Mechanical forces are able to activate hypertrophic growth of cardiomyocytes in the overloaded myocardium. However, the transcriptional profiles triggered by mechanical stretch in cardiac myocytes are not fully understood. Here, we performed the first genome-wide time series study of gene expression changes in stretched cultured neonatal rat ventricular myocytes (NRVM)s, resulting in 205, 579, 737, 621, and 1542 differentially expressed (> 2-fold, P < 0.05) genes in response to 1, 4, 12, 24, and 48 hours of cyclic mechanical stretch. We used Ingenuity Pathway Analysis to predict functional pathways and upstream regulators of differentially expressed genes in order to identify regulatory networks that may lead to mechanical stretch induced h...
Cells such as myocytes and adventitial fibroblasts are responsive to mechanical cues in their local ...
Objective: We have previously reported that myocyte enhancer factor-2 (MEF2) transcription factors a...
Cardiac hypertrophy accompanies many forms of cardiovascular diseases. The mechanisms behind the dev...
Mechanical forces are able to activate hypertrophic growth of cardiomyocytes in the overloaded myoca...
Cardiac myocytes are striated muscle cells with myofilaments running along their length and Z-discs ...
MicroRNA-208a (miR208a) and mechanical stress play a key role in cardiac hypertrophy. The relationsh...
Background/PurposeMicroRNA-208a (miR208a) and mechanical stress play a key role in cardiac hypertrop...
Abstract—Biomechanical stress ie, attributable to pressure overload, leads to cardiac hypertrophy an...
MicroRNAs (miRNAs) are a recently discovered class of ∼22-nucleotide regulatory RNAs that post-trans...
Abstract Cardiac hypertrophy provides an adaptive mechanism to maintain cardiac output in response t...
Pathological cardiac hypertrophy and fibrosis are modulated by a set of microRNAs, most of which hav...
Abstract During cardiac hypertrophy individual cardiac myocytes increase in size, which is accompani...
During life, the heart is exposed to different types of stresses. In response to changing demands or...
Mechanical stretch leads to cardiac hypertrophy and may ultimately cause heart failure. However, the...
Objectives: Myostatin, a negative regulator of muscle growth, is increased in hypertrophied and infa...
Cells such as myocytes and adventitial fibroblasts are responsive to mechanical cues in their local ...
Objective: We have previously reported that myocyte enhancer factor-2 (MEF2) transcription factors a...
Cardiac hypertrophy accompanies many forms of cardiovascular diseases. The mechanisms behind the dev...
Mechanical forces are able to activate hypertrophic growth of cardiomyocytes in the overloaded myoca...
Cardiac myocytes are striated muscle cells with myofilaments running along their length and Z-discs ...
MicroRNA-208a (miR208a) and mechanical stress play a key role in cardiac hypertrophy. The relationsh...
Background/PurposeMicroRNA-208a (miR208a) and mechanical stress play a key role in cardiac hypertrop...
Abstract—Biomechanical stress ie, attributable to pressure overload, leads to cardiac hypertrophy an...
MicroRNAs (miRNAs) are a recently discovered class of ∼22-nucleotide regulatory RNAs that post-trans...
Abstract Cardiac hypertrophy provides an adaptive mechanism to maintain cardiac output in response t...
Pathological cardiac hypertrophy and fibrosis are modulated by a set of microRNAs, most of which hav...
Abstract During cardiac hypertrophy individual cardiac myocytes increase in size, which is accompani...
During life, the heart is exposed to different types of stresses. In response to changing demands or...
Mechanical stretch leads to cardiac hypertrophy and may ultimately cause heart failure. However, the...
Objectives: Myostatin, a negative regulator of muscle growth, is increased in hypertrophied and infa...
Cells such as myocytes and adventitial fibroblasts are responsive to mechanical cues in their local ...
Objective: We have previously reported that myocyte enhancer factor-2 (MEF2) transcription factors a...
Cardiac hypertrophy accompanies many forms of cardiovascular diseases. The mechanisms behind the dev...