A Comprehensive Mechanistic Yeast Model Able to Switch Metabolism According to Growth Conditions

被引:7
作者
Gonzalez-Hernandez, Yusmel [1 ]
Michiels, Emilie [1 ]
Perre, Patrick [1 ]
机构
[1] Univ Paris Saclay, Ctr Europeen Biotechnol & Bioecon CEBB, Lab Genie Proc & Mat, SFR Condorcet FR CNRS 3417,Cent Supelec, 3 Rue Rouges Terres, F-51110 Pomacle, France
来源
FERMENTATION-BASEL | 2022年 / 8卷 / 12期
关键词
yeast; fermentation; Crabtree effect; switching metabolism; modeling; calibration; SACCHAROMYCES-CEREVISIAE; ETHANOL FERMENTATION; GLUCOSE; SUSCEPTIBILITY; OPTIMIZATION; INHIBITION; OXIDATION; GLYCEROL; ALCOHOL; WHEAT;
D O I
10.3390/fermentation8120710
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
This paper proposes a general approach for building a mechanistic yeast model able to predict the shift of metabolic pathways. The mechanistic model accounts for the coexistence of several metabolic pathways (aerobic fermentation, glucose respiration, anaerobic fermentation and ethanol respiration) whose activation depends on growth conditions. This general approach is applied to a commercial strain of Saccharomyces cerevisiae. Stoichiometry and yeast kinetics were mostly determined from aerobic and completely anaerobic experiments. Known parameters were taken from the literature, and the remaining parameters were estimated by inverse analysis using the particle swarm optimization method. The optimized set of parameters allows the concentrations to be accurately determined over time, reporting global mean relative errors for all variables of less than 7 and 11% under completely anaerobic and aerobic conditions, respectively. Different affinities of yeast for glucose and ethanol tolerance under aerobic and anaerobic conditions were obtained. Finally, the model was successfully validated by simulating a different experiment, a batch fermentation process without gas injection, with an overall mean relative error of 7%. This model represents a useful tool for the control and optimization of yeast fermentation systems. More generally, the modeling framework proposed here is intended to be used as a building block of a digital twin of any bioproduction process.
引用
收藏
页数:23
相关论文
共 54 条
[1]   Properties of the Binary Black Hole Merger GW150914 [J].
Abbott, B. P. ;
Abbott, R. ;
Abbott, T. D. ;
Abernathy, M. R. ;
Acernese, F. ;
Ackley, K. ;
Adams, C. ;
Adams, T. ;
Addesso, P. ;
Adhikari, R. X. ;
Adya, V. B. ;
Affeldt, C. ;
Agathos, M. ;
Agatsuma, K. ;
Aggarwal, N. ;
Aguiar, O. D. ;
Aiello, L. ;
Ain, A. ;
Ajith, P. ;
Allen, B. ;
Allocca, A. ;
Altin, P. A. ;
Anderson, S. B. ;
Anderson, W. G. ;
Arai, K. ;
Araya, M. C. ;
Arceneaux, C. C. ;
Areeda, J. S. ;
Arnaud, N. ;
Arun, K. G. ;
Ascenzi, S. ;
Ashton, G. ;
Ast, M. ;
Aston, S. M. ;
Astone, P. ;
Aufmuth, P. ;
Aulbert, C. ;
Babak, S. ;
Bacon, P. ;
Bader, M. K. M. ;
Baker, P. T. ;
Baldaccini, F. ;
Ballardin, G. ;
Ballmer, S. W. ;
Barayoga, J. C. ;
Barclay, S. E. ;
Barish, B. C. ;
Barker, D. ;
Barone, F. ;
Barr, B. .
PHYSICAL REVIEW LETTERS, 2016, 116 (24)
[2]  
Amenaghawon N A., 2012, International Journal of Engineering Research, V2, P798
[3]   Susceptibility and resistance to ethanol in Saccharomyces strains isolated from wild and fermentative environments [J].
Arroyo-Lopez, F. N. ;
Salvado, Z. ;
Tronchoni, J. ;
Guillamon, J. M. ;
Barrio, E. ;
Querol, A. .
YEAST, 2010, 27 (12) :1005-1015
[4]   Opportunities and challenges for model utilization in the biopharmaceutical industry: current versus future state [J].
Babi, Deenesh K. ;
Griesbach, Jan ;
Hunt, Stephen ;
Insaidoo, Francis ;
Roush, David ;
Todd, Robert ;
Staby, Arne ;
Welsh, John ;
Wittkopp, Felix .
CURRENT OPINION IN CHEMICAL ENGINEERING, 2022, 36
[5]   Improvement of very high gravity ethanol fermentation by media supplementation using Saccharomyces cerevisiae [J].
Bafrncová, P ;
Smogrovicová, D ;
Sláviková, I ;
Pátková, J ;
Dömény, Z .
BIOTECHNOLOGY LETTERS, 1999, 21 (04) :337-341
[6]   Stoichiometry and compartmentation of NADH metabolism in Saccharomyces cerevisiae [J].
Bakker, BM ;
Overkamp, KM ;
van Maris, AJA ;
Kötter, P ;
Luttik, MAH ;
van Dijken, JP ;
Pronk, JT .
FEMS MICROBIOLOGY REVIEWS, 2001, 25 (01) :15-37
[7]   A General Process-Based Model for Describing the Metabolic Shift in Microbial Cell Cultures [J].
Carteni, Fabrizio ;
Occhicone, Alessio ;
Giannino, Francesco ;
Vincenot, Christian E. ;
de Alteriis, Elisabetta ;
Palomba, Emanuela ;
Mazzoleni, Stefano .
FRONTIERS IN MICROBIOLOGY, 2020, 11
[8]   ETHANOL TOLERANCE IN YEASTS [J].
CASEY, GP ;
INGLEDEW, WMM .
CRC CRITICAL REVIEWS IN MICROBIOLOGY, 1986, 13 (03) :219-280
[9]   Tolerance and stress response to ethanol in the yeast Saccharomyces cerevisiae [J].
Ding, Junmei ;
Huang, Xiaowei ;
Zhang, Lemin ;
Zhao, Na ;
Yang, Dongmei ;
Zhang, Keqin .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2009, 85 (02) :253-263
[10]   Applying Mechanistic Models in Bioprocess Development [J].
Fernandes, Rita Lencastre ;
Bodla, Vijaya Krishna ;
Carlquist, Magnus ;
Heins, Anna-Lena ;
Lantz, Anna Eliasson ;
Sin, Guerkan ;
Gernaey, Krist V. .
MEASUREMENT, MONITORING, MODELLING AND CONTROL OF BIOPROCESSES, 2013, 132 :137-166