PARP1-LSD1 functional interplay controls transcription of SOD2 that protects human pro-inflammatory macrophages from

Paulina Tokarz1, Tomasz Płoszaj2, Zsolt Regdon3

  • 1Department of Molecular Genetics, Institute of Biochemistry, Faculty of Biology and Environmental Protection, University of Lodz, Pomorska 141/143, 90-236 Lodz, Poland.

Insights

Macrophages utilize Poly(ADP-ribose) polymerase 1 (PARP1) and Lysine-specific demethylase 1 (LSD1) to regulate Superoxide dismutase 2 (SOD2) expression, enhancing resistance to oxidative stress during inflammation.

Area of Science:

  • Immunology
  • Molecular Biology
  • Epigenetics

Background:

  • Macrophages are crucial immune cells susceptible to oxidative stress.
  • Pro-inflammatory M1 polarization enhances macrophage vulnerability.
  • Molecular defense mechanisms are essential for macrophage resilience.

Purpose of the Study:

  • To investigate the role of PARP1 and LSD1 in regulating SOD2 transcription in M1 macrophages.
  • To understand the epigenetic mechanisms governing SOD2 expression during inflammation.
  • To identify potential therapeutic targets for protecting macrophages from oxidative damage.

Main Methods:

  • Human macrophage differentiation and M1 polarization using bacterial endotoxin (LPS).
  • Analysis of gene transcription, protein recruitment, and epigenetic modifications (H3K4 methylation) at the SOD2 promoter.
  • Assessment of macrophage resistance to hydrogen peroxide-induced oxidative stress.

Main Results:

  • LPS-induced M1 polarization increased PARP1 and SOD2 transcription, conferring resistance to oxidative stress.
  • RELA recruitment to the SOD2 promoter was linked to PARP1/LSD1 dynamics and H3K4 methylation.
  • PARP1 dissociation and LSD1 re-binding regulated SOD2 mRNA synthesis termination.
  • Inhibition of LSD1 or sustained PARP1 presence upregulated SOD2, enhancing macrophage resistance.

Conclusions:

  • PARP1 and LSD1 dynamically regulate SOD2 transcription via epigenetic modifications.
  • Targeting LSD1 or PARP1 may offer prosurvival strategies for polarized macrophages under oxidative stress.
  • Understanding these molecular mechanisms is key to developing therapies for inflammatory conditions.

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