14 research outputs found
The protective role of intracellular glutathione in Saccharomyces cerevisiae during lignocellulosic ethanol production
To enhance the competitiveness of industrial lignocellulose ethanol production, robust enzymes and cell factories are vital. Lignocellulose derived streams contain a cocktail of inhibitors that drain the cell of its redox power and ATP, leading to a decrease in overall ethanol productivity. Many studies have attempted to address this issue, and we have shown that increasing the glutathione (GSH) content in yeasts confers tolerance towards lignocellulose inhibitors, subsequently increasing the ethanol titres. However, GSH levels in yeast are limited by feedback inhibition of GSH biosynthesis. Multidomain and dual functional enzymes exist in several bacterial genera and they catalyse the GSH biosynthesis in a single step without the feedback inhibition. To test if even higher intracellular glutathione levels could be achieved and if this might lead to increased tolerance, we overexpressed the genes from two bacterial genera and assessed the recombinants in simultaneous saccharification and fermentation (SSF) with steam pretreated spruce hydrolysate containing 10% solids. Although overexpressing the heterologous genes led to a sixfold increase in maximum glutathione content (18 \ub5mol\ua0gdrycellmassâ1) compared to the control strain, this only led to a threefold increase in final ethanol titres (8.5 g\ua0Lâ 1). As our work does not conclusively indicate the cause-effect of increased GSH levels towards ethanol titres, we cautiously conclude that there is a limit to cellular fitness that could be accomplished via increased levels of glutathione
Lignin-first biomass fractionation using a hybrid organosolv â Steam explosion pretreatment technology improves the saccharification and fermentability of spruce biomass
For a transition to a sustainable society, fuels, chemicals, and materials should be produced from renewable resources. Lignocellulosic biomass constitutes an abundant and renewable feedstock; however, its successful application in a biorefinery requires efficient fractionation into its components; cellulose, hemicellulose and lignin. Here, we demonstrate that a newly established hybrid organosolv â steam explosion pretreatment can effectively fractionate spruce biomass to yield pretreated solids with high cellulose (72% w/w) and low lignin (delignification up to 79.4% w/w) content. The cellulose-rich pretreated solids present high saccharification yields (up to 61% w/w) making them ideal for subsequent bioconversion processes. Moreover, under high-gravity conditions (22% w/w) we obtained an ethanol titer of 61.7 g/L, the highest so far reported for spruce biomass. Finally, the obtained high-purity lignin is suitable for various advanced applications. In conclusion, hybrid organosolv pretreatment could offer a closed-loop biorefinery while simultaneously adding value to all biomass components
A novel hybrid organosolv: steam explosion method for the efficient fractionation and pretreatment of birch biomass
Background:
The main role of pretreatment is to reduce the natural biomass recalcitrance and thus enhance sac-
charification yield. A further prerequisite for efficient utilization of all biomass components is their efficient fractiona-
tion into well-defined process streams. Currently available pretreatment methods only partially fulfill these criteria.
Steam explosion, for example, excels as a pretreatment method but has limited potential for fractionation, whereas
organosolv is excellent for delignification but offers poor biomass deconstruction.
Results:
In this article, a hybrid method combining the cooking and fractionation of conventional organosolv pre
-
treatment with the implementation of an explosive discharge of the cooking mixture at the end of pretreatment was
developed. The effects of various pretreatment parameters (ethanol content, duration, and addition of sulfuric acid)
were evaluated. Pretreatment of birch at 200
°C with 60%
v/v ethanol and 1%
w/w
biomass
H
2
SO
4
was proven to be the
most efficient pretreatment condition yielding pretreated solids with 77.9%
w/w cellulose, 8.9%
w/w hemicellulose,
and 7.0
w/w lignin content. Under these conditions, high delignification of 86.2% was demonstrated. The recovered
lignin was of high purity, with cellulose and hemicellulose contents not exceeding 0.31 and 3.25%
w/w, respectively,
and ash to be <
0.17%
w/w in all cases, making it suitable for various applications. The pretreated solids presented
high saccharification yields, reaching 68% at low enzyme load (6
FPU/g) and complete saccharification at high
enzyme load (22.5
FPU/g). Finally, simultaneous saccharification and fermentation (SSF) at 20%
w/w solids yielded an
ethanol titer of 80
g/L after 192
h, corresponding to 90% of the theoretical maximum.
