Department of Chemical Engineering, Federal University of Bahia, Salvador, Brazil.
Department of Chemical Engineering, Federal University of Bahia, Salvador, Brazil.
Int J Biol Macromol. 2019 Mar 1;124:1106-1114. doi: 10.1016/j.ijbiomac.2018.12.016. Epub 2018 Dec 3.
This objective of this work was to monitor the EPS production during the growth of Spirulina sp. LEB-18, evaluate the productivity and to characterize the exopolymers obtained on pilot-scale under outdoor conditions. The production of crude EPS occurred in all phases of biomass growth and was approximately ten folds higher than that biomass concentration of Spirulina sp. LEB-18 at the end cultivation, demonstrating the importance of the use of supernatant after harvesting of Spirulina to obtain high value bioproducts. The EPS extracted by Spirulina sp. LEB-18 are typically heteropolymers with one high molecular weight fraction (polysaccharides) with potential to be utilized as an alternative bioflocculant and another fraction of lower molecular mass (proteins). The presence of uronic acids, pyruvates and acyl groups of carbohydrates or carboxylic groups of amino acids in protein moiety is the main responsible for overall negative charge of EPS, which is also of biotechnological importance. Moreover, due to the pseudoplastic behavior of the solutions and high thermal stability, the obtained EPS can be widely applied in several industrial sectors, thus determining its technological and market potentiality.
本工作的目的是监测螺旋藻 LEB-18 生长过程中 EPS 的产生,评估其生产力,并在户外条件下对中试规模获得的胞外聚合物进行表征。粗 EPS 的产生发生在生物量生长的所有阶段,大约是培养结束时螺旋藻 LEB-18 生物量浓度的十倍,这表明在收获螺旋藻后使用上清液获得高价值生物产品的重要性。由螺旋藻 sp.LEB-18 提取的 EPS 通常是杂多糖,具有一个高分子量部分(多糖),可作为替代生物絮凝剂,另一个部分是低分子量部分(蛋白质)。多糖部分中存在糖的羧酸基团或糖的丙酮酸和酰基、蛋白质部分中存在氨基酸的羧酸基团,是 EPS 整体带负电荷的主要原因,这在生物技术方面也很重要。此外,由于溶液的假塑性行为和高热稳定性,所获得的 EPS 可以广泛应用于几个工业领域,从而确定其技术和市场潜力。