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Murine Short Axis Ventricular Heart Slices for Electrophysiological Studies
Published on: June 4, 2017
SMAD proteins are involved in apoptosis induction in ventricular cardiomyocytes
Daniela Schneiders1, Jacqueline Heger, Patrick Best
1Institute of Physiology, Justus-Liebig-University, Aulweg 129 D-35392, Giessen, Germany.
Insights
Activating transcription factor 1 (AP-1) and SMAD proteins mediate cardiomyocyte apoptosis. SMAD proteins are crucial for AP-1-induced apoptosis but not for hypertrophic growth, suggesting they shift AP-1 signaling.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Cell Signaling
Background:
- The transcription factor AP-1 regulates cardiomyocyte hypertrophy and apoptosis, processes critical in heart failure.
- Understanding AP-1's diverse roles requires investigating its composition and interactions with other transcription factors.
Purpose of the Study:
- To investigate the role of AP-1 composition and interacting factors in cardiomyocyte hypertrophy and apoptosis.
- To determine if SMAD proteins influence AP-1's function in cardiomyocytes.
Main Methods:
- Isolated rat ventricular cardiomyocytes were subjected to hypertrophy- and apoptosis-inducing stimuli.
- AP-1 complex composition was analyzed under different conditions.
- SMAD protein activity was assessed, and its role in apoptosis was investigated using decoy oligonucleotides and antisense inhibition.
Main Results:
- Both pro-apoptotic (SNAP) and pro-hypertrophic (PE) stimuli activated AP-1 with identical components (c-Jun, JunB, FosB).
- SMAD activity was specifically induced by the pro-apoptotic stimulus SNAP and was essential for SNAP-induced apoptosis.
- SMAD proteins were dispensable for AP-1-mediated hypertrophic growth.
Conclusions:
- AP-1/SMAD signaling is a common pathway for cardiomyocyte apoptosis.
- SMAD proteins act as key regulators, shifting AP-1 signaling from hypertrophy towards apoptosis.
Objective:
The transcription factor AP-1 is a mediator of hypertrophic growth and apoptosis in cardiomyocytes. This puts AP-1 in the center of two important processes found in the failing heart and implies that variations (i) in the AP-1 composition itself or (ii) in additional, interacting transcription factors are responsible for the diverse actions of AP-1. To test this hypothesis, we performed studies on isolated ventricular cardiomyocytes of rat under hypertrophy- or apoptosis-inducing conditions.
Methods And Results:
The NO donor SNAP (100 microM), which is a pro-apoptotic stimulus in cardiomyocytes, activated AP-1 within 2 h. c-Jun, JunB and FosB are identified as the main components of this AP-1 complex. This complex formation is identical to the composition of AP-1 found under hypertrophic growth stimulation by phenylephrine (PE, 10 muM). Analysis of other transcription factors able to interact with AP-1 revealed activation of SMAD activity only during stimulation with SNAP to 131+/-9.6% (p < 0.05 vs. control, n = 9). The SMAD complex is formed from SMAD4 and 3. Intracellular scavenging of SMAD proteins by transformation of cardiomyocytes with SMAD decoy oligonucleotides or inhibition of SMAD4 synthesis using SMAD4 antisense oligonucleotides reduced the number of apoptotic cells under stimulation with SNAP from 13.3 +/- 1.2% to control levels (8 +/- 1%, p < 0.05, n = 6). TGFbeta, which is a known stimulator of SMAD proteins, is also shown to stimulate apoptosis in cardiomyocytes. Again, simultaneous activation of AP-1 and SMAD is needed for this apoptosis induction.
Conclusions:
In conclusion, AP-1/SMAD signaling has been identified as a common pathway in cardiomyocyte apoptosis. In contrast, SMAD proteins are dispensable for AP-1-mediated hypertrophic growth. This finding characterizes SMAD proteins as potential candidates for proteins that shift AP-1 signaling from hypertrophy to apoptosis.
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