Plant water status and genotype affect fruit respiration in grapevines

被引:9
作者
Hernandez-Montes, Esther [1 ,2 ]
Escalona, Jose Mariano [1 ]
Tomas, Magdalena [1 ]
Medrano, Hipolito [1 ]
机构
[1] Balearic Isl Univ UIB, Dept Biol, Res Grp Plant Biol Mediterranean Condit, Palma De Mallorca 07122, Spain
[2] Washington State Univ, Irrigated Agr Res & Extens Ctr, 24106 N Bunn Rd, Prosser, WA 99350 USA
关键词
USE EFFICIENCY; PHOTOSYNTHESIS; TRANSPIRATION; CANOPIES; EXCHANGE; DEFICIT; STRESS;
D O I
10.1111/ppl.13093
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
An understanding of fruit gas exchange is necessary to determine the carbon balance in grapevines, but little attention has been paid to the relationships among fruit respiration, plant water status and genetic variability. The effect of plant water status and genotype on cluster respiration was studied over two seasons (2013 and 2014) under field conditions using a whole cluster respiration chamber. Whole cluster CO2 fluxes were measured in growing grapevines at hard-green, veraison and ripening stages under irrigated and non-irrigated conditions, and under light and dark conditions in two grapevine varieties, Tempranillo and Grenache. A direct relationship between cluster CO2 efflux and plant water status was found at hard-green stage. Genotype influenced the fruit CO2 efflux that resulted in higher carbon losses in Tempranillo than in Grenache. Fruit respiration rates decreased from the first berry developmental stages to ripening stage. The integration of fruit respiration rates under light and dark conditions showed the magnitude of fruit carbon losses and gains as well as interesting variety and environmental conditions effects on those processes.
引用
收藏
页码:544 / 554
页数:11
相关论文
共 25 条
[1]  
[Anonymous], 2013, REGIONAL ASSESSMENT
[2]   Non-foliar photosynthesis - a strategy of additional carbon acquisition [J].
Aschan, G ;
Pfanz, H .
FLORA, 2003, 198 (02) :81-97
[3]   Differences among grapevine cultivars in their stomatal behavior and water use efficiency under progressive water stress [J].
Bota, J. ;
Tomas, M. ;
Flexas, J. ;
Medrano, H. ;
Escalona, J. M. .
AGRICULTURAL WATER MANAGEMENT, 2016, 164 :91-99
[4]  
Bota J, 2001, ANN APPL BIOL, V138, P353, DOI 10.1111/j.1744-7348.2001.tb00120.x
[5]   Photosynthetic activity of reproductive organs [J].
Brazel, Ailbhe J. ;
O'Maoileidigh, Diarmuid S. .
JOURNAL OF EXPERIMENTAL BOTANY, 2019, 70 (06) :1737-1753
[6]   Mapping Grape Berry Photosynthesis by Chlorophyll Fluorescence Imaging: The Effect of Saturating Pulse Intensity in Different Tissues [J].
Breia, Richard ;
Vieira, Sonia ;
da Silva, Jorge Marques ;
Geros, Hernani ;
Cunha, Ana .
PHOTOCHEMISTRY AND PHOTOBIOLOGY, 2013, 89 (03) :579-585
[7]   Photosynthetic activity of ripening tomato fruit [J].
Carrara, S ;
Pardossi, A ;
Soldatini, GF ;
Tognoni, F ;
Guidi, L .
PHOTOSYNTHETICA, 2001, 39 (01) :75-78
[8]   Influence of light on grape berry growth and composition varies during fruit development [J].
Dokoozlian, NK ;
Kliewer, WM .
JOURNAL OF THE AMERICAN SOCIETY FOR HORTICULTURAL SCIENCE, 1996, 121 (05) :869-874
[9]   Whole-Plant Water Use in Field Grown Grapevine: Seasonal and Environmental Effects on Water and Carbon Balance [J].
Douthe, Cyril ;
Medrano, Hipolito ;
Tortosa, Ignacio ;
Mariano Escalona, Jose ;
Hernandez-Montes, Esther ;
Pou, Alicia .
FRONTIERS IN PLANT SCIENCE, 2018, 9
[10]  
Escalona JM, 2003, VITIS, V42, P57