The expression and role of PIDD in retina after optic nerve crush

J Mol Histol. 2020 Feb;51(1):89-97. doi: 10.1007/s10735-020-09860-1. Epub 2020 Feb 17.

Abstract

To examine the expression of P53-induced protein with a death domain (PIDD) at retina in animal model of optic nerve crush (ONC) and to investigate the role of PIDD in retinal glial activation and NF-κB activation induced by optic nerve damage, ONC animal model was established in Sprague-Dawley rats. PIDD has three isoforms (Isof); Western blot was performed to examine the expression of PIDD (Isof-1, Isof-2, and Isof-3, respectively) in retina at different time points after ONC. Retinal glial activation is closely associated with retinal neuronal death and is monitored by the expression of GFAP+ glial cells and IBA1+ microglia, then activated microglia leads to inflammatory cytokine production. NF-kB activation in glial cells also can promote neuronal death. In our study, the role of PIDD in retinal glial activation and NF-kB activation was investigated with PIDD inhibition selectively. PIDD expression (Isof-1 and Isof-3) was dramatically increased, and peaked at 3 days after ONC, while Isof-2 did not show any difference. In the ONC animal model, the number of GFAP+ glial cells and IBA1+ microglia in retinal layers was increased significantly, inflammatory cytokine production was upregulated, and NF-κB in glial cell was also activated. Moreover, those responses induced by optic nerve damage were attenuated with PIDD inhibition, which indicated that PIDD could regulate retinal glial activation, neuro-inflammation, and NF-κB activation. These results provided the direct demonstration that the PIDD (Isof-1and Isof-3) was overexpressed in retina after ONC, and PIDD may be involved in retinal neurodegenerative diseases by regulating retinal glial activation and NF-κB activation.

Keywords: GFAP+ glial cells; IBA1+ microglia; NF-κb; Optic nerve crush; PIDD; Retinal neurodegenerative diseases.

MeSH terms

  • Animals
  • Death Domain Receptor Signaling Adaptor Proteins / biosynthesis*
  • Gene Expression Regulation*
  • Microglia / metabolism*
  • Microglia / pathology
  • Optic Nerve / metabolism*
  • Optic Nerve / pathology
  • Optic Nerve Injuries / metabolism*
  • Optic Nerve Injuries / pathology
  • Protein Isoforms / biosynthesis
  • Rats
  • Rats, Sprague-Dawley
  • Retinal Ganglion Cells / metabolism*
  • Retinal Ganglion Cells / pathology

Substances

  • Death Domain Receptor Signaling Adaptor Proteins
  • Protein Isoforms