Conclusions:
The novel hybrid method developed in this study allowed for the efficient fractionation of birch
biomass and production of pretreated solids with high cellulose and low lignin contents. Moreover, the explosive dis-
charge at the end of pretreatment had a positive effect on enzymatic saccharification, resulting in high hydrolyzability
of the
pretreated solids and elevated ethanol titers in the
following high-gravity SSF. To the best of our knowledge,
the ethanol concentration obtained with this method is the highest so far for birch biomass
Anaerobiosis revisited: growth of Saccharomyces cerevisiae under extremely low oxygen availability
The budding yeast Saccharomyces cerevisiae plays an important role in biotechnological applications, ranging from fuel ethanol to recombinant protein production. It is also a model organism for studies on cell physiology and genetic regulation. Its ability to grow under anaerobic conditions is of interest in many industrial applications. Unlike industrial bioreactors with their low surface area relative to volume, ensuring a complete anaerobic atmosphere during microbial cultivations in the laboratory is rather difficult. Tiny amounts of O2 that enter the system can vastly influence product yields and microbial physiology. A common procedure in the laboratory is to sparge the culture vessel with ultrapure N2 gas; together with the use of butyl rubber stoppers and norprene tubing, O2 diffusion into the system can be strongly minimized. With insights from some studies conducted in our laboratory, we explore the question âhow anaerobic is anaerobiosis?â. We briefly discuss the role of O2 in non-respiratory pathways in S. cerevisiae and provide a systematic survey of the attempts made thus far to cultivate yeast under anaerobic conditions. We conclude that very few data exist on the physiology of S. cerevisiae under anaerobiosis in the absence of the anaerobic growth factors ergosterol and unsaturated fatty acids. Anaerobicity should be treated as a relative condition since complete anaerobiosis is hardly achievable in the laboratory. Ideally, researchers should provide all the details of their anaerobic set-up, to ensure reproducibility of results among different laboratories.
A correction to this article is available online at http://eprints.whiterose.ac.uk/131930/
https://doi.org/10.1007/s00253-018-9036-
Organosolv biomass pretreatment for fuel production
Never has the issue of sustainability gathered so much importance than now. The latest report by the Intergovernmental Panel on Climate Change2 necessitates us to take drastic actions to combat the emissions of greenhouse gases. A rising population, an urban lifestyle and increased economic growth would place enormous pressure on the global energy demand and food production. Thus, targeting industrial chemicals â valued at 3 trillion USD per year, with bio-based processes will enable the production of these chemicals from a non-petrochemical feedstock. Biomass is a renewable feedstock that is available abundantly. However, it needs to be processed, to release the sugars that can be utilised by microorganisms to produce various products of interest. Several pretreatment methods are currently available for biomass deconstruction, but inevitably they produce compounds, such as hydroxyl methyl furfural and furfural, that are toxic to the microorganisms. Organosolv pretreatment has shown much promise, as it yields three distinct and clean streams â cellulose, hemicellulose and lignin, that are microorganisms âfriendlyâ.The cellulose stream can be hydrolysed using a cocktail of enzymes (Novozymes) to release the glucose monomers. In this study, we evaluated the sugar yields from the hydrolysis of organosolv pretreated spruce and birch biomass
Sucrose And Saccharomyces Cerevisiae: A Relationship Most Sweet.
