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Fermentation Technologies for the Optimization of Marine Microbial Exopolysaccharide Production

机译:发酵技术优化海洋微生物外多糖生产

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In the last decades, research has focused on the capabilities of microbes to secrete exopolysaccharides (EPS), because these polymers differ from the commercial ones derived essentially from plants or algae in their numerous valuable qualities. These biopolymers have emerged as new polymeric materials with novel and unique physical characteristics that have found extensive applications. In marine microorganisms the produced EPS provide an instrument to survive in adverse conditions: They are found to envelope the cells by allowing the entrapment of nutrients or the adhesion to solid substrates. Even if the processes of synthesis and release of exopolysaccharides request high-energy investments for the bacterium, these biopolymers permit resistance under extreme environmental conditions. Marine bacteria like Bacillus, Halomonas, Planococcus, Enterobacter, Alteromonas, Pseudoalteromonas, Vibrio, Rhodococcus, Zoogloea but also Archaea as Haloferax and Thermococcus are here described as EPS producers underlining biopolymer hyperproduction, related fermentation strategies including the effects of the chemical composition of the media, the physical parameters of the growth conditions and the genetic and predicted experimental design tools.
机译:在过去的几十年中,研究集中在微生物分泌胞外多糖(EPS)的能力上,因为这些聚合物与商业上衍生自植物或藻类的聚合物不同,其具有许多宝贵的品质。这些生物聚合物已经作为具有新颖和独特物理特性的新型聚合物材料出现,并已得到广泛应用。在海洋微生物中,产生的EPS提供了一种在不利条件下生存的工具:发现它们可以通过捕获营养物或粘附在固体基质上来包裹细胞。即使胞外多糖的合成和释放过程要求对细菌进行高能投资,这些生物聚合物仍可在极端环境条件下产生抗性。海洋细菌,如芽孢杆菌,嗜盐单胞菌,平球菌,肠杆菌,链霉菌,假单胞菌,弧菌,红球菌,动球菌,以及古细菌,如嗜盐菌和嗜热球菌,均被描述为强调生物聚合物超量生产的EPS生产商,相关的发酵策略包括培养基化学成分的影响,生长条件的物理参数以及遗传和预测的实验设计工具。

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