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Isolation, Culture and Transduction of Adult Mouse Cardiomyocytes
Published on: August 28, 2016
Loss of Endogenously Cycling Adult Cardiomyocytes Worsens Myocardial Function
Leigh A Bradley1,2, Alexander Young1,2, Hongbin Li1,2
1Department of Medicine (L.A.B., A.Y., H.L., H.O.B., M.J.W.), University of Virginia, Charlottesville.
Insights
Adult cardiomyocytes that cycle after heart attack are scarce but vital for function. Ablating these cells worsened heart function after myocardial infarction (MI), proving their physiological relevance.
Area of Science:
- Cardiovascular Biology
- Regenerative Medicine
- Molecular Cardiology
Background:
- Adult cardiomyocytes typically do not divide after myocardial infarction (MI).
- A long-held assumption is that scarce cycling cardiomyocytes do not contribute to cardiac function.
- Lack of specific reporters has hindered testing the role of cycling adult cardiomyocytes.
Purpose of the Study:
- To develop a transgenic mouse model to specifically track and manipulate cycling adult cardiomyocytes.
- To investigate the functional contribution of endogenously cycling adult cardiomyocytes after ischemic-reperfusion (I/R) myocardial infarction (MI).
Main Methods:
- Created and validated the αMHC-MerDreMer-Ki67p-RoxedCre (αDKRC) transgenic mouse line.
- Utilized αDKRC mice to identify and track cycling cardiomyocytes post-MI using reporter genes (tdTomato, eGFP).
- Generated αDKRC::DTA mice to ablate cycling adult cardiomyocytes and assessed cardiac function after I/R MI.
Main Results:
- The αDKRC reporter system successfully identified cycling cardiomyocytes, with increased numbers observed after I/R MI, predominantly in border zones.
- Cycling cardiomyocytes showed a higher propensity for polyploidy than replication (≈9:1 ratio).
- Ablation of cycling adult cardiomyocytes in αDKRC::DTA mice led to worsened left ventricular chamber size and function post-I/R MI compared to controls.
Conclusions:
- Endogenously cycling adult cardiomyocytes, though scarce, play a significant role in maintaining myocardial function after injury.
- These findings challenge the traditional view and highlight the physiological relevance of cardiomyocyte cell cycling in cardiac repair.
Rationale:
Endogenously cycling adult cardiomyocytes increase after myocardial infarction (MI) but remain scarce and are generally thought not to contribute to myocardial function. However, this broadly held assumption has not been tested, mainly because of the lack of transgenic reporters that restrict Cre expression to adult cardiomyocytes that reenter the cell cycle.
Objective:
We created and validated a new transgenic mouse, αMHC (alpha myosin heavy chain)-MerDreMer-Ki67p-RoxedCre (denoted αDKRC [cardiomyocyte-specific αMHC-MerDreMer-Ki67p-RoxedCre]) that restricts Cre expression to cycling adult cardiomyocytes and uniquely integrates spatial and temporal adult cardiomyocyte cycling events based on the DNA specificities of orthologous Dre and Cre recombinases. We then created αDKRC::DTA mice that expressed an inducible diphtheria toxin in adult cycling cardiomyocytes and examined the effects of ablating these endogenously cycling cardiomyocytes on myocardial function after ischemic-reperfusion (I/R) MI.
Methods And Results:
A tandem αDKRC transgene was designed, validated in cultured cells, and used to make transgenic mice. The αDKRC transgene integrated between MYH6 and MYH7 and did not disrupt expression of the surrounding genes. Compared with controls, αDKRC::RLTG (Rox-Lox-tdTomato-eGFP) mice treated with Tamoxifen expressed tdTomato+ in cardiomyocytes with rare Bromodeoxyuridine+, eGFP+ cardiomyocytes, consistent with reentry of the cell cycle. We then pretreated αDKRC::RLTG mice with Tamoxifen to activate the reporter before sham or reperfusion (I/R) MI surgeries. Compared with Sham surgery, the I/R MI group had increased single and paired eGFP+ (enhanced green fluorescent protein)+ cardiomyocytes predominantly in the border zones (5.8±0.5 versus 3.3±0.3 cardiomyocytes per 10-micron section, N=8-9 mice per group, n=16-24 sections per mouse), indicative of cycled cardiomyocytes. The single to paired eGFP+ cardiomyocyte ratio was ≈9 to 1 (5.2±0.4 single versus 0.6±0.2 paired cardiomyocytes) in the I/R MI group after MI, suggesting that cycling cardiomyocytes were more likely to undergo polyploidy than replication. The ablation of endogenously cycling adult cardiomyocytes in αDKRC::DTA (diphtheria) mice caused progressive worsening left ventricular chamber size and function after I/R MI, compared with controls.
Conclusions:
Although scarce, endogenously cycling adult cardiomyocytes contribute to myocardial function after injury, suggesting that these cells may be physiologically relevant.
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