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根系养分吸收动力学的热力学流-力解释:一种用于农学和浮游植物模型的强大形式体系。

The Thermodynamic Flow-Force Interpretation of Root Nutrient Uptake Kinetics: A Powerful Formalism for Agronomic and Phytoplanktonic Models.

作者信息

Le Deunff Erwan, Tournier Pierre-Henri, Malagoli Philippe

机构信息

Université de Caen Basse-Normandie, UFR des Sciences, UMR EVACaen, France; Institut National de la Recherche Agronomique, UMR 950, Écophysiologie Végétale and Agronomie Nutritions NCSCaen, France.

Laboratoire Jacques-Louis Lions, INRIA Paris, EPC Alpines and Université Pierre et Marie Curie Paris 06, UMR 7598 Paris, France.

出版信息

Front Physiol. 2016 Jun 27;7:243. doi: 10.3389/fphys.2016.00243. eCollection 2016.

Abstract

The ion influx isotherms obtained by measuring unidirectional influx across root membranes with radioactive or stable tracers are mostly interpreted by enzyme-substrate-like modeling. However, recent analyses from ion transporter mutants clearly demonstrate the inadequacy of the conventional interpretation of ion isotherms. Many genetically distinct carriers are involved in the root catalytic function. Parameters Vmax and Km deduced from this interpretation cannot therefore be regarded as microscopic parameters of a single transporter, but are instead macroscopic parameters (V[Formula: see text] and K[Formula: see text], apparent maximum velocity and affinity constant) that depend on weighted activities of multiple transporters along the root. The flow-force interpretation based on the thermodynamic principle of irreversible processes is an alternative macroscopic modeling approach for ion influx isotherms in which macroscopic parameters Lj (overall conductance of the root system for the substrate j) and πj (thermodynamic parameter when Jj = 0) have a straightforward meaning with respect to the biological sample studied. They characterize the efficiency of the entire root catalytic structure without deducing molecular characteristics. Here we present the basic principles of this theory and how its use can be tested and improved by changing root pre- and post-wash procedures before influx measurements in order to come as close as possible to equilibrium conditions. In addition, the constant values of Vm and Km in the Michaelis-Menten (MM) formalism of enzyme-substrate interpretation do not reflect variations in response to temperature, nutrient status or nutrient regimes. The linear formalism of the flow-force approach, which integrates temperature effect on nutrient uptake, could usefully replace MM formalism in the 1-3-dimension models of plants and phytoplankton. This formalism offers a simplification of parametrization to help find more realistic analytical expressions and numerical solution for root nutrient uptake.

摘要

通过使用放射性或稳定性示踪剂测量根细胞膜上的单向流入来获得离子流入等温线,这些等温线大多通过类似酶 - 底物的模型来解释。然而,最近对离子转运体突变体的分析清楚地表明了对离子等温线传统解释的不足之处。许多基因上不同的载体参与了根的催化功能。因此,从这种解释中推导出来的参数Vmax和Km不能被视为单个转运体的微观参数,而是宏观参数(V[公式:见原文]和K[公式:见原文],表观最大速度和亲和常数),它们取决于沿根的多个转运体的加权活性。基于不可逆过程热力学原理的流 - 力解释是一种用于离子流入等温线的替代宏观建模方法,其中宏观参数Lj(根系对底物j的总电导率)和πj(当Jj = 0时的热力学参数)对于所研究的生物样品具有直接的意义。它们表征了整个根催化结构的效率,而无需推导分子特征。在这里,我们介绍该理论的基本原理,以及如何通过在流入测量之前改变根的预洗和后洗程序来测试和改进其应用,以便尽可能接近平衡条件。此外,酶 - 底物解释的米氏(MM)形式中Vm和Km的恒定值不能反映对温度、营养状况或营养方案的响应变化。流 - 力方法的线性形式整合了温度对养分吸收的影响,可以有效地在植物和浮游植物的1 - 3维模型中取代MM形式。这种形式简化了参数化,有助于找到更现实的根系养分吸收分析表达式和数值解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d26c/4921492/d57f040fb6b3/fphys-07-00243-g0001.jpg

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