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The Gram-positive bacterium Bacillus licheniformis is an important industrial host for the production of enzymes. Genomic DNA arrays and proteomics are being used to investigate the physiology of this bacterium. A genome-wide transcriptional profiling analysis of the adaptation of B. licheniformis to phosphate starvation shows more than 100 induced genes. Most of strongly induced genes belong to the putative Pho regulon. The data of the transcriptome analysis have been verified by the analysis of the extracellular and cytoplasmic proteome. The main response of B. licheniformis to glucose starvation was a switch to the usage of alternative carbon sources. In addition, B. licheniformis seems to be using other organic substances like amino acids and lipids as carbon sources when subjected to glucose starvation. This was indicated by the induction of a high number of genes the proteins of which are involved in amino acid and lipid degradation. During nitrogen starvation genes necessary for the recruitment of nitrogen from alternative sources were induced, e.g. genes for nitrate and nitrite assimilation, several proteases and peptidases. Both starvation conditions led to a down-regulation of the transcription of most vegetative genes and subsequently to a reduced synthesis of the corresponding proteins. Only a few genes were induced by both starvation conditions like yvyD, citA and the methylcitrate shunt genes mmgD, mmgE and yqiQ. Data of this study use to better understand the physiology of this bacterium during fermentation processes and thus to identify and circumvent bottlenecks of B. licheniformis based bioprocesses. In addition, the phytase promoter was tested for the construction of an alternative phosphate regulated expression system for B. licheniformis.
Bacillus licheniformis is one of the most important hosts used in the biotechnological industry for the production of technical enzymes, antibiotics and a number of biochemicals. Although this bacterium has been used for a long time as an expression host, only little information on expression systems of this host is available. An expression system could be controlled by a cell density signal, a specific chemical inducer or a thermal shift. A limiting substrate such as glucose or phosphate limitation is suggested to use as the signal for the induction of an expression system. When B. licheniformis cells are subjected to nutrient limitation conditions, numerous genes involved in the metabolism of alternative nutrient sources are induced in order to keep cell survival. Therefore, the main topic of this study was to identify and investigate the regulation of genes or operons which are strongly induced in B. licheniformis cells grown under nutrient limitation conditions in order to apply for the construction of potential new expression systems. The research includes studies on the regulation of genes which are responsible for the acetoin and 2,3-butanediol utilization in B. licheniformis cells grown under glucose limitation conditions. Furthermore, we also analyzed the regulation of phytase gene expression as well as investigated the function of a putative ribonuclease expressed in B. licheniformis under phosphate limitation conditions. From this study, it was shown that in B. licheniformis, the utilization of acetoin and 2,3-butanediol was mainly mediated by enzymes encoded by the acoABCL operon. The transcription of this operon was regulated by sigma L transcription factor and was induced by acetoin. The acuABC operon was suggested to play as an indirect regulatory role for the acetoin utilization in B. licheniformis. This operon was controlled by a typical sigma A dependent promoter, however, acetoin was not an inducer for its expression. Furthermore, the regulation of phytase gene expression was suggested to be controlled by PhoPR-two component systems. The results showed that phytate, which is the substrate of phytase enzyme, was not an inducer for the expression of phy gene. However, growth experiments revealed that phytate served as a good alternative phosphate source for the growth of B. licheniformis cells under these conditions. Finally, the inactivation of BLi03719 gene, coding for a putative ribonuclease, resulted in an increase of the total RNA concentration of B. licheniformis cells grown in phosphate limited medium. However, the mutation did not affect the expression of the heterologous reporter gene. Therefore, it could be speculated that the putative ribonuclease BLi03719 plays a role in ribosomal RNA degradation under these conditions.
Metabolic engineering enables Bacillus licheniformis to grow on the marine polysaccharide ulvan
(2022)
Background
Marine algae are responsible for half of the global primary production, converting carbon dioxide into organic compounds like carbohydrates. Particularly in eutrophic waters, they can grow into massive algal blooms. This polysaccharide rich biomass represents a cheap and abundant renewable carbon source. In nature, the diverse group of polysaccharides is decomposed by highly specialized microbial catabolic systems. We elucidated the complete degradation pathway of the green algae-specific polysaccharide ulvan in previous studies using a toolbox of enzymes discovered in the marine flavobacterium Formosa agariphila and recombinantly expressed in Escherichia coli.
Results
In this study we show that ulvan from algal biomass can be used as feedstock for a biotechnological production strain using recombinantly expressed carbohydrate-active enzymes. We demonstrate that Bacillus licheniformis is able to grow on ulvan-derived xylose-containing oligosaccharides. Comparative growth experiments with different ulvan hydrolysates and physiological proteogenomic analyses indicated that analogues of the F. agariphila ulvan lyase and an unsaturated β-glucuronylhydrolase are missing in B. licheniformis. We reveal that the heterologous expression of these two marine enzymes in B. licheniformis enables an efficient conversion of the algal polysaccharide ulvan as carbon and energy source.
Conclusion
Our data demonstrate the physiological capability of the industrially relevant bacterium B. licheniformis to grow on ulvan. We present a metabolic engineering strategy to enable ulvan-based biorefinery processes using this bacterial cell factory. With this study, we provide a stepping stone for the development of future bioprocesses with Bacillus using the abundant marine renewable carbon source ulvan.