Down-regulation of human alloimmune responses by genetically engineered expression of CD95 ligand on stimulatory and

H J Dulat1, C von Grumbkow, W Baars

  • 1Transplantationslabor, Klinik für Viszeral- und Transplantationschirurgie, Medizinische Hochschule Hannover, Hannover, Germany.

Insights

Genetically engineering cells to express CD95 ligand (CD95L) can control human T cell responses. This approach may protect transplants by reducing T cell activity during alloimmune responses.

Area of Science:

  • Immunology
  • Cell Biology
  • Transplantation Science

Background:

  • Apoptosis-inducing molecules offer a strategy to protect tissues from effector T cells.
  • Previous studies showed promise in rodent transplantation models.
  • Limited data exist on human alloimmune responses to apoptosis-inducing molecules.

Purpose of the Study:

  • To investigate the in vitro effects of CD95 ligand (CD95L) on human T cell interactions with allogeneic cells.
  • To evaluate the potential of CD95L expression in modulating human alloimmune responses for transplantation.

Main Methods:

  • Human T cells were co-cultured with allogeneic 293 cells and 293 transfectants expressing CD95L.
  • T cell activation was assessed by CD25 expression.
  • Cytotoxic activity against target cells was measured using chromium-51 release assays at different time points.

Main Results:

  • Both CD95L-negative and CD95L-positive 293 cells activated T cells similarly.
  • Anti-293 cytotoxic activity was observed only in cultures stimulated with CD95L-negative cells.
  • Prolonged effector phase assays showed increased lysis of CD95L-negative targets but not CD95L-positive targets.

Conclusions:

  • Transgenic CD95L expression on stimulatory cells may deplete cytotoxic precursor cells during alloimmune responses.
  • CD95L expression on graft tissue could limit T cell-mediated destruction of transplants.
  • Genetically engineered CD95L holds potential for controlling human T cell reactivity in transplantation.

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