Development and evaluation of a field-based high-throughput phenotyping platform

被引:241
作者
Andrade-Sanchez, Pedro [1 ]
Gore, Michael A. [2 ]
Heun, John T. [1 ]
Thorp, Kelly R. [2 ]
Carmo-Silva, A. Elizabete [2 ]
French, Andrew N. [2 ]
Salvucci, Michael E. [2 ]
White, Jeffrey W. [2 ]
机构
[1] Univ Arizona, Maricopa Agr Ctr, Dept Agr & Biosyst Engn, Maricopa, AZ 85138 USA
[2] ARS, USDA, Arid Land Agr Res Ctr, Maricopa, AZ 85138 USA
基金
美国国家科学基金会; 英国生物技术与生命科学研究理事会; 美国农业部;
关键词
cotton; genetics; Gossypium barbadense; phenomics; proximal sensing; PHENOMICS; SYSTEM;
D O I
10.1071/FP13126
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Physiological and developmental traits that vary over time are difficult to phenotype under relevant growing conditions. In this light, we developed a novel system for phenotyping dynamic traits in the field. System performance was evaluated on 25 Pima cotton (Gossypium barbadense L.) cultivars grown in 2011 at Maricopa, Arizona. Field-grown plants were irrigated under well watered and water-limited conditions, with measurements taken at different times on 3 days in July and August. The system carried four sets of sensors to measure canopy height, reflectance and temperature simultaneously on four adjacent rows, enabling the collection of phenotypic data at a rate of 0.84ha h(-1). Measurements of canopy height, normalised difference vegetation index and temperature all showed large differences among cultivars and expected interactions of cultivars with water regime and time of day. Broad-sense heritabilities (H-2)were highest for canopy height (H-2=0.86-0.96), followed by the more environmentally sensitive normalised difference vegetation index (H-2=0.28-0.90) and temperature (H-2=0.01-0.90) traits. We also found a strong agreement (r(2)=0.35-0.82) between values obtained by the system, and values from aerial imagery and manual phenotyping approaches. Taken together, these results confirmed the ability of the phenotyping system to measure multiple traits rapidly and accurately.
引用
收藏
页码:68 / 79
页数:12
相关论文
共 25 条
[1]  
Allen R. G., 1998, FAO Irrigation and Drainage Paper
[2]  
[Anonymous], 2003, Estimating and Interpreting Heritability for Plant Breeding: An Update, DOI DOI 10.1002/9780470650202.CH2
[3]   AN ANALYSIS OF TRANSFORMATIONS [J].
BOX, GEP ;
COX, DR .
JOURNAL OF THE ROYAL STATISTICAL SOCIETY SERIES B-STATISTICAL METHODOLOGY, 1964, 26 (02) :211-252
[4]  
Brown P.W., 1989, 8733 U AR
[5]   Decreased CO2 availability and inactivation of Rubisco limit photosynthesis in cotton plants under heat and drought stress in the field [J].
Carmo-Silva, A. Elizabete ;
Gore, Michael A. ;
Andrade-Sanchez, Pedro ;
French, Andrew N. ;
Hunsaker, Doug J. ;
Salvucci, Michael E. .
ENVIRONMENTAL AND EXPERIMENTAL BOTANY, 2012, 83 :1-11
[6]   A semi-automatic system for high throughput phenotyping wheat cultivars in-field conditions: description and first results [J].
Comar, Alexis ;
Burger, Philippe ;
de Solan, Benoit ;
Baret, Frederic ;
Daumard, Fabrice ;
Hanocq, Jean-Francois .
FUNCTIONAL PLANT BIOLOGY, 2012, 39 (10-11) :914-924
[7]   Phenomics - technologies to relieve the phenotyping bottleneck [J].
Furbank, Robert T. ;
Tester, Mark .
TRENDS IN PLANT SCIENCE, 2011, 16 (12) :635-644
[8]  
FUSSELL J, 1986, PHOTOGRAMM ENG REM S, V52, P1507
[9]   Modelling of diurnal cycles of brightness temperature extracted from METEOSAT data [J].
Göttsche, FM ;
Olesen, FS .
REMOTE SENSING OF ENVIRONMENT, 2001, 76 (03) :337-348
[10]   Phenomics: the next challenge [J].
Houle, David ;
Govindaraju, Diddahally R. ;
Omholt, Stig .
NATURE REVIEWS GENETICS, 2010, 11 (12) :855-866