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The Concept of Microwave Foam Drying Under Vacuum: A Gentle Preservation Method for Sensitive Biological Material

机译:真空微波泡沫干燥的概念:敏感生物材料的温和保存方法

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AbstractMicrowave vacuum drying as compared to conventional vacuum drying has evinced advantages regarding drying time, while comparable product characteristics were achieved when drying sensitive biological material. Due to the volumetric microwave input, a time reduction of up to 90% is possible. When drying viscous liquids, a foamed structure that remains stable during drying exhibits further advantages as the diffusionlimited third drying step is enhanced by the porous structure. As foams not only have to be thermally resistant during microwave vacuum processing, but also withstand the vacuum, a specific process for foam drying by microwaves under low pressure conditions was developed. Foam formation and stabilization was achieved by using a synergistic mixture of proteins and carbohydrates; Lactobacillus paracasei ssp. paracasei F19 (L. paracasei) served as a model sensitive substance. Investigation of surface activity and foaming properties as a function of L. paracasei concentration revealed a significant positive contribution of the bacterial cells. It was shown that L. paracasei directly adsorbed at the airwater interface. Besides, a structuring of the liquid lamellae was assumed. Moreover, drying time was reduced to at least 50% compared to microwave vacuum drying without foaming. It was further observed that the slight loss in survival was mainly due to the relatively high moisture content and high vacuum levels at the beginning of the process. However, foaming, vacuum application, and final drying, respectively, did not affect viability of the bacterial cells. Thus, by incorporation of lactic acid bacteria into foam structures, drying can be carried out in a fraction of time, and further results in highproduct quality.Practical ApplicationThe application of continuous foam drying offers an efficient and energysaving alternative to the currently applied techniques for the processing of sensitive material. The process could be applied for the preservation of starter cultures and probiotics as well as in the pharmaceutical industry, when sensitive material such as therapeutic proteins is dried. This process is especially suitable for freezingsensitive and thermolabile substances.
机译:摘要与常规真空干燥相比,微波真空干燥在干燥时间方面具有优势,而干燥敏感的生物材料时可达到可比的产品特性。由于微波的体积输入,可以将时间减少多达90%。当干燥粘性液体时,在干燥过程中保持稳定的泡沫结构表现出进一步的优势,因为多孔结构增强了扩散受限的第三干燥步骤。由于泡沫不仅在微波真空处理期间必须是耐热的,而且还要承受真空,因此开发了在低压条件下通过微波干燥泡沫的特定方法。泡沫的形成和稳定是通过使用蛋白质和碳水化合物的协同混合物来实现的。副干酪乳杆菌副干酪乳杆菌F19(副干酪乳杆菌)用作模型敏感物质。表面活性和起泡性能作为副干酪乳杆菌浓度的函数的研究揭示了细菌细胞的显着正贡献。结果表明,副干酪乳杆菌直接吸附在空气-水界面。此外,假定了液体薄片的结构。此外,与不发泡的微波真空干燥相比,干燥时间减少到至少50%。进一步观察到存活率的轻微损失主要是由于在过程开始时相对较高的水分含量和较高的真空度。但是,起泡,施加真空和最终干燥均不会影响细菌细胞的活力。因此,通过将乳酸菌掺入泡沫结构中,可以在短时间内完成干燥,从而进一步提高产品质量。实际应用连续泡沫干燥的应用为当前应用的泡沫技术提供了一种高效节能的替代方案。敏感材料的加工。当敏感材料(例如治疗性蛋白质)干燥时,该方法可用于保存发酵剂和益生菌,以及制药工业。该方法特别适用于对冻结敏感和对热不稳定的物质。

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