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Apparent respiratory quotient observed in headspace of static respirometers underestimates cellular respiratory quotient of pear fruit

机译:静态呼吸器顶部空间中观察到表观呼吸商低估了梨果细胞呼吸器

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A three-compartment non-equilibrium gas transport model of 'Conference' pear fruit under controlled atmosphere (CA) storage was developed. The model fruit tissue consists of cells, in which the concentrations of respiratory gasses can show gradients, and intercellular space, in which gasses are uniformly distributed. Non-equilibrium of gas concentrations in the cell compartment and intercellular space is assumed. A respiration model based on Michaelis-Menten respiration kinetics without inhibition of respiration by CO2 and incorporating down-regulation of the maximal O-2 consumption rate in response to O-2 was developed. Conversion of CO2 dissolved in the cell compartment to hydrogen carbonate at a constant pH of 5.0 was included. The model was validated based on experimental data of 'Conference' pear fruit during a complete depletion experiment starting from 3.58 mol m(-3) O-2 and 0.00 mol m(-3) CO2. Model predictions match experimental observations well. Gas concentrations in the cell compartment were found to be in equilibrium with the gas concentrations in the intercellular space. The model was used to calculate apparent respiration rates and RQ as if measured in the storage headspace. Apparent values were compared to actual values in the fruit cells and it was found that apparent respiration rates and RQ, calculated based on headspace measurements, underestimated the actual respiration rate and respiratory quotient in the fruit cells. Relative differences of 4 %, 41 % and 41 % were found for the apparent O-2 consumption rate, CO2 production rate and RQ, respectively. This affects the design of commercial RQ based DCA systems.
机译:开发了一种三室非平衡气体运输模型,“会议”梨果实(CA)储存下的“会议”梨果实。模型果组织由细胞组成,其中呼吸气体的浓度可以显示梯度和细胞间空间,其中气体均匀地分布。假设在细胞室和细胞间空间中的气体浓度的非平衡。开发了一种基于MICHAELIS-MENTEN呼吸动力学的呼吸模型,其通过CO 2抑制呼吸并掺入响应O-2的最大O-2消耗率的下调。将溶解在细胞室中的CO 2转化为恒定pH为5.0的碳酸氢盐。在从3.58mol m(-3)O-2和0.00 mol M(-3)CO 2开始的完全耗尽实验期间,基于“会议”梨果的实验数据验证了该模型。模型预测匹配实验观察良好。发现细胞室中的气体浓度与细胞间空间中的气体浓度有平衡。该模型用于计算表观呼吸速率和RQ,如在存储顶部空间中测量。将表观值与果细胞中的实际值进行比较,发现表观呼吸速率和RQ基于顶空测量计算,低估了果细胞中的实际呼吸率和呼吸商。对于表观O-2消耗率,二氧化碳生产率和RQ,发现了4%,41%和41%的相对差异。这会影响基于商业RQ的DCA系统的设计。

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