ROS-scavenging-associated transcriptional and biochemical shifts during nectarine fruit development and ripening

被引:27
作者
Vall-llaura, Nuria [1 ]
Fernandez-Cancelo, Pablo [1 ]
Nativitas-Lima, Isabel [1 ,2 ]
Echeverria, Gemma [1 ]
Teixido, Neus [1 ]
Larrigaudiere, Christian [1 ]
Torres, Rosario [1 ]
Gine-Bordonaba, Jordi [1 ]
机构
[1] Parc Cientif I Tecnol Agroalimentari Lleida, IRTA, Edif Fruitctr, Postharvest Programme, Lleida, Catalonia 25003, Spain
[2] Colegio Postgrad COLPOS, Campus Montecillo, Texcoco 56230, Mexico
关键词
Antioxidant enzymes; Carotenoids; Ethylene; ERF; Phenolic compounds; Respiration; PEACH PRUNUS-PERSICA; ANTIOXIDANT ENZYMES; PHENOLIC-COMPOUNDS; ABSCISIC-ACID; STRESS; EXPRESSION; GENES; CULTIVARS; TOMATO; BIOSYNTHESIS;
D O I
10.1016/j.plaphy.2021.12.022
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
ROS are known as toxic by-products but also as important signaling molecules playing a key role in fruit development and ripening. To counteract the negative effects of ROS, plants and fruit own multiple ROS-scavenging mechanisms aiming to ensure a balanced ROS homeostasis. In the present study, changes in specific ROS (i.e. H2O2) as well as enzymatic (SOD, CAT, POX, APX) and non-enzymatic (phenylpropanoids, carotenoids and ascorbate) ROS-scavenging systems were investigated along four different stages of nectarine (cv. 'Diamond Ray') fruit development and ripening (39, 70, 94 and 121 DAFB) both at the metabolic (28 individual metabolites or enzymes) and transcriptional level (24 genes). Overall, our results demonstrate a complex ROS-related transcriptome and metabolome reprogramming during fruit development and ripening. At earlier fruit developmental stages an increase on the respiration rate is likely triggering an oxidative burst and resulting in the activation of specific ethylene response factors (ERF1). In turn, ROS-responsive genes or the biosynthesis of specific antioxidant compounds (i.e. phenylpropanoids) were highly expressed or accumulated at earlier fruit developmental stages (39-70 DAFB). Nonetheless, as the fruit develops, the decrease in the fruit respiration rate and the reduction of ERF1 genes leads to lower levels of most non-enzymatic antioxidants and higher accumulation of H2O2. Based on available literature and the observed accumulation dynamics of H2O2, it is anticipated that this compound may not only be a by-product of ROS-scavenging but also a signaling molecule accumulated during the ripening of nectarine fruit.
引用
收藏
页码:38 / 48
页数:11
相关论文
共 57 条
[1]   CHARACTERIZATION OF PEROXIDASES IN LIGNIFYING PEACH FRUIT ENDOCARP [J].
ABELES, FB ;
BILES, CL .
PLANT PHYSIOLOGY, 1991, 95 (01) :269-273
[2]  
Alagoz Y, 2020, METHODS MOL BIOL, V2083, P145, DOI 10.1007/978-1-4939-9952-1_11
[3]   Phenolic compounds in peach (Prunus persica) cultivars at harvest and during fruit maturation [J].
Andreotti, C. ;
Ravaglia, D. ;
Ragaini, A. ;
Costa, G. .
ANNALS OF APPLIED BIOLOGY, 2008, 153 (01) :11-23
[4]   Reactive oxygen species: Metabolism, oxidative stress, and signal transduction [J].
Apel, K ;
Hirt, H .
ANNUAL REVIEW OF PLANT BIOLOGY, 2004, 55 :373-399
[5]   Scrutinising the relationship between major physiological and compositional changes during 'Merrill O'Henry' peach growth with brown rot susceptibility [J].
Baro-Montel, Nuria ;
Gine-Bordonaba, Jordi ;
Torres, Rosario ;
Vall-llaura, Nuria ;
Teixido, Neus ;
Usall, Josep .
FOOD SCIENCE AND TECHNOLOGY INTERNATIONAL, 2021, 27 (04) :366-379
[6]   FRUIT PHOTOSYNTHESIS [J].
BLANKE, MM ;
LENZ, F .
PLANT CELL AND ENVIRONMENT, 1989, 12 (01) :31-46
[7]   Accumulation of carotenoids and expression of carotenogenic genes in peach fruit [J].
Cao, Shifeng ;
Liang, Minhua ;
Shi, Liyu ;
Shao, Jiarong ;
Song, Chunbo ;
Bian, Kun ;
Chen, Wei ;
Yang, Zhenfeng .
FOOD CHEMISTRY, 2017, 214 :137-146
[8]  
Claiborne A., 1984, Handbook of Methods for Oxygen Radical Research, P283, DOI DOI 10.1201/9781351072922
[9]   Pseudomonas graminis strain CPA-7 differentially modulates the oxidative response in fresh-cut 'Golden delicious' apple depending on the storage conditions [J].
Collazo, Cyrelys ;
Gine-Bordonaba, Jordi ;
Aguilo-Aguayo, Ingrid ;
Povedano, Ismael ;
Bademunt, Ariadna ;
Vinas, Inmaculada .
POSTHARVEST BIOLOGY AND TECHNOLOGY, 2018, 138 :46-55
[10]   Get the Balance Right: ROS Homeostasis and Redox Signalling in Fruit [J].
Decros, Guillaume ;
Baldet, Pierre ;
Beauvoit, Bertrand ;
Stevens, Rebecca ;
Flandin, Amelie ;
Colombie, Sophie ;
Gibon, Yves ;
Petriacq, Pierre .
FRONTIERS IN PLANT SCIENCE, 2019, 10