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TNF-induced necroptosis and PARP-1-mediated necrosis represent distinct routes to programmed necrotic cell death
Justyna Sosna1, Susann Voigt, Sabine Mathieu
1Institut für Immunologie, Christian-Albrechts-Universität zu Kiel, Michaelisstr. 5, 24105, Kiel, Germany.
Abstract:
Programmed necrosis is important in many (patho)physiological settings. For specific therapeutic intervention, however, a better knowledge is required whether necrosis occurs through one single "core program" or through several independent pathways. Previously, the poly(ADP-ribose) polymerase (PARP) pathway has been suggested as a crucial element of tumor necrosis factor (TNF)-mediated necroptosis. Here, we show that TNF-induced necroptosis and the PARP pathway represent distinct and independent routes to programmed necrosis. First, DNA-alkylating agents such as 1-methyl-3-nitro-1-nitrosoguanidine (MNNG) or methyl methanesulfonate rapidly activate the PARP pathway, whereas this is a late and secondary event in TNF-induced necroptosis. Second, inhibition of the PARP pathway does not protect against TNF-induced necroptosis, e.g., the PARP-1 inhibitor 3-AB prevented MNNG- but not TNF-induced adenosine-5'-triposphate depletion, translocation of apoptosis-inducing factor, and necrosis. Likewise, olaparib, a more potent and selective PARP-1 inhibitor failed to block TNF-induced necroptosis, identical to knockdown/knockout of PARP-1, pharmacologic and genetic interference with c-Jun N-terminal kinases and calpain/cathepsin proteases as further components of the PARP pathway. Third, interruption of TNF-induced necroptosis by interference with ceramide generation, RIP1 or RIP3 function or by the radical scavenger butylated hydroxyanisole did not prevent programmed necrosis through the PARP pathway. In summary, our results suggest that the currently established role of the PARP pathway in TNF-induced necroptosis needs to be revised, with consequences for the design of future therapeutic strategies.
Insights
Programmed necrosis involves distinct pathways. Tumor necrosis factor (TNF)-induced necroptosis and the poly(ADP-ribose) polymerase (PARP) pathway are separate routes, not a single core program, impacting therapeutic strategies.
Area of Science:
- Cellular biology
- Molecular mechanisms of cell death
- Pathophysiology
Background:
- Programmed necrosis is critical in physiological and pathological processes.
- Understanding distinct necrosis pathways is vital for targeted therapies.
- The poly(ADP-ribose) polymerase (PARP) pathway was previously implicated in tumor necrosis factor (TNF)-mediated necroptosis.
Purpose of the Study:
- To investigate whether programmed necrosis occurs via a single core program or independent pathways.
- To clarify the relationship between TNF-induced necroptosis and the PARP pathway.
Main Methods:
- Utilized DNA-alkylating agents (MNNG, methyl methanesulfonate) and TNF to induce necrosis.
- Employed PARP-1 inhibitors (3-AB, olaparib) and genetic manipulation (knockdown/knockout) to assess pathway involvement.
- Interfered with components of the PARP pathway (c-Jun N-terminal kinases, calpain/cathepsin proteases) and necroptosis (ceramide, RIP1/RIP3, butylated hydroxyanisole).
Main Results:
- TNF-induced necroptosis and PARP pathway activation are distinct and independent routes.
- PARP pathway activation is rapid with DNA alkylating agents but late/secondary in TNF-induced necroptosis.
- Inhibition of the PARP pathway did not prevent TNF-induced necroptosis, and vice versa.
Conclusions:
- The established role of the PARP pathway in TNF-induced necroptosis requires revision.
- TNF-induced necroptosis and PARP-mediated necrosis are separate programmed cell death pathways.
- Findings have implications for designing future therapeutic strategies targeting programmed necrosis.
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