Related Experiment Video
Updated: Jan 5, 2026

Isolation of Cardiomyocytes from Fixed Hearts for Immunocytochemistry and Ploidy Analysis
Published on: October 7, 2020
Isolation of Cardiomyocytes Undergoing Mitosis With Complete Cytokinesis
Hsiao-Yun Y Milliron1, Matthew J Weiland1, Eric J Kort1,2
1From the DeVos Cardiovascular Program, Van Andel Research Institute and Fredrik Meijer Heart and Vascular Institute/Spectrum Health, Grand Rapids, MI (H.Y.M., M.J.W., E.J.K., S.J.).
Insights
Researchers developed a new method using molecular beacons to identify and isolate dividing human cardiomyocytes, crucial for understanding heart tissue regeneration. This technique distinguishes cells undergoing true cell division from those failing cytokinesis, enabling further study of cardiomyocyte cell cycle dynamics.
Area of Science:
- Cardiovascular Biology
- Cellular and Molecular Medicine
- Stem Cell Biology
Background:
- Adult human cardiomyocytes typically do not complete cytokinesis, leading to polyploidy and multinucleation.
- Existing methods for cell cycle analysis cannot differentiate between cardiomyocytes that fail cytokinesis and those that truly divide.
- A technique to isolate dividing cardiomyocytes is essential for studying heart development and regeneration.
Purpose of the Study:
- To develop and validate a method for identifying and isolating human cardiomyocytes that successfully complete cell division (cytokinesis).
- To distinguish truly proliferative cardiomyocytes from those that undergo DNA replication but fail to divide.
- To enable deeper investigation into the mechanisms of cardiomyocyte cell cycle progression and cytokinesis.
Main Methods:
- Utilized molecular beacons (MBs) targeting specific mRNAs to identify proliferative cardiomyocyte populations.
- Employed fluorescence-activated cell sorting (FACS) in combination with MBs to isolate mitotic cardiomyocytes.
- Confirmed cell cycle gene expression via reverse transcription-quantitative polymerase chain reaction and single-cell RNA sequencing (scRNA-seq).
Main Results:
- MB-positive cardiomyocyte populations demonstrated a proliferative advantage compared to MB-negative and G2/M populations.
- Gene expression analysis of MB-positive cells indicated successful nuclear division and progression through mitosis.
- Dual MBs targeting CDC20 and SPG20 mRNAs effectively enriched for cytokinetic events (CDC20highSPG20high).
Conclusions:
- A novel method using MBs and FACS allows for the sorting of live cardiomyocytes undergoing cytokinesis, overcoming limitations of DNA content-based methods.
- This technique provides a valuable tool for studying cardiomyocyte nuclear dynamics during mitosis.
- The developed method serves as a foundation for future research into heart tissue development and regeneration mechanisms.
Rationale:
Adult human cardiomyocytes do not complete cytokinesis despite passing through the S-phase of the cell cycle. As a result, polyploidization and multinucleation occur. To get a deeper understanding of the mechanisms surrounding division of cardiomyocytes, there is a crucial need for a technique to isolate cardiomyocytes that complete cell division/cytokinesis.
Objective:
Markers of cell cycle progression based on DNA content cannot distinguish between mitotic cardiomyocytes that fail to complete cytokinesis from those cells that undergo true cell division. With the use of molecular beacons (MBs) targeting specific mRNAs, we aimed to identify truly proliferative cardiomyocytes derived from human induced pluripotent stem cells.
Methods And Results:
Fluorescence-activated cell sorting combined with MBs was performed to sort cardiomyocyte populations enriched for mitotic cells. Expressions of cell cycle specific genes were confirmed by means of reverse transcription-quantitative polymerase chain reaction and single-cell RNA sequencing (scRNA-seq) combined with gene signatures of cell cycle progression. We characterized the sorted groups by proliferation assays and time-lapse microscopy which confirmed the proliferative advantage of MB-positive cell populations relative to MB-negative and G2/M populations. Gene expression analysis revealed that the MB-positive cardiomyocyte subpopulation exhibited patterns consistent with the processes of nuclear division, chromosome segregation, and transition from M to G1 phase. The use of dual-MBs targeting CDC20 and SPG20 mRNAs enabled the enrichment of cytokinetic events (CDC20highSPG20high). Interestingly, cells that did not complete cytokinesis and remained binucleated were found to be CDC20lowSPG20high while polyploid cardiomyocytes that replicated DNA but failed to complete karyokinesis were found to be CDC20lowSPG20low.
Conclusions:
This study demonstrates a novel alternative to existing DNA content-based approaches for sorting cardiomyocytes with true mitotic potential that can be used to study the unique dynamics of cardiomyocyte nuclei during mitosis. Our technique for sorting live cardiomyocytes undergoing cytokinesis would provide a basis for future studies to uncover mechanisms underlying the development and regeneration of heart tissue.
Related Concept Videos
Mitosis and Cytokinesis
The processes of the cell cycle occur over approximately 24 hours (in typical human cells) and in two major distinguishable stages. The...
Mitosis and Cytokinesis
The processes of the cell cycle occur over approximately 24 hours (in typical human cells) and in two major distinguishable stages. The...

