bioRxiv Science⌕ Search

Biology subjects

Collado-Arenal, A. M.

Publications and source records attributed to Collado-Arenal, A. M..

2 recordsLinked to original sources

The lack of peroxisomal Glycolate Oxidases 1 and 2 influences mitochondrial electron transport chain and its redox state under control and cadmium stress

The production of reactive oxygen species (ROS) in response to cadmium (Cd) has been extensively studied, demonstrating that they play a key role in the plants response to this heavy metal. While the role of enzymes like RBOHs has been thoroughly studied, the function of other ROS-producing enzymes, such as peroxisomal glycolate oxidase (GOX), remains largely overlooked. Peroxisomal GOX is a core metabolic enzyme of the photorespiratory pathway occurring in chloroplasts, mitochondria and peroxisomes. Using Arabidopsis (Arabidopsis thaliana) mutants lacking the main peroxisomal GOX genes, GOX1 (gox1-1) and GOX2 (gox2-1) we explored their function in plant response to Cd. Although photosynthetic capacity appears to be affected to the same extent in both mutants under control and Cd stress conditions, GOX2 seems to play a greater role in ROS production in response to the metal. Transcriptomic analyses on WT and gox2-1 pointed to the mitochondrial electron transport chain (mETC) as a target of Cd stress. We further investigated the individual GOX1 and GOX2 functions in mETC regulation and redox state. Although oxidative ratio of mitochondria was higher in both mutants, it was more pronounced in the absence of GOX1. Furthermore, the mETC is affected in both mutants but the regulation of its components differs in each mutant. These results point out the different functions of the two photorespiratory GOX isoforms in Arabidopsis, leading to a better understanding of the photorespiratory pathway.

plant biology↗

Deciphering the role of autophagy under Cd toxicity in Arabidopsis thaliana

Cadmium (Cd) is a toxic pollutant in soil and water affecting plants, animals, and humans. Autophagy, a cellular recycling process, is crucial for different biotic and abiotic plant stress responses. This study explores the autophagy role in Arabidopsis under Cd stress, using wild-type, autophagy-deficient mutants (atg5, and atg7) and overexpressing lines (35S:ATG5, 35S:ATG7). Cd exposure induced autophagy, as evidenced by ATG8a and ATG8a-PE accumulation, GFP-ATG8a fluorescence, and upregulation of ATG genes and proteins. Responses differed between Col-0 and Ws backgrounds, with Ws showing higher Cd tolerance. atg5 mutants were more sensitive to Cd, indicating the autophagy protective role, whereas ATG5/ATG7 overexpression did not significantly enhance Cd tolerance. Although oxidative stress may activate autophagy, ATG5/ATG7 overexpression did not significantly change the oxidative stress response. Notably, atg5 mutants displayed marked disruptions in metal/ion homeostasis under control and Cd conditions, reinforcing autophagys role inion homeostasis. In contrast, atg7 showed no significant differences from its WT (Ws), suggesting genotype-specific effects. Transcriptional analysis of metal transporters and ion flux analyses indicates that autophagy can regulate metal/ion accumulation through transcriptional control and post-translational modifications (e.g., ROS) with a differential response being observed between Ws and Col-0 plants.

plant biology↗