Low light intensity elongates period and defers peak time of photosynthesis: a computational approach to circadian-clock-controlled photosynthesis in tomato

Author:

Huang Ting1,Liu Hui1,Tao Jian-Ping12,Zhang Jia-Qi1,Zhao Tong-Min3,Hou Xi-Lin1,Xiong Ai-Sheng1,You Xiong4

Affiliation:

1. Nanjing Agricultural University/State Key Laboratory of Crop Genetics and Germplasm Enhancement/Key Laboratory of Horticultural Crop Biology and Germplasm Creation in East China of Ministry of Agriculture and Rural Affairs Nanjing College of Horticulture, 210095, Jiangsu, China

2. Jiangsu Province Academy of Agricultural Sciences The Institute of Agricultural Information, , Nanjing 210014, Jiangsu, China

3. Jiangsu Province Academy of Agricultural Sciences Laboratory for Genetic Improvement of High Efficiency Horticultural Crops in Jiangsu Province, Institute of Vegetable Crop, , Nanjing 210014, Jiangsu, China

4. Nanjing Agricultural University College of Sciences, , Nanjing 210095, Jiangsu China

Abstract

Abstract Photosynthesis is involved in the essential process of transforming light energy into chemical energy. Although the interaction between photosynthesis and the circadian clock has been confirmed, the mechanism of how light intensity affects photosynthesis through the circadian clock remains unclear. Here, we propose a first computational model for circadian-clock-controlled photosynthesis, which consists of the light-sensitive protein P, the core oscillator, photosynthetic genes, and parameters involved in the process of photosynthesis. The model parameters were determined by minimizing the cost function ( $\boldsymbol{\delta} =\mathbf{8.56}$), which is defined by the errors of expression levels, periods, and phases of the clock genes (CCA1, PRR9, TOC1, ELF4, GI, and RVE8). The model recapitulates the expression pattern of the core oscillator under moderate light intensity (100 μmol m −2 s−1). Further simulation validated the dynamic behaviors of the circadian clock and photosynthetic outputs under low (62.5 μmol m−2 s−1) and normal (187.5 μmol m−2 s−1) intensities. When exposed to low light intensity, the peak times of clock and photosynthetic genes were shifted backward by 1–2 hours, the period was elongated by approximately the same length, and the photosynthetic parameters attained low values and showed delayed peak times, which confirmed our model predictions. Our study reveals a potential mechanism underlying the circadian regulation of photosynthesis by the clock under different light intensities in tomato.

Funder

National Natural Science Foundation of China

National Natural Science Foundation of Jiangsu Province, China

Jiangsu Agricultural Science and Technology Innovation Fund

China Postdoctoral Science Foundation

Priority Academic Program Development of Jiangsu Higher Education Institution Project

Publisher

Oxford University Press (OUP)

Subject

Horticulture,Plant Science,Genetics,Biochemistry,Biotechnology

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