Priming Treatments with Biostimulants to Cope the Short-Term Heat Stress Response: A Transcriptomic Profile Evaluation

被引:19
作者
Cocetta, Giacomo [1 ]
Landoni, Michela [2 ]
Pilu, Roberto [1 ]
Repiso, Carlos [3 ]
Nolasco, Jose [3 ]
Alajarin, Marcos [3 ]
Ugena, Lydia [3 ]
Levy, Camila C. B. [3 ]
Scatolino, Giacomo [4 ]
Villa, Daniele [4 ]
Ferrante, Antonio [1 ]
机构
[1] Univ Milan, DISAA Dept Agr & Environm Sci, Via Celoria 2, I-20133 Milan, Italy
[2] Univ Milan, Dept Biosci, Via Celoria 26, I-20133 Milan, Italy
[3] Tradecorp Int, Via Poblados 3,Edif Onic 5,6th Floor, Madrid 28033, Spain
[4] Agricola 2000, Scpa Via Trieste 9, I-20067 Tribiano, MI, Italy
来源
PLANTS-BASEL | 2022年 / 11卷 / 09期
关键词
abiotic stress; Arabidopsis thaliana; Ascophyllum nodosum; HPS; heat shock; secondary metabolism; high temperature; SHOCK PROTEINS; TOLERANCE; ARABIDOPSIS; EXPRESSION; PLANTS; METABOLISM; MECHANISMS; RESISTANCE;
D O I
10.3390/plants11091130
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Plant stress induced by high temperature is a problem in wide areas of different regions in the world. The trend of global warming is going to enhance the effects of heat stress on crops in many cultivation areas. Heat stress impairs the stability of cell membranes and many biological processes involving both primary and secondary metabolism. Biostimulants are innovative agronomical tools that can be used as a strategy to counteract the detrimental effect of abiotic stresses, including heat stress. In this work, two biostimulants based on Ascophyllum nodosum extracts (named Phylgreen) and based on animal L-alpha amino acids (named Delfan Plus) were applied as priming treatments to Arabidopsis thaliana plants subjected to heat stress exposure. Plants at the vegetative stage were treated with biostimulants 12 h before high temperature exposure, which consisted of maintaining the plants at 37 +/- 1 degrees C for 4 h. Transcriptional profiles, physiological, and biochemical analyses were performed to understand the mode of action of the biostimulants in protecting the plants exposed to short-term heat stress. At a physiological level, chlorophyll, chlorophyll a fluorescence, phenolic index, total anthocyanins, reactive oxygen species (ROS) were measured, and significant variations were observed immediately after stress. Both biostimulants were able to reduce the oxidative damage in leaves and cell membrane. Transcriptomic data revealed that upregulated genes were 626 in Phylgreen and 365 in Delfan Plus, while downregulated genes were 295 in Phylgreen and 312 in Delfan Plus. Bioinformatic analysis showed that the biostimulants protected the plants from heat stress by activating specific heat shock proteins (HPS), antioxidant systems, and ROS scavengers. The results revealed that the biostimulants effectively induced the activation of heat stress-associated genes belonging to different transcription factors and HSP families. Among the heat shock proteins, the most important was the AtHSP17 family and in particular, those influenced by treatments were AtHPS17.4 and AtHPS17.6A, B, showing the most relevant changes.
引用
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页数:20
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