Canopy-scale relationships between stomatal conductance and photosynthesis in irrigated rice

被引:47
|
作者
Ono, Keisuke [1 ]
Maruyama, Atsushi [2 ]
Kuwagata, Tsuneo [1 ]
Mano, Masayoshi [3 ]
Takimoto, Takahiro [1 ]
Hayashi, Kentaro [1 ]
Hasegawa, Toshihiro [1 ]
Miyata, Akira [1 ]
机构
[1] Natl Inst Agroenvironm Sci, Tsukuba, Ibaraki 3058604, Japan
[2] Natl Agr & Food Res Org, Kumamoto 8611192, Japan
[3] Chiba Univ, Grad Sch Hort, Matsudo, Chiba 2718510, Japan
关键词
agroecosystems; canopy micrometeorology; CO2; flux; crop physiology; eddy covariance; evapotranspiration; leaf nitrogen; net ecosystem exchange; surface energy balance; water-use efficiency; PATH EDDY COVARIANCE; LEAF NITROGEN; SEASONAL-VARIATION; CARBON-DIOXIDE; AVAILABLE ENERGY; QUALITY-CONTROL; USE EFFICIENCY; GAS-EXCHANGE; ELEVATED CO2; 2-LEAF MODEL;
D O I
10.1111/gcb.12188
中图分类号
X176 [生物多样性保护];
学科分类号
090705 ;
摘要
Modeling stomatal behavior is critical in research on land-atmosphere interactions and climate change. The most common model uses an existing relationship between photosynthesis and stomatal conductance. However, its parameters have been determined using infrequent and leaf-scale gas-exchange measurements and may not be representative of the whole canopy in time and space. In this study, we used a top-down approach based on a double-source canopy model and eddy flux measurements throughout the growing season. Using this approach, we quantified the canopy-scale relationship between gross photosynthesis and stomatal conductance for 3years and their relationships with leaf nitrogen content throughout each growing season above a paddy rice canopy in Japan. The canopy-averaged stomatal conductance (gsc) increased with increasing gross photosynthesis per unit green leaf area (Ag), as was the case with leaf-scale measurements, and 41-90% of its variation was explained by variations in Ag adjusted to account for the leaf-to-air vapor-pressure deficit and CO2 concentration using the Leuning model. The slope (m) in this model (gsc versus the adjusted Ag) was almost constant within a 15-day period, but changed seasonally. The m values determined using an ensemble dataset for two mid-growing-season 15-day periods were 30.8 (SE=0.5), 29.9 (SE=0.7), and 29.9 (SE=0.6) in 2004, 2005, and 2006, respectively; the overall mid-season value was 30.3 and did not greatly differ among the 3years. However, m appeared to be higher during the early and late growing seasons. The ontogenic changes in leaf nitrogen content strongly affected Ag and thus gsc. In addition, we have discussed the agronomic impacts of the interactions between leaf nitrogen content and gsc. Despite limitations in the observations and modeling, our canopy-scale results emphasize the importance of continuous, season-long estimates of stomatal model parameters for crops using top-down approaches.
引用
收藏
页码:2209 / 2220
页数:12
相关论文
共 50 条
  • [1] PHOTOSYNTHESIS AND STOMATAL CONDUCTANCE RELATED TO REFLECTANCE ON THE CANOPY SCALE
    VERMA, SB
    SELLERS, PJ
    WALTHALL, CL
    HALL, FG
    KIM, J
    GOETZ, SJ
    REMOTE SENSING OF ENVIRONMENT, 1993, 44 (01) : 103 - 116
  • [2] Application of a coupled model of photosynthesis, stomatal conductance and transpiration for rice leaves and canopy
    Li S.
    Fleisher D.H.
    Wang Z.
    Barnaby J.
    Timlin D.
    Reddy V.R.
    Computers and Electronics in Agriculture, 2021, 182
  • [3] STOMATAL CONDUCTANCE AND PHOTOSYNTHESIS IN A MATURE SCOTS PINE FOREST .3. VARIATION IN CANOPY CONDUCTANCE AND CANOPY PHOTOSYNTHESIS
    BEADLE, CL
    TALBOT, H
    NEILSON, RE
    JARVIS, PG
    JOURNAL OF APPLIED ECOLOGY, 1985, 22 (02) : 587 - 595
  • [4] A novel QTL associated with rice canopy temperature difference affects stomatal conductance and leaf photosynthesis
    Fukuda, Atsunori
    Kondo, Katsuhiko
    Ikka, Takashi
    Takai, Toshiyuki
    Tanabata, Takanari
    Yamamoto, Toshio
    BREEDING SCIENCE, 2018, 68 (03) : 305 - 315
  • [5] On estimating canopy photosynthesis and stomatal conductance in a deciduous forest with clumped foliage
    Baldocchi, Dennis D.
    Hutchison, Boyd A.
    TREE PHYSIOLOGY, 1986, 2 (1-3) : 155 - 168
  • [6] Estimating canopy stomatal conductance and photosynthesis in apple trees by upscaling parameters from the leaf scale to the canopy scale in Jinzhong Basin on Loess Plateau
    Gao, Guanlong
    Hao, Yulian
    Feng, Qi
    Guo, Xiaoyun
    Shi, Junxi
    Wu, Bo
    PLANT PHYSIOLOGY AND BIOCHEMISTRY, 2023, 202
  • [7] Temperature responses of photosynthesis and stomatal conductance in rice and wheat plants
    Huang, Guanjun
    Yang, Yuhan
    Zhu, Lele
    Peng, Shaobing
    Li, Yong
    AGRICULTURAL AND FOREST METEOROLOGY, 2021, 300
  • [8] A two-big-leaf model for canopy temperature, photosynthesis, and stomatal conductance
    Dai, YJ
    Dickinson, RE
    Wang, YP
    JOURNAL OF CLIMATE, 2004, 17 (12) : 2281 - 2299
  • [9] CANOPY PHOTOSYNTHESIS, STOMATAL CONDUCTANCE AND YIELD OF SOLANUM-TUBEROSUM GROWN IN A WARM CLIMATE
    BHAGSARI, AS
    WEBB, RE
    PHATAK, SC
    JAWORSKI, CA
    AMERICAN POTATO JOURNAL, 1988, 65 (07): : 393 - 406
  • [10] Carbonyl sulfide (COS) as a tracer for canopy photosynthesis, transpiration and stomatal conductance: potential and limitations
    Wohlfahrt, Georg
    Brilli, Federico
    Hoertnagl, Lukas
    Xu, Xiaobin
    Bingemer, Heinz
    Hansel, Armin
    Loreto, Francesco
    PLANT CELL AND ENVIRONMENT, 2012, 35 (04): : 657 - 667