Sucrose is an abundant, readily available and inexpensive substrate for industrial biotechnology processes and its use is demonstrated with much success in the production of fuel ethanol in Brazil. Saccharomyces cerevisiae, which naturally evolved to efficiently consume sugars such as sucrose, is one of the most important cell factories due to its robustness, stress tolerance, genetic accessibility, simple nutrient requirements and long history as an industrial workhorse. This minireview is focused on sucrose metabolism in S. cerevisiae, a rather unexplored subject in the scientific literature. An analysis of sucrose availability in nature and yeast sugar metabolism was performed, in order to understand the molecular background that makes S. cerevisiae consume this sugar efficiently. A historical overview on the use of sucrose and S. cerevisiae by humans is also presented considering sugarcane and sugarbeet as the main sources of this carbohydrate. Physiological aspects of sucrose consumption are compared with those concerning other economically relevant sugars. Also, metabolic engineering efforts to alter sucrose catabolism are presented in a chronological manner. In spite of its extensive use in yeast-based industries, a lot of basic and applied research on sucrose metabolism is imperative, mainly in fields such as genetics, physiology and metabolic engineering.1
Organosolv pretreatment produces an inhibitor free hydrolysate with superior fermentability at high-solids loadings
Never has the issue of sustainability garnered so much importance than now. The fifth assessment report by the Intergovernmental Panel on Climate Change necessitates us to take drastic actions to combat the emissions of greenhouse gases. A rising population, an urban lifestyle and increased economic growth would place enormous pressure on the global energy demand and food production. Thus, targeting industrial chemicals â valued at 3 trillion USD per year, with bio-based processes will enable the production of these chemicals from a non-petrochemical feedstock. Towards fulfilling some of the sustainable development goals formulated by the United Nations Biomass is a renewable feedstock that is available abundantly. However, it needs to be processed, to release the sugars that can be utilised by microorganisms to produce various products of interest. Several pretreatment methods are currently available for biomass deconstruction, but inevitably they produce compounds, such as hydroxy methyl furfural and furfural, that are toxic to the microorganisms. Organosolv (with ethanol as a solvent) pretreatment has shown much promise, as it yields three distinct and clean streams â cellulose, hemicellulose and lignin, that are less toxic to the microorganisms. The enriched cellulose fraction can be hydrolysed using a cocktail of enzymes to release the glucose monomers and subsequently be fermented to ethanol using native yeasts. In this study, we report the sugar yields during the hydrolysis of organosolv pretreated birch and spruce biomass and the superior fermentability of birch biomass over spruce, in an SSF process using Ethanol Red yeast. Ethanol yields up to 95% of theoretical maximum at 5% solids loading could be achieved in a small-scale set-up. Studies at a large-scale including LCA analysis would provide conclusive evidence on the efficacy of this pretreatment method over others
A simple scaled down system to mimic the industrial production of first generation fuel ethanol in Brazil
Although first-generation fuel ethanol is produced in Brazil from sugarcane-based raw materials with high efficiency, there is still little knowledge about the microbiology, the biochemistry and the molecular mechanisms prevalent in the non-aseptic fermentation environment. Learning-by-doing has hitherto been the strategy to improve the process so far, with further improvements requiring breakthrough technologies. Performing experiments at an industrial scale are often expensive, complicated to set up and difficult to reproduce. Thus, developing an appropriate scaled down system for this process has become a necessity. In this paper, we present the design and demonstration of a simple and effective laboratory-scale system mimicking the industrial process used for first generation (1G) fuel ethanol production in the Brazilian sugarcane mills. We benchmarked this system via the superior phenotype of the Saccharomyces cerevisiae PE-2 strain, compared to other strains from the same species: S288c, baker\u27s yeast, and CEN.PK113-7D. We trust that such a system can be easily implemented in different laboratories worldwide, and will allow a better understanding of the S. cerevisiae strains that can persist and dominate in this industrial, non-aseptic and peculiar environment
A simple scaled down system to mimic the industrial production of first generation fuel ethanol in Brazil
Although first-generation fuel ethanol is produced in Brazil from sugarcane-based raw materials with high efficiency, there is still little knowledge about the microbiology, the biochemistry and the molecular mechanisms prevalent in the non-aseptic fermentation environment. Learning-by-doing has hitherto been the strategy to improve the process so far, with further improvements requiring breakthrough technologies. Performing experiments at an industrial scale are often expensive, complicated to set up and difficult to reproduce. Thus, developing an appropriate scaled down system for this process has become a necessity. In this paper, we present the design and demonstration of a simple and effective laboratory-scale system mimicking the industrial process used for first generation (1G) fuel ethanol production in the Brazilian sugarcane mills. We benchmarked this system via the superior phenotype of the Saccharomyces cerevisiae PE-2 strain, compared to other strains from the same species: S288c, bakerâs yeast, and CEN.PK113-7D. We trust that such a system can be easily implemented in different laboratories worldwide, and will allow a better understanding of the S. cerevisiae strains that can persist and dominate in this industrial, non-aseptic and peculiar environment110971983COORDENAĂĂO DE APERFEIĂOAMENTO DE PESSOAL DE NĂVEL SUPERIOR - CAPESFUNDAĂĂO DE AMPARO Ă PESQUISA DO ESTADO DE SĂO PAULO - FAPESPSem informação2015/14109-