261
Abstract
▪ Abstract An underpinning of basic physiology and clinical medicine is that specific protein complements underlie cell and organ function. In the heart, contractile protein changes correlating with functional alterations occur during both normal development and the development of numerous pathologies. What has been lacking for the majority of these observations is an extension of correlation to causative proof. More specifically, different congenital heart diseases are characterized by shifts in the motor proteins, and the genetic etiologies of a number of different dilated and hypertrophic cardiomyopathies have been established as residing at loci encoding the contractile proteins. To establish cause, or to understand development of the pathophysiology over an animal’s life span, it is necessary to direct the heart to synthesize, in the absence of other pleiotropic changes, the candidate protein. Subsequently one can determine whether or how the protein’s presence causes the effects either directly or indirectly. By affecting the heart’s protein complement in a defined manner, the potential to establish the function of different proteins and protein isoforms exists. Transgenesis provides a means of stably modifying the mammalian genome. By directing expression of engineered proteins to the heart, cardiac contractile protein profiles can be effectively remodeled and the resultant animal used to study the consequences of a single, genetic manipulation at the molecular, biochemical, cytological, and physiological levels.Keywords
This publication has 92 references indexed in Scilit:
- ENDOTHELIAL CELL REGULATION OF CONTRACTILITY OF THE HEARTAnnual Review of Physiology, 1997
- The Active Site of MyosinAnnual Review of Physiology, 1996
- Molecular and Physiological Effects of Overexpressing Striated Muscle β-Tropomyosin in the Adult Murine HeartJournal of Biological Chemistry, 1995
- Requirement of pointed-end capping by tropomodulin to maintain actin filament length in embryonic chick cardiac myocytesNature, 1995
- Mechanisms of thin filament assembly in embryonic chick cardiac myocytes: tropomodulin requires tropomyosin for assembly.The Journal of cell biology, 1995
- Transformation of Drosophila melanogaster with the wild-type myosin heavy-chain gene: rescue of mutant phenotypes and analysis of defects caused by overexpression.The Journal of cell biology, 1994
- Structure of the regulatory domain of scallop myosin at 2.8 Ä resolutionNature, 1994
- Targeting gene expression to specific cardiovascular cell types in transgenic mice.Hypertension, 1993
- Development and Progression of Left Ventricular Hypertrophy in Children with Hypertrophic CardiomyopathyNew England Journal of Medicine, 1986
- Chordate muscle actins differ distinctly from invertebrate muscle actinsJournal of Molecular Biology, 1984