Morales Yeimy, Tortajada Marta, Picó Jesús, Vehí Josep, Llaneras Francisco
BMC Syst Biol. 2014 Dec 24;8:142. doi: 10.1186/s12918-014-0142-y.
Constraint-based metabolic models and flux balance analysis (FBA) have been extensively used in the last years to investigate the behavior of cells and also as basis for different industrial applications. In this context, this work provides a validation of a small-sized FBA model of the yeast Pichia pastoris. Our main objective is testing how accurate is the hypothesis of maximum growth to predict the behavior of P. pastoris in a range of experimental environments.
A constraint-based model of P. pastoris was previously validated using metabolic flux analysis (MFA). In this paper we have verified the model ability to predict the cells behavior in different conditions without introducing measurements, experimental parameters, or any additional constraint, just by assuming that cells will make the best use of the available resources to maximize its growth. In particular, we have tested FBA model ability to: (a) predict growth yields over single substrates (glucose, glycerol, and methanol); (b) predict growth rate, substrate uptakes, respiration rates, and by-product formation in scenarios where different substrates are available (glucose, glycerol, methanol, or mixes of methanol and glycerol); (c) predict the different behaviors of P. pastoris cultures in aerobic and hypoxic conditions for each single substrate. In every case, experimental data from literature are used as validation.
We conclude that our predictions based on growth maximisation are reasonably accurate, but still far from perfect. The deviations are significant in scenarios where P. pastoris grows on methanol, suggesting that the hypothesis of maximum growth could be not dominating in these situations. However, predictions are much better when glycerol or glucose are used as substrates. In these scenarios, even if our FBA model is small and imposes a strong assumption regarding how cells will regulate their metabolic fluxes, it provides reasonably good predictions in terms of growth, substrate preference, product formation, and respiration rates.
基于约束的代谢模型和通量平衡分析(FBA)在过去几年中被广泛用于研究细胞行为,并作为不同工业应用的基础。在此背景下,本研究对酵母毕赤酵母的一个小型FBA模型进行了验证。我们的主要目标是测试最大生长假设在预测毕赤酵母在一系列实验环境中的行为时的准确程度。
先前已使用代谢通量分析(MFA)对毕赤酵母的基于约束的模型进行了验证。在本文中,我们验证了该模型在不引入测量值、实验参数或任何额外约束的情况下预测不同条件下细胞行为的能力,仅假设细胞会充分利用可用资源以实现生长最大化。具体而言,我们测试了FBA模型的以下能力:(a)预测单一底物(葡萄糖、甘油和甲醇)上的生长产量;(b)预测在不同底物(葡萄糖、甘油、甲醇或甲醇与甘油的混合物)可用的情况下的生长速率、底物摄取、呼吸速率和副产物形成;(c)预测每种单一底物在需氧和缺氧条件下毕赤酵母培养物的不同行为。在每种情况下,均使用文献中的实验数据进行验证。
我们得出结论,基于生长最大化的预测相当准确,但仍远非完美。在毕赤酵母以甲醇为底物生长的情况下,偏差较为显著,这表明最大生长假设在这些情况下可能并不占主导地位。然而,当使用甘油或葡萄糖作为底物时,预测效果要好得多。在这些情况下,即使我们的FBA模型规模较小,且对细胞如何调节其代谢通量做出了很强的假设,但在生长、底物偏好、产物形成和呼吸速率方面仍能提供相当不错的预测。