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c-FLIP: A pseudoprotease with emerging metal-binding activity

delete2026-06-04
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PRE
AI
R
Rhea Sarah DSouza
Y
Yusuke Nakasone
N
Naoyuki Iwabe
K
Kentaro Tomii
J
Jun Suzuki *
K
Kazuhiro Sakamaki *
DOI:10.1111/febs.70593delete
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Abstract

Abstract

En 中文
The transition from catalytically active enzymes to inactive pseudoenzymes has been recognized as an evolutionary strategy through which certain proteins acquire novel cellular functions. Cellular FLICE-like inhibitory protein (c-FLIP; gene symbol CFLAR) is one such pseudoenzyme, which exemplifies how evolutionary divergence yields unexpected functional outcomes. During evolution, c-FLIP diverged from its ancestral caspase-8 (Casp8) via amino acid substitutions at the active site of its protease domain, resulting in enzymatic inactivity and anti-apoptotic function. Intriguingly, our structural and phylogenetic analyses revealed an evolutionarily conserved LYR triad within the pseudoprotease domain (CASc*) of c-FLIP, suggesting a potential interaction with ferrous ions (Fe2+). We investigated whether c-FLIP could have evolved beyond its canonical apoptotic role to acquire a novel iron-binding function. Biochemical analyses confirmed that CASc* binds to Fe2+ ions and inhibits hydroxyl radical (HO·) generation via the Fenton reaction between Fe2+ and hydrogen peroxide (H2O2). Cytological analyses demonstrated that CASc* expression in both E. coli and cultured cells protected them from oxidative stress in the presence of Fe2+ and H2O2. Furthermore, we identified a secondary promoter within intron 5 of the CFLAR gene that selectively drives expression of the CASc-only isoform in certain fetal-derived cell lines (e.g., HUVECs). These results reveal a unique adaptation among caspase-family proteins, highlighting c-FLIP's dual role in iron-dependent redox regulation and apoptosis signaling. This study provides new insights into how the pseudoenzyme acquires a new function during evolution and into the defensive role of the c-FLIP isoform in iron-dependent oxidative stress.
Keywords:
Fenton reaction
ferrous ion
LYR motif
pseudoenzyme
redox homeostasis

Journal

T
the febs journal
IF:
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Papers:
173
Citations:
0

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kyoto university
Scholars:
6.6K
Papers: 2.7K
Citations: 0
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