Kinetics-based development of two-stage continuous fermentation of 1,3-propanediol from crude glycerol by Clostridium butyricum.

Xiao-Li Wang, Ya-Qin Sun, Duo-Tao Pan, Zhi-Long Xiu
Author Information
  1. Xiao-Li Wang: MOE Key Laboratory of Bio-Intelligent Manufacturing, School of Bioengineering, Dalian University of Technology, No. 2 Linggong Road, Ganjingzi District, Dalian, 116024, Liaoning, People's Republic of China.
  2. Ya-Qin Sun: MOE Key Laboratory of Bio-Intelligent Manufacturing, School of Bioengineering, Dalian University of Technology, No. 2 Linggong Road, Ganjingzi District, Dalian, 116024, Liaoning, People's Republic of China.
  3. Duo-Tao Pan: Institute of Information and Engineering, Shenyang University of Chemical Technology, Shenyang, 110142, Liaoning, People's Republic of China.
  4. Zhi-Long Xiu: MOE Key Laboratory of Bio-Intelligent Manufacturing, School of Bioengineering, Dalian University of Technology, No. 2 Linggong Road, Ganjingzi District, Dalian, 116024, Liaoning, People's Republic of China. zhlxiu@dlut.edu.cn.

Abstract

BACKGROUND: Glycerol, as a by-product, mainly derives from the conversion of many crops to biodiesel, ethanol, and fatty ester. Its bioconversion to 1,3-propanediol (1,3-PDO) is an environmentally friendly method. Continuous fermentation has many striking merits over fed-batch and batch fermentation, such as high product concentration with easy feeding operation, long-term high productivity without frequent seed culture, and energy-intensive sterilization. However, it is usually difficult to harvest high product concentrations.
RESULTS: In this study, a three-stage continuous fermentation was firstly designed to produce 1,3-PDO from crude glycerol by Clostridium butyricum, in which the first stage fermentation was responsible for providing the excellent cells in a robust growth state, the second stage focused on promoting 1,3-PDO production, and the third stage aimed to further boost the 1,3-PDO concentration and reduce the residual glycerol concentration as much as possible. Through the three-stage continuous fermentation, 80.05 g/L 1,3-PDO as the maximum concentration was produced while maintaining residual glycerol of 5.87 g/L, achieving a yield of 0.48 g/g and a productivity of 3.67 g/(L·h). Based on the 14 sets of experimental data from the first stage, a kinetic model was developed to describe the intricate relationships among the concentrations of 1,3-PDO, substrate, biomass, and butyrate. Subsequently, this kinetic model was used to optimize and predict the highest 1,3-PDO productivity of 11.26 g/(L·h) in the first stage fermentation, while the glycerol feeding concentration and dilution rate were determined to be 92 g/L and 0.341 h, separately. Additionally, to achieve a target 1,3-PDO production of 80 g/L without the third stage fermentation, the predicted minimum volume ratio of the second fermenter to the first one was 11.9. The kinetics-based two-stage continuous fermentation was experimentally verified well with the predicted results.
CONCLUSION: A novel three-stage continuous fermentation and a kinetic model were reported. Then a simpler two-stage continuous fermentation was developed based on the optimization of the kinetic model. This kinetics-based development of two-stage continuous fermentation could achieve high-level production of 1,3-PDO. Meanwhile, it provides a reference for other bio-chemicals production by applying kinetics to optimize multi-stage continuous fermentation.

