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Updated: Feb 12, 2026

An Antegrade Perfusion Method for Cardiomyocyte Isolation from Mice
Published on: May 19, 2021
Asxl2-/- Mice Exhibit De Novo Cardiomyocyte Production during Adulthood
Rachel Brunner1, Hsiao-Lei Lai2,3, Zane Deliu4
1Department of Biological Sciences, University of Illinois at Chicago, Chicago, IL 60607, USA. rbrunn2@uic.edu.
Insights
Loss of ASXL2 in adult hearts triggers non-cardiomyocytes to proliferate and differentiate into new heart muscle cells. This finding suggests potential epigenetic strategies for heart regeneration after myocardial infarction.
Area of Science:
- Cardiovascular Biology
- Epigenetics
- Regenerative Medicine
Background:
- Heart attacks cause cardiomyocyte death, leading to scar tissue formation and heart failure.
- The adult mammalian heart lacks effective cardiomyocyte regeneration mechanisms.
- ASXL2 is a chromatin factor implicated in cellular processes.
Purpose of the Study:
- To investigate the role of ASXL2 in cardiac repair and regeneration.
- To explore the potential of non-cardiomyocytes for cardiomyocyte production.
- To identify epigenetic regulators of cardiac regeneration.
Main Methods:
- Analysis of adult mouse hearts with ASXL2 deficiency (Asxl2 knockout).
- Assessment of non-cardiomyocyte proliferation using thymidine analog labeling and Ki67 staining.
- Evaluation of cardiogenic differentiation via NKX2-5 expression and EdU lineage tracing.
Main Results:
- Asxl2-deficient hearts showed increased proliferation of vimentin+ non-cardiomyocytes.
- A significant proportion of proliferating non-cardiomyocytes expressed the cardiogenic marker NKX2-5.
- Lineage tracing demonstrated differentiation of non-cardiomyocytes into mature cardiomyocytes in Asxl2-deficient hearts.
Conclusions:
- Loss of ASXL2 promotes de novo cardiomyocyte production from proliferative non-cardiomyocytes.
- An epigenetic barrier may restrict cardiogenicity in adult hearts.
- Targeting epigenetic activity offers a potential avenue for cardiac regenerative therapies.
Abstract:
Heart attacks affect more than seven million people worldwide each year. A heart attack, or myocardial infarction, may result in the death of a billion cardiomyocytes within hours. The adult mammalian heart does not have an effective mechanism to replace lost cardiomyocytes. Instead, lost muscle is replaced with scar tissue, which decreases blood pumping ability and leads to heart failure over time. Here, we report that the loss of the chromatin factor ASXL2 results in spontaneous proliferation and cardiogenic differentiation of a subset of interstitial non-cardiomyocytes. The adult Asxl2 heart displays spontaneous overgrowth without cardiomyocyte hypertrophy. Thymidine analog labeling and Ki67 staining of 12-week-old hearts revealed 3- and 5-fold increases of proliferation rate for vimentin⁺ non-cardiomyocytes in Asxl2 over age- and sex-matched wildtype controls, respectively. Approximately 10% of proliferating non-cardiomyocytes in the Asxl2 heart express the cardiogenic marker NKX2-5, a frequency that is ~7-fold higher than that observed in the wildtype. EdU lineage tracing experiments showed that ~6% of pulsed-labeled non-cardiomyocytes in Asxl2 hearts differentiate into mature cardiomyocytes after a four-week chase, a phenomenon not observed for similarly pulse-chased wildtype controls. Taken together, these data indicate de novo cardiomyocyte production in the Asxl2 heart due to activation of a population of proliferative cardiogenic non-cardiomyocytes. Our study suggests the existence of an epigenetic barrier to cardiogenicity in the adult heart and raises the intriguing possibility of unlocking regenerative potential via transient modulation of epigenetic activity.
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