BIOSYST-MeBioS, Katholieke Universiteit Leuven, Willem de Croylaan 42, B-3001 Leuven, Belgium.
J Exp Bot. 2010 May;61(8):2071-81. doi: 10.1093/jxb/erq026. Epub 2010 Mar 1.
A two-dimensional multiscale gas exchange model was developed to evaluate the effect of ambient conditions, fruit size, and maturity on intracellular O(2) and CO(2) concentrations in pear fruit via computational analysis. The model consists of interconnected submodels that describe the gas exchange at the macroscopic scale of the fruit and the microscopic scale of the cells. The multiscale model resulted in a comprehensive description of gas exchange at different scales. The macroscale model was used to describe the gas exchange of the fruit under controlled atmosphere conditions while corresponding intracellular concentrations of microstructure tissue were computed from the microscale. Ripening of the fruit increased the risk of physiological disorders, since increased respiration resulted in anoxia in the fruit centre even under typical storage conditions.
我们开发了一个二维多尺度气体交换模型,通过计算分析来评估环境条件、果实大小和成熟度对梨果实细胞内 O(2)和 CO(2)浓度的影响。该模型由相互连接的子模型组成,描述了果实宏观尺度和细胞微观尺度的气体交换。多尺度模型实现了不同尺度气体交换的综合描述。利用宏观模型描述了果实在控制大气条件下的气体交换,而微观结构组织的相应细胞内浓度则由微观模型计算得出。果实的成熟会增加其发生生理紊乱的风险,因为在典型的储存条件下,呼吸作用的增加会导致果实中心缺氧。