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  4. A self-immunomodulating myoblast cell line for erythropoietin delivery
 
research article

A self-immunomodulating myoblast cell line for erythropoietin delivery

Schneider, B. L.
•
Peduto, G.
•
Aebischer, P.  
2001
Gene Therapy

The transplantation of genetically engineered cells faces limitations associated with host immunity. Allogeneic cells are typically rejected in response to inherent histo-incompatibility. Even autologous cells can induce an immune response toward antigenic molecules expressed following transfer of foreign genes. The goal of the present study was to investigate the ability of immunomodulating molecules co-expressed with biotherapeutic factors to overcome these limitations both in syngeneic and allogeneic cell transplantation. The C(2)C(12) mouse myoblast cell line was engineered to express CTLA4Ig, a soluble factor blocking T cell costimulation, in conjunction with erythropoietin (Epo), a reporter biotherapeutic protein. In syngeneic C3H mice, myoblasts expressing only mouse Epo were mostly rejected within 2 weeks, as indicated by the transient increase in host hematocrit. In allogeneic recipients, the same cells induced only a 1-week increase in the hematocrit reflecting an acute rejection process. CTLA4Ig expression significantly extended the survival of mouse Epo-secreting myoblasts in approximately half of syngeneic hosts, whereas it led only to a 1-week improvement effect in allogeneic recipients. When combined with a transient anti-CD154 treatment, CTLA4Ig expression prevented Epo-secreting C(2)C(12)myoblasts from being rejected in allogeneic DBA/2J recipients for at least 1 month. In contrast, the same anti-CD154 treatment alone induced only a 1 week improvement. These results demonstrate that CTLA4Ig co-expression associated with a transient anti-CD154 treatment can prolong the delivery of recombinant proteins via transfer of ex vivo modified cells in allogeneic recipients.

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Type
research article
DOI
10.1038/sj.gt.3301356
Author(s)
Schneider, B. L.
Peduto, G.
Aebischer, P.  
Date Issued

2001

Published in
Gene Therapy
Volume

8

Issue

1

Start page

58

End page

66

Subjects

Animals

•

Antigens

•

CD

•

Antigens

•

Differentiation/metabolism

•

CD40 Ligand/immunology

•

Cell Line

•

Cell Transplantation/ methods

•

Erythropoietin/ genetics/metabolism

•

Gene Therapy/methods

•

Gene Transfer Techniques

•

Graft Rejection/immunology

•

Graft Survival/immunology

•

Immunoconjugates

•

Immunosuppression/ methods

•

Immunosuppressive Agents/metabolism

•

Mice

•

Mice

•

Inbred BALB C

•

Mice

•

Inbred C3H

•

Mice

•

Inbred C57BL

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Mice

•

Inbred DBA

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Muscle

•

Skeletal/ cytology/metabolism/transplantation

•

Recombinant Fusion Proteins/metabolism

•

Recombinant Proteins/metabolism

Note

Division of Surgical Research and Gene Therapy Center, Centre Hospitalier Universitaire Vaudois, Lausanne University Medical School, Lausanne, Switzerland.

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LEN  
Available on Infoscience
March 9, 2007
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/3744
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