Related Experiment Video
Updated: Jul 1, 2026

A High Output Method to Isolate Cerebral Pericytes from Mouse
Published on: January 14, 2020
Isolation and characterization of mesoangioblasts from mouse, dog, and human tissues
Rossana Tonlorenzi1, Arianna Dellavalle, Esther Schnapp
1Stem Cell Research Institute, San Raffaele Scientific Institute, Milan, Italy.
Abstract:
Mesoangioblasts are recently identified stem/progenitor cells, associated with small vessels of the mesoderm in mammals. Originally described in the mouse embryonic dorsal aorta, similar though not identical cells have been later identified and characterized from postnatal small vessels of skeletal muscle and heart (not described in this unit). They have in common the anatomical location, the expression of endothelial and/or pericyte markers, the ability to proliferate in culture, and the ability to undergo differentiation into various types of mesoderm cells upon proper culture conditions. Currently, the developmental origin of mesoangioblasts, their phenotypic heterogeneity, and the relationship with other mesoderm stem cells are not understood in detail and are the subject of active research. However, from a practical point of view, these cells have been successfully used in cell transplantation protocols that have yielded a significant rescue of structure and function in skeletal muscle of dystrophic mice and dogs. Since the corresponding human cells have been recently isolated and characterized, a clinical trial with these cells is planned in the near future. This unit provides detailed methods for isolation, culture, and characterization of mesoangioblasts.
Insights
Mesoangioblasts, a type of stem cell from mammalian small vessels, show potential for treating muscle diseases. These cells can be isolated, cultured, and characterized for therapeutic applications.
Area of Science:
- Stem Cell Biology
- Developmental Biology
- Regenerative Medicine
Background:
- Mesoangioblasts are stem/progenitor cells found in mammalian small vessels.
- They express endothelial and/or pericyte markers and can differentiate into mesodermal cells.
- Their developmental origin and relationship with other stem cells require further investigation.
Purpose of the Study:
- To provide detailed methods for the isolation, culture, and characterization of mesoangioblasts.
- To highlight the therapeutic potential of mesoangioblasts in regenerative medicine.
Main Methods:
- Isolation of mesoangioblasts from mammalian tissues.
- Culture and expansion of mesoangioblasts in vitro.
- Characterization of mesoangioblasts using specific markers and functional assays.
Main Results:
- Successful isolation and culture of mesoangioblasts.
- Demonstrated ability of mesoangioblasts to differentiate into various mesodermal cell types.
- Evidence of therapeutic efficacy in preclinical models of muscular dystrophy.
Conclusions:
- Mesoangioblasts represent a promising cell source for regenerative therapies, particularly for muscle disorders.
- Established methods facilitate further research and clinical translation.
- Human mesoangioblast isolation paves the way for upcoming clinical trials.

