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Induction of cardiomyocyte proliferation and angiogenesis protects neonatal mice from pressure overload–associated maladaptation
Mona Malek Mohammadi, Aya Abouissa, Isyatul Azizah, Yinuo Xie, Julio Cordero, Amir Shirvani, Anna Gigina, Maren Engelhardt, Felix A. Trogisch, Robert Geffers, Gergana Dobreva, Johann Bauersachs, Joerg Heineke
Mona Malek Mohammadi, Aya Abouissa, Isyatul Azizah, Yinuo Xie, Julio Cordero, Amir Shirvani, Anna Gigina, Maren Engelhardt, Felix A. Trogisch, Robert Geffers, Gergana Dobreva, Johann Bauersachs, Joerg Heineke
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Research Article Cardiology

Induction of cardiomyocyte proliferation and angiogenesis protects neonatal mice from pressure overload–associated maladaptation

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Abstract

Cardiac pressure overload — for example, due to aortic stenosis — induces irreversible myocardial dysfunction, cardiomyocyte hypertrophy, and interstitial fibrosis in patients. In contrast with adult mice, neonatal mice can efficiently regenerate the heart after injury in the first week after birth. To decipher whether insufficient cardiac regeneration contributes to the progression of pressure overload–dependent disease, we established a transverse aortic constriction protocol in neonatal mice (nTAC). nTAC in the nonregenerative stage (at P7) induced cardiac dysfunction, myocardial fibrosis, and cardiomyocyte hypertrophy. In contrast, nTAC in the regenerative stage (at P1) largely prevented these maladaptive responses and was, in particular, associated with enhanced myocardial angiogenesis and increased cardiomyocyte proliferation, which both supported adaptation during nTAC. A comparative transcriptomic analysis between hearts after regenerative versus nonregenerative nTAC suggested the transcription factor GATA4 as master regulator of the regenerative gene program. Indeed, cardiomyocyte-specific deletion of GATA4 converted the regenerative nTAC into a nonregenerative, maladaptive response. Our new nTAC model can be used to identify mediators of adaptation during pressure overload and to discover potential therapeutic strategies.

Authors

Mona Malek Mohammadi, Aya Abouissa, Isyatul Azizah, Yinuo Xie, Julio Cordero, Amir Shirvani, Anna Gigina, Maren Engelhardt, Felix A. Trogisch, Robert Geffers, Gergana Dobreva, Johann Bauersachs, Joerg Heineke

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Figure 13

Angiogenesis and cardiomyocyte proliferation are not induced following nTAC in G4-KO mice.

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Angiogenesis and cardiomyocyte proliferation are not induced following n...
(A and B) Immunofluorescence stained heart sections for isolectin B4 (IB4), WGA,and DAPI (A) and quantification of the capillaries/cardiomyocyte ratio (B); n = 4 per group. Scale bar: 20 μm. **P < 0.005 (1-way ANOVA/Sidak’s multiple comparison’s test). (C) Immunofluorescence staining of heart sections for pH3, Troponin T, and DAPI. Arrows indicate pH3-positive cardiomyocytes. Inserts represent higher magnification of pH3 positive cardiomyocytes. (D) Quantification of pH3-positive cardiomyocytes; n = 4 per group. Scale bar: 20 μm. *P < 0.05, **P < 0.005 (1-way ANOVA/Sidak’s multiple comparison’s test). (E and F) Quantification of cytokinesis per cardiomyocyte; *P < 0.05 (Kruskal Wallis test/Dunn’s multiple comparison’s test) and of the cardiomyocyte cross-sectional area in the indicated mice; n = 4 per group. **P < 0.005, ***P < 0.001 (1-way ANOVA/Sidak’s multiple comparison’s test). (G) Quantification of nerve-covered area in G4-KO and control hearts after TAC and sham operation; n = 4 per group. *P < 0.05, **P < 0.005 (1-way ANOVA/Sidak’s multiple comparison’s test). Co, control; G4-KO, cardiomyocyte specific GATA4 KO mice (CM-G4-KO).

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