Isolation and Characterization of Acid-Tolerant, Thermophilic Bacteria for Effective Fermentation of Biomass-Derived Sugars to Lactic Acid
- 1 May 2006
- journal article
- Published by American Society for Microbiology in Applied and Environmental Microbiology
- Vol. 72 (5), 3228-35
- https://doi.org/10.1128/aem.72.5.3228-3235.2006
Abstract
Biomass-derived sugars, such as glucose, xylose, and other minor sugars, can be readily fermented to fuel ethanol and commodity chemicals by the appropriate microbes. Due to the differences in the optimum conditions for the activity of the fungal cellulases that are required for depolymerization of cellulose to fermentable sugars and the growth and fermentation characteristics of the current industrial microbes, simultaneous saccharification and fermentation (SSF) of cellulose is envisioned at conditions that are not optimal for the fungal cellulase activity, leading to a higher-than-required cost of cellulase in SSF. We have isolated bacterial strains that grew and fermented both glucose and xylose, major components of cellulose and hemicellulose, respectively, to l(+)-lactic acid at 50 degrees C and pH 5.0, conditions that are also optimal for fungal cellulase activity. Xylose was metabolized by these new isolates through the pentose-phosphate pathway. As expected for the metabolism of xylose by the pentose-phosphate pathway, [(13)C]lactate accounted for more than 90% of the total (13)C-labeled products from [(13)C]xylose. Based on fatty acid profile and 16S rRNA sequence, these isolates cluster with Bacillus coagulans, although the B. coagulans type strain, ATCC 7050, failed to utilize xylose as a carbon source. These new B. coagulans isolates have the potential to reduce the cost of SSF by minimizing the amount of fungal cellulases, a significant cost component in the use of biomass as a renewable resource, for the production of fuels and chemicals.Keywords
This publication has 30 references indexed in Scilit:
- Simultaneous Saccharification and Co‐Fermentation of Crystalline Cellulose and Sugar Cane Bagasse Hemicellulose Hydrolysate to Lactate by a Thermotolerant Acidophilic Bacillus sp.Biotechnology Progress, 2005
- Potential Synergies and Challenges in Refining Cellulosic Biomass to Fuels, Chemicals, and PowerBiotechnology Progress, 2003
- Genetic Changes To Optimize Carbon Partitioning between Ethanol and Biosynthesis in EthanologenicEscherichia coliApplied and Environmental Microbiology, 2002
- THEPOTENTIAL OFBIOMASSFUELS INTHECONTEXT OFGLOBALCLIMATECHANGE: Focus on Transportation FuelsAnnual Review of Energy and the Environment, 2000
- Process Design and Costing of Bioethanol Technology: A Tool for Determining the Status and Direction of Research and DevelopmentBiotechnology Progress, 1999
- Lactic acid from woodProcess Biochemistry, 1996
- Tree View: An application to display phylogenetic trees on personal computersBioinformatics, 1996
- Bioconversion of forest products industry waste cellulosics to fuel ethanol: A reviewBioresource Technology, 1996
- Phylogeny of spore-forming lactic acid bacteria based on 16S rRNA gene sequencesFEMS Microbiology Letters, 1994
- APPLICATIONS OF 13C NMR TO METABOLIC STUDIESAnnual Review of Biophysics and Bioengineering, 1981