Protective Response Mechanisms to Heat Stress in Interaction with High [CO2] Conditions in Coffea spp.

被引:93
作者
Martins, Madlles Q. [1 ,2 ]
Rodrigues, Weverton P. [1 ,3 ]
Fortunato, Ana S. [1 ]
Leitao, Antonio E. [1 ,4 ]
Rodrigues, Ana P. [1 ]
Pais, Isabel P.
Martins, Lima D. [1 ]
Silva, Maria J. [1 ,4 ]
Reboredo, Fernando H. [4 ]
Partelli, Fabio L. [2 ]
Campostrini, Eliemar
Tomaz, Marcelo A. [6 ]
Scotti-Campos, Paula [4 ,5 ]
Ribeiro-Barros, Ana I. [1 ,4 ]
Lidon, Fernando J. C. [4 ]
DaMatta, Fabio M. [7 ]
Ramalho, Jose C. [1 ,4 ]
机构
[1] Univ Lisbon, Inst Super Agron, Dept Recursos Nat Ambiente & Terr CEF, Oeiras, Portugal
[2] Univ Fed Espirito Santo, Dept Ciencias Agr & Biol, Ctr Univ Norte Espirito Santo, Sao Mateus, Brazil
[3] Univ Estadual Norte Fluminense, Ctr Ciencias & Tecnol Agr, Setor Fisiol Vegetal, Rio De Janeiro, Brazil
[4] Univ Nova Lisboa, GeoBioTec, Fac Ciencias Tecnol, Caparica, Portugal
[5] Inst Nacl Invest Agr & Vet, Unidade Invest Biotecnol & Recursos Genet, Oeiras, Portugal
[6] Univ Fed Espirito Santo, Ctr Ciencias Agr, Dept Prod Vegetal, Alegre, Brazil
[7] Univ Fed Vicosa, Dept Biol Vegetal, Vicosa, MG, Brazil
关键词
acclimation; antioxidants; coffee; chloroplast; climate change; enhanced [CO2; global warming; heat; ELEVATED CO2; HIGH-TEMPERATURE; CLIMATE-CHANGE; SUSTAINED ENHANCEMENT; CHLOROPLAST MEMBRANES; PHOTOSYSTEM-II; RISING CO2; PHOTOSYNTHESIS; ARABICA; LEAVES;
D O I
10.3389/fpls.2016.00947
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Modeling studies have predicted that coffee crop will be endangered by future global warming, but recent reports highlighted that high [CO2] can mitigate heat impacts on coffee. This work aimed at identifying heat protective mechanisms promoted by CO2 in Coffea arabica (cv. Icatu and IPR108) and Coffea canephora cv. Conilon CL153. Plants were grown at 25/20 degrees C (day/night), under 380 or 700 mu L CO2 L-1, and then gradually submitted to 31/25, 37/30, and 42/34 degrees C. Relevant heat tolerance up to 37/30 degrees C for both [CO2] and all coffee genotypes was observed, likely supported by the maintenance or increase of the pools of several protective molecules (neoxanthin, lutein, carotenes, ohtocopherol, HSP70, raffinose), activities of antioxidant enzymes, such as superoxide dismutase (SOD), ascorbate peroxidase (APX), glutathione reductase (GR), catalase (CAT), and the upregulated expression of some genes (ELIP, Chaperonin 20). However, at 42/34 degrees C a tolerance threshold was reached, mostly in the 380 -plants and Icatu. Adjustments in raffinose, lutein, beta-carotene, alpha-tocopherol and HSP70 pools, and the upregulated expression of genes related to protective (FLIPS, HSP70, Chape 20, and 60) and antioxidant (CAT, CuSOD2, APX Cyt, APX ChI) proteins were largely driven by temperature. However, enhanced [CO2] maintained higher activities of GR (Icatu) and CAT (Icatu and IPR108), kept (or even increased) the Cu,Zn-SOD, APX, and CAT activities, and promoted a greater upregulation of those enzyme genes, as well as those related to HSP70, ELIPs, Chaperonins in CL153, and Icatu. These changes likely favored the maintenance of reactive oxygen species (ROS) at controlled levels and contributed to mitigate of photosystem II photoinhibition at the highest temperature. Overall, our results highlighted the important role of enhanced [CO2] on the coffee crop acclimation and sustainability under predicted future global warming scenarios.
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页数:18
相关论文
共 72 条
[1]   Elevated CO2 mitigates drought and temperature-induced oxidative stress differently in grasses and legumes [J].
AbdElgawad, Hamada ;
Farfan-Vignolo, Evelyn Roxana ;
de Vos, Dirk ;
Asard, Han .
PLANT SCIENCE, 2015, 231 :1-10
[2]  
Adamska I, 2001, ADV PHOTOSYNTH, V11, P487
[3]   The response of photosynthesis and stomatal conductance to rising [CO2]:: mechanisms and environmental interactions [J].
Ainsworth, Elizabeth A. ;
Rogers, Alistair .
PLANT CELL AND ENVIRONMENT, 2007, 30 (03) :258-270
[4]  
Asada K., 1994, PHOTOINHIBITION PHOT, P128
[5]   Sustained enhancement of photosynthesis in mature deciduous forest trees after 8 years of free air CO2 enrichment [J].
Bader, Martin Karl-Friedrich ;
Siegwolf, Rolf ;
Koerner, Christian .
PLANTA, 2010, 232 (05) :1115-1125
[6]   The impact of cold on photosynthesis in genotypes of Coffea spp.-Photosystem sensitivity, photoprotective mechanisms and gene expression [J].
Batista-Santos, P. ;
Lidon, F. C. ;
Fortunato, A. ;
Leitao, A. E. ;
Lopes, E. ;
Partelli, F. ;
Ribeiro, A. I. ;
Ramalho, J. C. .
JOURNAL OF PLANT PHYSIOLOGY, 2011, 168 (08) :792-806
[7]   Expression of three galactinol synthase isoforms in Coffea arabica L. and accumulation of raffinose and stachyose in response to abiotic stresses [J].
Bento dos Santos, Tiago ;
Budzinski, Ilara G. F. ;
Marur, Celso J. ;
Petkowicz, Carmen L. O. ;
Pereira, Luiz F. P. ;
Vieira, Luiz G. E. .
PLANT PHYSIOLOGY AND BIOCHEMISTRY, 2011, 49 (04) :441-448
[8]   Plant tolerance to high temperature in a changing environment: scientific fundamentals and production of heat stress-tolerant crops [J].
Bita, Craita E. ;
Gerats, Tom .
FRONTIERS IN PLANT SCIENCE, 2013, 4
[9]   Impacts of climate change on natural forest productivity - evidence since the middle of the 20th century [J].
Boisvenue, C ;
Running, SW .
GLOBAL CHANGE BIOLOGY, 2006, 12 (05) :862-882
[10]   Proteomic response of rice seedling leaves to elevated CO2 levels [J].
Bokhari, Saleem A. ;
Wan, Xiang-Yuan ;
Yang, Yi-Wei ;
Zhou, Lu ;
Tang, Wan-Li ;
Liu, Jin-Yuan .
JOURNAL OF PROTEOME RESEARCH, 2007, 6 (12) :4624-4633