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Isolation and Purification of Murine Cardiac Pericytes
Published on: August 16, 2019
Concise Review: The Regenerative Journey of Pericytes Toward Clinical Translation
William Cathery1, Ashton Faulkner1, Davide Maselli2
1Experimental Cardiovascular Medicine, University of Bristol, Bristol Heart Institute, Bristol Royal Infirmary, Bristol, United Kingdom.
Insights
Pericytes, a type of cell found in blood vessels, show promise for treating heart disease. These cells are being explored for regenerative therapy to improve outcomes for patients with severe coronary artery disease.
Area of Science:
- Regenerative Medicine
- Cardiovascular Research
- Cell-based Therapy
Background:
- Coronary artery disease (CAD) remains a leading cause of death globally.
- Improved treatments reduce mortality but increase long-term complications and hospitalizations.
- Severe, non-revascularizable CAD patients have limited options, often awaiting scarce heart transplants.
Purpose of the Study:
- To review the rationale and progress of pericyte-based cell therapy for CAD.
- To explore pericytes as a potential alternative treatment for myocardial ischemia.
- To discuss the clinical translation and standardization of pericyte manufacturing.
Main Methods:
- Literature review summarizing preclinical and clinical evidence for pericyte therapy.
- Discussion of pericyte sources, including surgical tissue leftovers.
- Analysis of preclinical animal models of myocardial ischemia (MI).
Main Results:
- Pericytes exhibit therapeutic potential due to their role in angiogenesis, vessel stabilization, and differentiation.
- Their robustness to hypoxia makes them suitable for ischemic environments.
- Early studies and preclinical models suggest efficacy in treating MI.
Conclusions:
- Pericytes represent a promising cell source for regenerative therapy in CAD.
- Harvesting from cardiovascular surgery leftovers offers a viable source.
- Standardization of cell production protocols is crucial for successful clinical translation.
Abstract:
Coronary artery disease (CAD) is the single leading cause of death worldwide. Advances in treatment and management have significantly improved patient outcomes. On the other hand, although mortality rates have decreased, more people are left with sequelae that require additional treatment and hospitalization. Moreover, patients with severe nonrevascularizable CAD remain with only the option of heart transplantation, which is limited by the shortage of suitable donors. In recent years, cell-based regenerative therapy has emerged as a possible alternative treatment, with several regenerative medicinal products already in the clinical phase of development and others emerging as competitive preclinical solutions. Recent evidence indicates that pericytes, the mural cells of blood microvessels, represent a promising therapeutic candidate. Pericytes are abundant in the human body, play an active role in angiogenesis, vessel stabilization and blood flow regulation, and possess the capacity to differentiate into multiple cells of the mesenchymal lineage. Moreover, early studies suggest a robustness to hypoxic insult, making them uniquely equipped to withstand the ischemic microenvironment. This review summarizes the rationale behind pericyte-based cell therapy and the progress that has been made toward its clinical application. We present the different sources of pericytes and the case for harvesting them from tissue leftovers of cardiovascular surgery. We also discuss the healing potential of pericytes in preclinical animal models of myocardial ischemia (MI) and current practices to upgrade the production protocol for translation to the clinic. Standardization of these procedures is of utmost importance, as lack of uniformity in cell manufacturing may influence clinical outcome. Stem Cells 2018;36:1295-1310.
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