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Updated: Jun 17, 2026

Generation and Expansion of Human Cardiomyocytes from Patient Peripheral Blood Mononuclear Cells
Published on: February 12, 2021
Cardiac progenitor cell cycling stimulated by pim-1 kinase
Christopher T Cottage1, Brandi Bailey, Kimberlee M Fischer
1San Diego State Heart Institute, San Diego State University, 5500 Campanile Dr, San Diego, CA 92182, USA.
Rationale:
Cardioprotective effects of Pim-1 kinase have been previously reported but the underlying mechanistic basis may involve a combination of cellular and molecular mechanisms that remain unresolved. The elucidation of the mechanistic basis for Pim-1 mediated cardioprotection provides important insights for designing therapeutic interventional strategies to treat heart disease.
Objective:
Effects of cardiac-specific Pim-1 kinase expression on the cardiac progenitor cell (CPC) population were examined to determine whether Pim-1 mediates beneficial effects through augmenting CPC activity.
Methods And Results:
Transgenic mice created with cardiac-specific Pim-1 overexpression (Pim-wt) exhibit enhanced Pim-1 expression in both cardiomyocytes and CPCs, both of which show increased proliferative activity assessed using 5-bromodeoxyuridine (BrdU), Ki-67, and c-Myc relative to nontransgenic controls. However, the total number of CPCs was not increased in the Pim-wt hearts during normal postnatal growth or after infarction challenge. These results suggest that Pim-1 overexpression leads to asymmetric division resulting in maintenance of the CPC population. Localization and quantitation of cell fate determinants Numb and alpha-adaptin by confocal microscopy were used to assess frequency of asymmetric division in the CPC population. Polarization of Numb in mitotic phospho-histone positive cells demonstrates asymmetric division in 65% of the CPC population in hearts of Pim-wt mice versus 26% in nontransgenic hearts after infarction challenge. Similarly, Pim-wt hearts had fewer cells with uniform alpha-adaptin staining indicative of symmetrically dividing CPCs, with 36% of the CPCs versus 73% in nontransgenic sections.
Conclusions:
These findings define a mechanistic basis for enhanced myocardial regeneration in transgenic mice overexpressing Pim-1 kinase.
Insights
Overexpressing Pim-1 kinase in the heart promotes asymmetric cell division in cardiac progenitor cells (CPCs), enhancing myocardial regeneration without increasing CPC numbers. This clarifies Pim-1
Area of Science:
- Cardiovascular Biology
- Stem Cell Biology
- Molecular Cardiology
Background:
- Pim-1 kinase is known for cardioprotective effects, but its precise mechanisms are not fully understood.
- Elucidating Pim-1's role is crucial for developing new heart disease therapies.
Purpose of the Study:
- To investigate if cardiac-specific Pim-1 kinase expression enhances cardiac progenitor cell (CPC) activity.
- To determine the role of Pim-1 in mediating beneficial effects on the CPC population.
Main Methods:
- Cardiac-specific Pim-1 overexpression in transgenic mice (Pim-wt).
- Assessment of CPC proliferative activity using BrdU, Ki-67, and c-Myc.
- Confocal microscopy to quantify cell fate determinants Numb and alpha-adaptin for asymmetric division analysis.
Main Results:
- Pim-wt mice showed increased CPC and cardiomyocyte proliferation but no increase in total CPC numbers.
- Pim-1 overexpression induced asymmetric division in CPCs, evidenced by Numb polarization.
- Asymmetric division frequency increased significantly in Pim-wt hearts post-infarction compared to controls.
Conclusions:
- Pim-1 kinase promotes myocardial regeneration through asymmetric division of CPCs.
- This study defines a key mechanism for Pim-1 mediated cardioprotection and cardiac repair.
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