Keywords

References

  1. Appl Microbiol Biotechnol. 2022 Apr;106(8):2937-2951 [PMID: 35416488]
  2. Environ Sci Pollut Res Int. 2019 Dec;26(35):35523-35532 [PMID: 31267386]
  3. Biotechnol Bioeng. 1994 Oct;44(8):902-11 [PMID: 18618908]
  4. Appl Microbiol Biotechnol. 2012 Feb;93(3):1057-63 [PMID: 21972131]
  5. Biotechnol Biofuels. 2020 Nov 25;13(1):191 [PMID: 33292405]
  6. Curr Microbiol. 2001 Oct;43(4):238-43 [PMID: 11683356]
  7. Bioresour Technol. 2014 May;159:167-75 [PMID: 24650530]
  8. J Lipid Res. 2006 Feb;47(2):302-9 [PMID: 16267342]
  9. Biotechnol Bioeng. 2018 Mar;115(3):684-693 [PMID: 29105732]
  10. J Biotechnol. 2000 Feb 17;77(2-3):191-208 [PMID: 10682279]
  11. Appl Microbiol Biotechnol. 2018 Oct;102(19):8291-8305 [PMID: 30046858]
  12. Appl Microbiol Biotechnol. 2015 Apr;99(7):3179-89 [PMID: 25524700]
  13. Bioprocess Biosyst Eng. 2021 Nov;44(11):2375-2385 [PMID: 34231034]
  14. BMC Syst Biol. 2017 Jun 1;11(1):58 [PMID: 28571567]
  15. Biotechnol Prog. 2022 Jan;38(1):e3225 [PMID: 34775686]
  16. Appl Biochem Biotechnol. 2009 Dec;159(3):605-13 [PMID: 19156368]
  17. Front Bioeng Biotechnol. 2019 Feb 18;7:14 [PMID: 30834245]
  18. Biotechnol Prog. 1995 Jan-Feb;11(1):71-9 [PMID: 7765990]
  19. Appl Biochem Biotechnol. 2018 Nov;186(3):644-661 [PMID: 29707733]
  20. Appl Microbiol Biotechnol. 2017 Aug;101(15):5985-5996 [PMID: 28512675]
  21. Microb Cell Fact. 2020 Jan 13;19(1):6 [PMID: 31931797]
  22. Syst Microbiol Biomanuf. 2021;1(4):378-396 [PMID: 38624889]
  23. Bioresour Technol. 2013 Aug;142:82-7 [PMID: 23743422]
  24. Biotechnol Bioeng. 2000 Mar 20;67(6):636-44 [PMID: 10699846]
  25. Biotechnol Bioeng. 1995 Jan 5;45(1):91-4 [PMID: 18623056]
  26. Bioresour Technol. 2017 Jun;233:296-304 [PMID: 28285221]
  27. Biotechnol Bioeng. 2022 Jun;119(6):1450-1466 [PMID: 35234295]
  28. Bioprocess Biosyst Eng. 2015 Feb;38(2):229-35 [PMID: 25090981]
  29. Bioresour Technol. 2016 Jul;212:130-137 [PMID: 27089428]
  30. Appl Microbiol Biotechnol. 2020 Nov;104(21):9179-9191 [PMID: 32997204]
  31. J Ind Microbiol Biotechnol. 2005 Sep;32(9):391-6 [PMID: 16044292]

Grants

  1. 21476043/the National Natural Science Foundation of China
  2. 2022YFA0911804/National Key R&D Program of China
  3. 2022YFA0911802/National Key R&D Program of China

Word Cloud

Created with Highcharts 10.0.0fermentation13-PDOcontinuousglycerolstageconcentrationmodelfirstproductionkinetictwo-stagehighproductivitythree-stageClostridiumbutyricummany3-propanediolContinuousproductfeedingwithoutconcentrationscrudesecondthirdresidual0L·hdevelopedoptimize11achievepredictedkinetics-baseddevelopmentBACKGROUND:Glycerolby-productmainlyderivesconversioncropsbiodieselethanolfattyesterbioconversionenvironmentallyfriendlymethodstrikingmeritsfed-batchbatcheasyoperationlong-termfrequentseedcultureenergy-intensivesterilizationHoweverusuallydifficultharvestRESULTS:studyfirstlydesignedproduceresponsibleprovidingexcellentcellsrobustgrowthstatefocusedpromotingaimedboostreducemuchpossible8005 g/Lmaximumproducedmaintaining587 g/Lachievingyield48 g/g367 g/Based14setsexperimentaldatadescribeintricaterelationshipsamongsubstratebiomassbutyrateSubsequentlyusedpredicthighest26 g/dilutionratedetermined92 g/L341 hseparatelyAdditionallytarget80 g/Lminimumvolumeratiofermenterone9experimentallyverifiedwellresultsCONCLUSION:novelreportedsimplerbasedoptimizationhigh-levelMeanwhileprovidesreferencebio-chemicalsapplyingkineticsmulti-stageKinetics-based3-PropanediolCrudeKinetic

Similar Articles

Cited By