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本文引用的文献

1
Diffusion of CO and other gases inside leaves.二氧化碳及其他气体在叶片内部的扩散
New Phytol. 1994 Mar;126(3):449-479. doi: 10.1111/j.1469-8137.1994.tb04244.x.
2
Flooding tolerance: suites of plant traits in variable environments.耐淹性:可变环境中的植物性状组合
Funct Plant Biol. 2009 Aug;36(8):665-681. doi: 10.1071/FP09144.
3
Genotype effects on internal gas gradients in apple fruit.基因型对苹果果实内部气体梯度的影响。
J Exp Bot. 2010 Jun;61(10):2745-55. doi: 10.1093/jxb/erq108. Epub 2010 May 6.
4
Theoretical reconsiderations when estimating the mesophyll conductance to CO(2) diffusion in leaves of C(3) plants by analysis of combined gas exchange and chlorophyll fluorescence measurements.通过联合气体交换和叶绿素荧光测量分析估算C3植物叶片中CO2扩散的叶肉导度时的理论再思考。
Plant Cell Environ. 2009 Nov;32(11):1513-24. doi: 10.1111/j.1365-3040.2009.02016.x. Epub 2009 Jun 17.
5
Regulation of respiration when the oxygen availability changes.当氧气供应发生变化时的呼吸调节。
Physiol Plant. 2009 Dec;137(4):383-91. doi: 10.1111/j.1399-3054.2009.01253.x. Epub 2009 May 21.
6
The oxygen status of the developing seed.发育中种子的氧状态。
New Phytol. 2009;182(1):17-30. doi: 10.1111/j.1469-8137.2008.02752.x. Epub 2008 Oct 1.
7
Microscale mechanisms of gas exchange in fruit tissue.果实组织中气体交换的微观机制。
New Phytol. 2009;182(1):163-174. doi: 10.1111/j.1469-8137.2008.02732.x. Epub 2009 Jan 14.
8
Measuring and interpreting respiratory critical oxygen pressures in roots.测量和解读根系中的呼吸临界氧分压
Ann Bot. 2009 Jan;103(2):281-93. doi: 10.1093/aob/mcn177. Epub 2008 Sep 26.
9
Three-dimensional gas exchange pathways in pome fruit characterized by synchrotron x-ray computed tomography.通过同步加速器X射线计算机断层扫描表征的梨果三维气体交换途径
Plant Physiol. 2008 Jun;147(2):518-27. doi: 10.1104/pp.108.118935. Epub 2008 Apr 16.
10
A continuum model for metabolic gas exchange in pear fruit.梨果实代谢性气体交换的连续介质模型。
PLoS Comput Biol. 2008 Mar 7;4(3):e1000023. doi: 10.1371/journal.pcbi.1000023.

一种用于水果气体交换的三维多尺度模型。

A three-dimensional multiscale model for gas exchange in fruit.

机构信息

Flanders Center of Postharvest Technology, BIOSYST-MeBioS, Katholieke Universiteit Leuven, B-3001 Leuven, Belgium.

出版信息

Plant Physiol. 2011 Mar;155(3):1158-68. doi: 10.1104/pp.110.169391. Epub 2011 Jan 11.

DOI:10.1104/pp.110.169391
PMID:21224337
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3046576/
Abstract

Respiration of bulky plant organs such as roots, tubers, stems, seeds, and fruit depends very much on oxygen (O2) availability and often follows a Michaelis-Menten-like response. A multiscale model is presented to calculate gas exchange in plants using the microscale geometry of the tissue, or vice versa, local concentrations in the cells from macroscopic gas concentration profiles. This approach provides a computationally feasible and accurate analysis of cell metabolism in any plant organ during hypoxia and anoxia. The predicted O2 and carbon dioxide (CO2) partial pressure profiles compared very well with experimental data, thereby validating the multiscale model. The important microscale geometrical features are the shape, size, and three-dimensional connectivity of cells and air spaces. It was demonstrated that the gas-exchange properties of the cell wall and cell membrane have little effect on the cellular gas exchange of apple (Malus×domestica) parenchyma tissue. The analysis clearly confirmed that cells are an additional route for CO2 transport, while for O2 the intercellular spaces are the main diffusion route. The simulation results also showed that the local gas concentration gradients were steeper in the cells than in the surrounding air spaces. Therefore, to analyze the cellular metabolism under hypoxic and anoxic conditions, the microscale model is required to calculate the correct intracellular concentrations. Understanding the O2 response of plants and plant organs thus not only requires knowledge of external conditions, dimensions, gas-exchange properties of the tissues, and cellular respiration kinetics but also of microstructure.

摘要

大块植物器官(如根、块茎、茎、种子和果实)的呼吸非常依赖于氧气 (O2) 的可用性,通常遵循米氏酶动力学响应。提出了一种多尺度模型,用于使用组织的微尺度几何形状计算植物的气体交换,或者反之亦然,从宏观气体浓度分布计算细胞内的局部浓度。这种方法为任何植物器官在缺氧和缺氧条件下的细胞代谢提供了一种计算上可行且准确的分析。预测的 O2 和二氧化碳 (CO2) 分压分布与实验数据非常吻合,从而验证了多尺度模型。重要的微尺度几何特征是细胞和空气空间的形状、大小和三维连通性。研究表明,细胞壁和细胞膜的气体交换特性对苹果(Malus×domestica)果肉组织的细胞气体交换影响很小。分析清楚地证实了细胞是 CO2 运输的另一个途径,而对于 O2,细胞间空间是主要的扩散途径。模拟结果还表明,细胞内的局部气体浓度梯度比周围空气空间中的更陡峭。因此,要分析缺氧和缺氧条件下的细胞代谢,需要使用微尺度模型来计算正确的细胞内浓度。因此,要了解植物和植物器官的 O2 响应,不仅需要了解外部条件、组织的尺寸、气体交换特性和细胞呼吸动力学,还需要了解微观结构。