Related Experiment Video
Updated: Jul 13, 2026

FACS-Isolation and Culture of Fibro-Adipogenic Progenitors and Muscle Stem Cells from Unperturbed and Injured Mouse Skeletal Muscle
Published on: June 8, 2022
Immature and neurally differentiated mouse embryonic stem cells do not express a functional Fas/Fas ligand system
Gabriella Brunlid1, Jan Pruszak, Benjamin Holmes
1Harvard Medical School, Center for Neuroregeneration Research, Udall Parkinson's Disease Center of Excellence, McLean Hospital, 115 Mill Street, Belmont, Massachusetts 02478, USA.
Abstract:
The potential of pluripotent embryonic stem (ES) cells to develop into functional cells or tissue provides an opportunity in the development of new therapies for many diseases including neurodegenerative disorders. The survival of implanted cells usually requires systemic immunosuppression, however, which severely compromises the host immune system, leading to complications in clinical transplantation. An optimal therapy would therefore be the induction of specific tolerance to the donor cells, while otherwise preserving functional immune responses. Fas ligand (FasL) is expressed in activated lymphocytes as well as cells in "immune-privileged" sites including the central nervous system. Its receptor, Fas, is expressed on various immune-reactive cell types, such as activated natural killer and T cells, monocytes, and polymorphic mononucleocytes, which can undergo apoptosis upon interaction with FasL. To render transplanted cells tolerant to host cellular immune responses, we genetically engineered mouse ES cells to express rat FasL (rFasL). The rFasL-expressing ES cells were analyzed for survival during in vitro neurodifferentiation and after transplantation to the rat brain without further immunosuppression. Although control transfected HEK-293T cells expressed functional rFasL, immature and differentiated mouse ES cells did not express the recombinant rFasL surface protein. Furthermore, there was no evidence for functional endogenous Fas and FasL expression on either ES cells or on neural cells after in vitro differentiation. Moreover, implanted rFasL-engineered ES cells did not survive in the rat brains in the absence of the immunosuppressive agent cyclosporine A. Our results indicate that immature and differentiated mouse ES cells do not express a functional Fas/FasL system. Disclosure of potential conflicts of interest is found at the end of this article.
Insights
Genetically engineered mouse embryonic stem (ES) cells to express rat Fas ligand (rFasL) to promote transplant tolerance. However, the engineered ES cells did not express functional rFasL or survive transplantation without immunosuppression.
Area of Science:
- Stem cell biology
- Immunology
- Neuroscience
Background:
- Embryonic stem (ES) cells offer therapeutic potential for neurodegenerative disorders.
- Current transplantation methods require systemic immunosuppression, compromising host immunity.
- Inducing specific tolerance to donor cells is an ideal therapeutic strategy.
Purpose of the Study:
- To genetically engineer mouse ES cells to express rat Fas ligand (rFasL).
- To assess the survival and functionality of rFasL-expressing ES cells in vitro and after transplantation to the rat brain without immunosuppression.
- To investigate the potential of Fas/FasL system in ES cells for immune tolerance.
Main Methods:
- Genetic engineering of mouse ES cells to express rat FasL (rFasL).
- In vitro neurodifferentiation of engineered ES cells.
- Transplantation of engineered ES cells into the rat brain without immunosuppression.
- Analysis of rFasL expression and Fas/FasL system functionality.
Main Results:
- Control HEK-293T cells expressed functional rFasL.
- Immature and differentiated mouse ES cells did not express recombinant rFasL.
- No functional endogenous Fas or FasL expression was detected in ES cells or differentiated neural cells.
- Implanted rFasL-engineered ES cells did not survive in rat brains without cyclosporine A.
Conclusions:
- Mouse ES cells, both immature and differentiated, lack a functional Fas/FasL system.
- The strategy of engineering ES cells with rFasL did not confer immune tolerance or enhance survival in vivo.
- Further research is needed to develop effective strategies for ES cell transplantation without immunosuppression.

