Hydrogen sulfide improves performance under suppressed photorespiration in Arabidopsis thaliana and orchestrates molecular reprogramming to alleviate stress

High levels of atmospheric carbon dioxide result in suppression of plant photorespiration. The non-photorespiratory conditions (NPC) result in unbalancing the C/N metabolism, overproducing reactive oxygen species (ROS), and reducing stomatal activity. In plant stress responses, hydrogen sulfide (H2S...

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Detalles Bibliográficos
Autores: Luque, C., García Calderón, Margarita, Gotor, C., Márquez Cabeza, Antonio José, Aroca Aguilar, Ángeles
Tipo de recurso: artículo
Estado:Versión publicada
Fecha de publicación:2026
País:España
Institución:Universidad de Sevilla (US)
Repositorio:idUS. Depósito de Investigación de la Universidad de Sevilla
OAI Identifier:oai:idus.us.es:11441/181659
Acceso en línea:https://hdl.handle.net/11441/181659
https://doi.org/10.1016/j.stress.2026.101222
Access Level:acceso abierto
Palabra clave:Hydrogen sulfide (H₂S)
Photorespiration
High CO₂
Climate change
Oxidative stress
Protein persulfidation
Hypoxia
Stomatal regulation
Descripción
Sumario:High levels of atmospheric carbon dioxide result in suppression of plant photorespiration. The non-photorespiratory conditions (NPC) result in unbalancing the C/N metabolism, overproducing reactive oxygen species (ROS), and reducing stomatal activity. In plant stress responses, hydrogen sulfide (H2S) has been identified as an important signaling molecule through persulfidation of specific proteins. Previous works demonstrated that H₂S protects Arabidopsis thaliana against NPC-induced stress, and this work investigates the molecular basis of such protection. H₂S modulates a metabolic reprogramming influencing elemental homeostasis of C/N ratio, amino acids profile, central carbon metabolites and accumulation of polyunsaturated fatty acids (PUFAs). Persulfidation level under NPC was also restored after H₂S treatment. At the transcriptomic level, several well-known hypoxia marker genes, such as plant CYSTEINE OXIDASE 1 and 2, ETHYLENE-RESPONSIVE TRANSCRIPTION FACTOR ERF71 AND ETHYLENE RECEPTOR 2, are induced under NPC, and sulfide treatment decreases their expression levels to the ones in active photorespiration conditions (APC). H₂S also negatively regulates ABA signaling by targeting genes controlling ion transport and stomatal development which are involved in stomatal function. These integrated responses across metabolism, redox regulation and developmental programming emphasize the key contribution of H₂S to orchestrating plant adaptation to high CO₂ environments, positioning it as a master regulator that ensures plant resilience in the face of climate change.