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Identification and antisense inhibition of a renin-angiotensin system in transgenic cardiomyocytes
J L Cook1, S Bhandaru, J F Giardina
1Division of Research, Alton Ochsner Medical Foundation, New Orleans, Louisiana, USA.
Abstract:
Cardiac myocytes (AT-1 cells) derived from heart tumors of mice transgenic for an atrial natriuretic factor promoter, SV40 large T-antigen DNA transgene, demonstrate properties consistent with normal cardiac myocytes but retain the capacity to proliferate in culture. We studied the renin-angiotensin system (RAS) and related growth regulation of these cells because AT-1 cells (or transgenically similar cells) may be useful to repair injured myocardium. This study reveals two separate and distinct findings: 1) AT-1 cells proliferate or hypertrophy in response to angiotensin II (ANG II), depending on their competence to proceed through the cell cycle; and 2) AT-1 cells possess components of a RAS, and angiotensinogen antisense experiments suggest that the RAS is functional in these cells. Specifically, AT-1 cells proliferate in response to ANG II in low-serum medium but hypertrophy in response to ANG II when first treated with mitomycin C (at a concentration that inhibits DNA replication but is not cytotoxic). The ANG II-mediated proliferative and hypertrophic responses are inhibited by DuP 753. In addition, there is a significant increase in the protein-to-DNA ratio of cells, which are proliferation-inhibited in the absence of ANG II treatment (20%, P < 0.05). DuP 753 also inhibits this hypertrophy, suggesting that these cells possess a functional RAS. AT-1 cells contain mRNAs for angiotensin-converting enzyme, renin, angiotensinogen, and the AT1 receptor as determined by sequence analysis of polymerase chain reaction amplification products. Antisense oligonucleotides complementary to the angiotensinogen mRNA specifically inhibit angiotensinogen mRNA accumulation and proliferation of AT-1 cells. In summary, these cells contain a growth-regulating RAS, suggesting that such a system may play a significant role in left ventricular hypertrophy.
Insights
Cardiac tumor cells (AT-1) respond to angiotensin II (ANG II) with proliferation or hypertrophy. These cells have a functional renin-angiotensin system (RAS), suggesting its role in heart growth.
Area of Science:
- Cardiovascular Biology
- Cellular Growth Regulation
- Molecular Cardiology
Background:
- Cardiac myocytes (AT-1 cells) from transgenic mice exhibit normal myocyte properties but retain proliferative capacity.
- Understanding the renin-angiotensin system (RAS) in these cells is crucial for potential myocardial repair applications.
Purpose of the Study:
- To investigate the effects of angiotensin II (ANG II) on AT-1 cell proliferation and hypertrophy.
- To determine the presence and functionality of the renin-angiotensin system (RAS) within AT-1 cells.
Main Methods:
- AT-1 cells were cultured in varying serum conditions and treated with mitomycin C to assess cell cycle effects.
- Angiotensin II (ANG II) and DuP 753 (an AT1 receptor antagonist) were used to study cellular responses.
- Messenger RNA (mRNA) expression for RAS components was analyzed using polymerase chain reaction (PCR).
- Antisense oligonucleotides targeting angiotensinogen mRNA were employed to assess RAS functionality.
Main Results:
- AT-1 cells proliferated in response to ANG II in low-serum conditions and hypertrophied when DNA replication was inhibited.
- Both proliferative and hypertrophic responses to ANG II were blocked by DuP 753.
- A significant increase in protein-to-DNA ratio (hypertrophy) occurred even without ANG II, and was also inhibited by DuP 753.
- AT-1 cells expressed mRNAs for angiotensin-converting enzyme, renin, angiotensinogen, and the AT1 receptor.
- Antisense inhibition of angiotensinogen mRNA reduced both mRNA levels and cell proliferation.
Conclusions:
- AT-1 cells possess a functional, growth-regulating renin-angiotensin system (RAS).
- ANG II modulates AT-1 cell growth through proliferation or hypertrophy, dependent on cell cycle progression.
- The findings suggest a significant role for the RAS in regulating left ventricular hypertrophy.