Structures of Arabidopsis thaliana oxygen-sensing plant cysteine oxidases 4 and 5 enable targeted manipulation of their activity

Symplectic ID
1122983
Source
Ora (Hyrax)
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Sunday, 13 September, 2026 - 01:22
DOI
10.1073/pnas.2000206117
Publication Date
Monday, 31 August, 2020
First Page
23140
Last Page
23147
Keywords
thiol dioxygenase
plant cysteine oxidase
oxygen-sensing
hypoxiasubmergence
Authors
White, M
Dalle Carbonare, L
Puerta, ML
Iacopino, S
Edwards, M
Dunne, K
Pires, E
Levy, C
McDonough, M
Licausi, F
Flashman, E
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Abstract
In higher plants, molecular responses to exogenous hypoxia are driven by group VII ethylene response factors (ERF-VIIs). These transcriptional regulators accumulate in the nucleus under hypoxia to activate anaerobic genes but are destabilized in normoxic conditions through the action of oxygen-sensing plant cysteine oxidases (PCOs). The PCOs catalyze the reaction of oxygen with the conserved N-terminal cysteine of ERF-VIIs to form cysteine sulfinic acid, triggering degradation via the Cys/Arg branch of the N-degron pathway. The PCOs are therefore a vital component of the plant oxygen signaling system, connecting environmental stimulus with cellular and physiological response. Rational manipulation of PCO activity could regulate ERF-VII levels and improve flood tolerance, but requires detailed structural information. We report crystal structures of the constitutively expressed PCO4 and PCO5 from Arabidopsis thaliana to 1.24 and 1.91 Å resolution, respectively. The structures reveal that the PCOs comprise a cupin-like scaffold, which supports a central metal cofactor coordinated by three histidines. While this overall structure is consistent with other thiol dioxygenases, closer inspection of the active site indicates that other catalytic features are not conserved, suggesting that the PCOs may use divergent mechanisms to oxidize their substrates. Conservative substitution of two active site residues had dramatic effects on PCO4 function both in vitro and in vivo, through yeast and plant complementation assays. Collectively, our data identify key structural elements that are required for PCO activity and provide a platform for engineering crops with improved hypoxia tolerance.
Publisher
National Academy of Sciences
ISSN
0027-8424
Journal Title
Proceedings of the National Academy of Sciences
eISSN
1091-6490
Volume
117
Issue
37
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uuid_2d7f83b5-7f52-4609-9d66-461c14666c34
Publication Status
Published
Open access
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chem1163,dops0801,wolf1833,dops0812,chem1287