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Malat1 deficiency prevents neonatal heart regeneration by inducing cardiomyocyte binucleation
Galip S. Aslan, Nicolas Jaé, Yosif Manavski, Youssef Fouani, Mariana Shumliakivska, Lisa Kettenhausen, Luisa Kirchhof, Stefan Günther, Ariane Fischer, Guillermo Luxán, Stefanie Dimmeler
Galip S. Aslan, Nicolas Jaé, Yosif Manavski, Youssef Fouani, Mariana Shumliakivska, Lisa Kettenhausen, Luisa Kirchhof, Stefan Günther, Ariane Fischer, Guillermo Luxán, Stefanie Dimmeler
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Research Article Cardiology Cell biology

Malat1 deficiency prevents neonatal heart regeneration by inducing cardiomyocyte binucleation

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Abstract

The adult mammalian heart has limited regenerative capacity, while the neonatal heart fully regenerates during the first week of life. Postnatal regeneration is mainly driven by proliferation of preexisting cardiomyocytes and supported by proregenerative macrophages and angiogenesis. Although the process of regeneration has been well studied in the neonatal mouse, the molecular mechanisms that define the switch between regenerative and nonregenerative cardiomyocytes are not well understood. Here, using in vivo and in vitro approaches, we identified the lncRNA Malat1 as a key player in postnatal cardiac regeneration. Malat1 deletion prevented heart regeneration in mice after myocardial infarction on postnatal day 3 associated with a decline in cardiomyocyte proliferation and reparative angiogenesis. Interestingly, Malat1 deficiency increased cardiomyocyte binucleation even in the absence of cardiac injury. Cardiomyocyte-specific deletion of Malat1 was sufficient to block regeneration, supporting a critical role of Malat1 in regulating cardiomyocyte proliferation and binucleation, a landmark of mature nonregenerative cardiomyocytes. In vitro, Malat1 deficiency induced binucleation and the expression of a maturation gene program. Finally, the loss of hnRNP U, an interaction partner of Malat1, induced similar features in vitro, suggesting that Malat1 regulates cardiomyocyte proliferation and binucleation by hnRNP U to control the regenerative window in the heart.

Authors

Galip S. Aslan, Nicolas Jaé, Yosif Manavski, Youssef Fouani, Mariana Shumliakivska, Lisa Kettenhausen, Luisa Kirchhof, Stefan Günther, Ariane Fischer, Guillermo Luxán, Stefanie Dimmeler

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Figure 4

Cardiomyocyte-specific deletion of Malat1 abolishes cardiac regeneration and induces cardiomyocyte binucleation.

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Cardiomyocyte-specific deletion of Malat1 abolishes cardiac regeneration...
(A) Representative images of RNAscope in situ hybridization. Arrowheads indicate Malat1 transcripts in neonatal cardiomyocytes (α-Actinin+). (B) RT-qPCR–based detection of Malat1 levels in control and Malat1ΔCM cardiomyocytes (CMs) on P3. (C) Representative immunofluorescence images of isolated cardiomyocytes (cTnT+ cells) from control and Malat1ΔCM mice on P3. Arrowheads indicate binucleated cardiomyocytes. (D) Quantification of binucleated cardiomyocytes on P3. n = 3 for control and n = 5 for Malat1ΔCM. (E) Schematic of MI experiment in neonatal mice. (F) Representative histology images of Sirius red staining 21 days after MI. Arrowheads indicate persistent scarring. (G) Quantification of scarring. n = 5 for control and n = 7 for Malat1ΔCM. (H) Representative images of echocardiography analysis of the hearts in parasternal long axis. (I) Quantification of the left ventricular ejection fraction. n = 5 for control and n = 6 for Malat1ΔCM. Scale bars: 5 μm (A), 50 μm (C), and 2 mm (H). Data are shown as mean ± SEM. P values were calculated by unpaired, 2-tailed Student’s t test with Welch’s correction (B) or unpaired, 2-tailed Student’s t test (D, G, and I).

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