In Silico Analysis of the Regulation of the Photosynthetic Electron Transport Chain in C3 Plants

被引:42
|
作者
Morales, Alejandro [1 ]
Yin, Xinyou [1 ]
Harbinson, Jeremy [2 ]
Driever, Steven M. [1 ]
Molenaar, Jaap [3 ]
Kramer, David M. [4 ]
Struik, Paul C. [1 ]
机构
[1] Wageningen Univ, Ctr Crop Syst Anal, NL-6700 AK Wageningen, Netherlands
[2] Wageningen Univ, Hort & Prod Physiol, NL-6700 AA Wageningen, Netherlands
[3] Wageningen Univ, Biometris Math & Stat Methods Grp, NL-6700 AA Wageningen, Netherlands
[4] Michigan State Univ, Dept Energy, Plant Res Lab, E Lansing, MI 48823 USA
关键词
CHLOROPLAST ATP SYNTHASE; STEADY-STATE PHOTOSYNTHESIS; PHOTOSYSTEM-I; CO2; ASSIMILATION; RUBISCO ACTIVASE; FLUORESCENCE INDUCTION; NITROGEN ASSIMILATION; ARABIDOPSIS-THALIANA; CF0CF1-ATP SYNTHASE; EXCITATION-ENERGY;
D O I
10.1104/pp.17.00779
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
We present a new simulation model of the reactions in the photosynthetic electron transport chain of C3 species. We show that including recent insights about the regulation of the thylakoid proton motive force, ATP/NADPH balancing mechanisms (cyclic and noncyclic alternative electron transport), and regulation of Rubisco activity leads to emergent behaviors that may affect the operation and regulation of photosynthesis under different dynamic environmental conditions. The model was parameterized with experimental results in the literature, with a focus on Arabidopsis (Arabidopsis thaliana). A dataset was constructed from multiple sources, including measurements of steady-state and dynamic gas exchange, chlorophyll fluorescence, and absorbance spectroscopy under different light intensities and CO2, to test predictions of the model under different experimental conditions. Simulations suggested that there are strong interactions between cyclic and noncyclic alternative electron transport and that an excess capacity for alternative electron transport is required to ensure adequate redox state and lumen pH. Furthermore, the model predicted that, under specific conditions, reduction of ferredoxin by plastoquinol is possible after a rapid increase in light intensity. Further analysis also revealed that the relationship between ATP synthesis and proton motive force was highly regulated by the concentrations of ATP, ADP, and inorganic phosphate, and this facilitated an increase in nonphotochemical quenching and proton motive force under conditions where metabolism was limiting, such as low CO2, high light intensity, or combined high CO2 and high light intensity. The model may be used as an in silico platform for future research on the regulation of photosynthetic electron transport.
引用
收藏
页码:1247 / 1261
页数:15
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