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Visualization of Inflammatory Caspases Induced Proximity in Human Monocyte-Derived Macrophages
Published on: April 6, 2022
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.
Abstract:
The function of macrophages makes them vulnerable to several sources of stress and damage, and thus there is a considerable requirement for some form of resilient molecular defence. Differentiation of human macrophages and their further pro-inflammatory (M1) polarization with bacterial endotoxin is associated with increased transcription of PARP1 and SOD2. The latter gene responded immediately to LPS with high NFκB-dependent expression rate, and the resulting enzyme made M1 macrophages resistant to hydrogen peroxide-induced oxidative stress and associated cell death. LPS-induced recruitment of RELA to SOD2 promoter was accompanied by release of PARP1 and LSD1 from chromatin and increased H3K4 di- and tri-methylation. PARP1 dissociation from SOD2 promoter occurred at an early stage of SOD2 transcriptional activation. This event contributed to the termination of mRNA synthesis at a later stage of macrophage polarization by allowing LSD1 to rebind to the SOD2 promoter. LSD1 removed transcription-promoting methylation of H3K4 and led to displacement of RELA. Analysis of temporal changes at the SOD2 promoter indicated a direct mutual interdependence between PARP1, LSD1, H3K4 methylation and the ongoing SOD2 transcription, which correlated positively with both PARP1 abundance on the chromatin and dimethylation of H3K4, but negatively with LSD1 and chromatin compaction in LPS-treated macrophages. Deficiency of LSD1 activity and maintenance of PARP1 at the SOD2 promoter substantially upregulated SOD2 level, thereby further increasing resistance of M1 macrophages to hydrogen peroxide. Inhibitors of LSD1 and PARP1 poisons that capture the latter enzyme on the chromatin seem to be prosurvival molecular tools protecting polarized macrophages from certain pro-oxidative conditions.
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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