Novel Technologies for Butyric Acid Fermentation: Use of Cellulosic Biomass, Rapid Bioreactor, and Efficient Product Recovery
Abstract
:1. Introduction
2. Materials and Methods
2.1. Stock Medium and Solutions
2.2. Microorganism, Culture Propagation, and Spore Formation
2.3. Inoculum Preparation
2.4. Bioreactor Preparation and Fermentation
2.5. Cell Recycle Membrane Reactor
2.6. Wheat Straw Pretreatment and Hydrolysis
2.7. Wheat Straw Hydrolysate Fermentation
2.8. Recovery of Butyric Acid Using XAD-4 Adsorbent Resin
2.9. Analyses
3. Results and Discussion
3.1. Control Glucose Fermentation
3.2. Xylose Fermentation
3.3. Mixed Sugar Fermentation
3.4. Cell Recycle Membrane Reactor
3.5. Butyric Acid Production from Wheat Straw Hydrolysate (WSH)
3.6. Recovery of Butyric Acid
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Qureshi, N.; Ashby, R.D.; Nichols, N.N.; Hector, R. Novel Technologies for Butyric Acid Fermentation: Use of Cellulosic Biomass, Rapid Bioreactor, and Efficient Product Recovery. Fermentation 2024, 10, 142. https://doi.org/10.3390/fermentation10030142
Qureshi N, Ashby RD, Nichols NN, Hector R. Novel Technologies for Butyric Acid Fermentation: Use of Cellulosic Biomass, Rapid Bioreactor, and Efficient Product Recovery. Fermentation. 2024; 10(3):142. https://doi.org/10.3390/fermentation10030142
Chicago/Turabian StyleQureshi, Nasib, Richard D. Ashby, Nancy N. Nichols, and Ronald Hector. 2024. "Novel Technologies for Butyric Acid Fermentation: Use of Cellulosic Biomass, Rapid Bioreactor, and Efficient Product Recovery" Fermentation 10, no. 3: 142. https://doi.org/10.3390/fermentation10030142
APA StyleQureshi, N., Ashby, R. D., Nichols, N. N., & Hector, R. (2024). Novel Technologies for Butyric Acid Fermentation: Use of Cellulosic Biomass, Rapid Bioreactor, and Efficient Product Recovery. Fermentation, 10(3), 142. https://doi.org/10.3390/fermentation10030142