Opposing Roles for Membrane Bound and Soluble Fas Ligand in Glaucoma-Associated Retinal Ganglion Cell Death
Author(s) -
Meredith S. Gregory,
Caroline G. Hackett,
Emma Abernathy,
Karen Lee,
Rebecca R. Saff,
Andreas M. Hohlbaum,
Krishna-Sulayman Moody,
Maura W. Hobson,
Alexander Jones,
Paraskevi E. Kolovou,
Saoussen Karray,
Andrea Giani,
Simon W. M. John,
Dong Feng Chen,
Ann MarshakRothstein,
Bruce R. Ksander
Publication year - 2011
Publication title -
plos one
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.99
H-Index - 332
ISSN - 1932-6203
DOI - 10.1371/journal.pone.0017659
Subject(s) - fas ligand , retinal ganglion cell , immune privilege , programmed cell death , glaucoma , biology , microbiology and biotechnology , apoptosis , immunology , medicine , retina , neuroscience , immune system , genetics
Glaucoma, the most frequent optic neuropathy, is a leading cause of blindness worldwide. Death of retinal ganglion cells (RGCs) occurs in all forms of glaucoma and accounts for the loss of vision, however the molecular mechanisms that cause RGC loss remain unclear. The pro-apoptotic molecule, Fas ligand, is a transmembrane protein that can be cleaved from the cell surface by metalloproteinases to release a soluble protein with antagonistic activity. Previous studies documented that constitutive ocular expression of FasL maintained immune privilege and prevented neoangeogenesis. We now show that FasL also plays a major role in retinal neurotoxicity. Importantly, in both TNFα triggered RGC death and a spontaneous model of glaucoma, gene-targeted mice that express only full-length FasL exhibit accelerated RGC death. By contrast, FasL-deficiency, or administration of soluble FasL, protected RGCs from cell death. These data identify membrane-bound FasL as a critical effector molecule and potential therapeutic target in glaucoma.
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