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Oxidation of caspase-8 by hypothiocyanous acid enables TNF-mediated necroptosis
被引:9
作者:

Bozonet, Stephanie M.
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Univ Otago, Matai Haora Ctr Redox Biol & Med, Dept Pathol & Biomed Sci, Christchurch, New Zealand Univ Otago, Matai Haora Ctr Redox Biol & Med, Dept Pathol & Biomed Sci, Christchurch, New Zealand

Magon, Nicholas J.
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Univ Otago, Matai Haora Ctr Redox Biol & Med, Dept Pathol & Biomed Sci, Christchurch, New Zealand Univ Otago, Matai Haora Ctr Redox Biol & Med, Dept Pathol & Biomed Sci, Christchurch, New Zealand

Schwartfeger, Abigail J.
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Univ Canterbury, Sch Biol Sci, Christchurch, New Zealand Univ Otago, Matai Haora Ctr Redox Biol & Med, Dept Pathol & Biomed Sci, Christchurch, New Zealand

Konigstorfer, Andreas
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Univ Otago, Matai Haora Ctr Redox Biol & Med, Dept Pathol & Biomed Sci, Christchurch, New Zealand Univ Otago, Matai Haora Ctr Redox Biol & Med, Dept Pathol & Biomed Sci, Christchurch, New Zealand

Heath, Sarah G.
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Univ Otago, Matai Haora Ctr Redox Biol & Med, Dept Pathol & Biomed Sci, Christchurch, New Zealand Univ Otago, Matai Haora Ctr Redox Biol & Med, Dept Pathol & Biomed Sci, Christchurch, New Zealand

Vissers, Margreet C. M.
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Univ Otago, Matai Haora Ctr Redox Biol & Med, Dept Pathol & Biomed Sci, Christchurch, New Zealand Univ Otago, Matai Haora Ctr Redox Biol & Med, Dept Pathol & Biomed Sci, Christchurch, New Zealand

Morris, Vanessa K.
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Univ Canterbury, Sch Biol Sci, Christchurch, New Zealand Univ Otago, Matai Haora Ctr Redox Biol & Med, Dept Pathol & Biomed Sci, Christchurch, New Zealand

Gobl, Christoph
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Univ Canterbury, Sch Biol Sci, Christchurch, New Zealand Univ Otago, Matai Haora Ctr Redox Biol & Med, Dept Pathol & Biomed Sci, Christchurch, New Zealand

Murphy, James M.
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机构:
Walter & Eliza Hall Inst Med Res, Inflammat Div, Parkville, Vic, Australia
Univ Melbourne, Dept Med Biol, Parkville, Vic, Australia Univ Otago, Matai Haora Ctr Redox Biol & Med, Dept Pathol & Biomed Sci, Christchurch, New Zealand

Salvesen, Guy S.
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机构:
Sanford Burnham Prebys Med Discovery Inst, La Jolla, CA USA Univ Otago, Matai Haora Ctr Redox Biol & Med, Dept Pathol & Biomed Sci, Christchurch, New Zealand

Hampton, Mark B.
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Univ Otago, Matai Haora Ctr Redox Biol & Med, Dept Pathol & Biomed Sci, Christchurch, New Zealand Univ Otago, Matai Haora Ctr Redox Biol & Med, Dept Pathol & Biomed Sci, Christchurch, New Zealand
机构:
[1] Univ Otago, Matai Haora Ctr Redox Biol & Med, Dept Pathol & Biomed Sci, Christchurch, New Zealand
[2] Univ Canterbury, Sch Biol Sci, Christchurch, New Zealand
[3] Walter & Eliza Hall Inst Med Res, Inflammat Div, Parkville, Vic, Australia
[4] Univ Melbourne, Dept Med Biol, Parkville, Vic, Australia
[5] Sanford Burnham Prebys Med Discovery Inst, La Jolla, CA USA
基金:
英国医学研究理事会;
美国国家卫生研究院;
关键词:
MIXED LINEAGE KINASE;
DOMAIN-LIKE;
CELL-DEATH;
MOLECULAR SWITCH;
ACTIVATION;
APOPTOSIS;
NECROSIS;
DOWNSTREAM;
INHIBITION;
DISRUPTION;
D O I:
10.1016/j.jbc.2023.104792
中图分类号:
Q5 [生物化学];
Q7 [分子生物学];
学科分类号:
071010 ;
081704 ;
摘要:
Necroptosis is a form of regulated cell death triggered by various host and pathogen-derived molecules during infection and inflammation. The essential step leading to necroptosis is phosphorylation of the mixed lineage kinase domain-like protein by receptor-interacting protein kinase 3. Caspase-8 cleaves receptor-interacting protein kinases to block necroptosis, so synthetic caspase inhibitors are required to study this process in experimental models. However, it is unclear how caspase-8 activity is regulated in a physiological setting. The active site cysteine of caspases is sensitive to oxidative inactivation, so we hypothesized that oxidants generated at sites of inflammation can inhibit caspase-8 and promote necroptosis. Here, we discovered that hypothiocyanous acid (HOSCN), an oxidant generated in vivo by heme peroxidases including myeloperoxidase and lactoperoxidase, is a potent caspase-8 inhibitor. We found HOSCN was able to promote necroptosis in mouse fibroblasts treated with tumor necrosis factor. We also demonstrate purified caspase-8 was inactivated by low concentrations of HOSCN, with the predominant product being a disulfide-linked dimer between Cys360 and Cys409 of the large and small catalytic subunits. We show oxidation still occurred in the presence of reducing agents, and reduction of the dimer was slow, consistent with HOSCN being a powerful physiological caspase inhibitor. While the initial oxidation product is a dimer, further modification also occurred in cells treated with HOSCN, leading to higher molecular weight caspase-8 species. Taken together, these findings indicate major disruption of caspase-8 function and suggest a novel mechanism for the promotion of necroptosis at sites of inflammation. © 2023 The Authors
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