A model of the coupling between respiration, active processes and passive transport

被引:20
作者
Dewar, RC [1 ]
机构
[1] INRA, Ctr Bordeaux, Unite Bioclimatol, F-33883 Villenave Dornon, France
关键词
coupling; growth; maintenance; model; process; respiration; transport;
D O I
10.1006/anbo.2000.1211
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
A biochemically-aggregated model is introduced which captures the essential features of the coupling between respiration and active (energy-requiring) plant processes. Each active process is characterized as the conversion of ATP and NADPH (represented by X*) and a substrate (S) to ADP and NADP (represented by X) and a product (P) (e.g. for protein synthesis, S = amino-acids, P = protein). For each process, respiration generates X* and CO2 from glucose (C) and X. Respiration and active processes are thus coupled through the turnover of ATP and NADPH, with C and S representing, respectively, the main energetic and material substrates of the overall reaction C + S --> CO2 + P. The model assumes mass action kinetics for the reaction rates, and incorporates passive transport of C and S to the reaction sites from an external region (e.g. phloem) with substrate concentrations C-e and S-e. The behaviour of this coupled respiration-active process-passive transport model is explored analytically. The main results are as follows: (1) In general, the respiration rate coupled to a given active process S --> P has a non-rectangular hyperbolic dependence on C-e and S-e. (2) Because glucose provides both the energetic and material substrates for structural growth (cellulose synthesis), the associated respiration rate is proportional to C-e. (3) When the passive transport of C and/or S for the profess S --> P becomes limiting, the associated respiration rate reduces to a 'Blackmann response' which is either entirely C-limited or entirely S-limited, depending on the relative availability of C-e and S-e. (4) These predictions are used to interpret empirically-derived growth and maintenance respiration coefficients, as well as widely-reported observations concerning the respiration/photosynthesis ratio and the response of respiration to carbohydrate concentration. (5) It is concluded that the model provides a simple, realistic, physiologically-based representation of the components of respiration, which can be used in plant growth models that separate substrates from structure. (C) 2000 Annals of Botany Company.
引用
收藏
页码:279 / 286
页数:8
相关论文
共 32 条
[1]  
Amthor Jeffrey S., 1994, P501
[2]  
AMTHOR JS, 2000, IN PRESS ANN BOT, V86
[3]   THE EFFECT OF A DAY AT LOW IRRADIANCE OF A MAIZE CROP .2. PHOTOSYNTHESIS, TRANSPIRATION AND RESPIRATION [J].
ANDRE, M ;
MASSIMINO, J ;
DAGUENET, A ;
MASSIMINO, D ;
THIERY, J .
PHYSIOLOGIA PLANTARUM, 1982, 54 (03) :283-288
[4]  
[Anonymous], NETH J AGR SCI
[5]   Modelling the components of plant respiration: Some guiding principles [J].
Cannell, MGR ;
Thornley, JHM .
ANNALS OF BOTANY, 2000, 85 (01) :45-54
[6]   EFFECT OF CARBOHYDRATE CONCENTRATION ON THE RESPIRATION RATE OF SOYBEAN [J].
COGGESHALL, BM ;
HODGES, HF .
CROP SCIENCE, 1980, 20 (01) :86-90
[7]  
Cooper EJ, 1975, PHOTOSYNTHESIS PRODU, P459
[8]  
CUNNINGHAM GL, 1977, PHOTOSYNTHETICA, V11, P291
[9]  
DEVRIES FWT, 1974, J THEOR BIOL, V45, P339, DOI DOI 10.1016/0022-5193(74)90119-2
[10]  
DEVRIES FWT, 1975, ANN BOTANY, V39, P77