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Formulation and Characterization of Gelatin-Based Hydrogels for the Encapsulation of Kluyveromyces lactis—Applications in Packed-Bed Reactors and Probiotics Delivery in Humans

机译:明胶基水凝胶用于胶体克鲁维酵母包封的配制和表征—在填充床反应器和人体内益生菌递送中的应用

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摘要

One of the main issues when orally administering microorganism-based probiotics is the significant loss of bioactivity as they pass through the gastrointestinal (GI) tract. To overcome these issues, here, we propose to encapsulate the probiotic yeast on chemically crosslinked gelatin hydrogels as a means to protect the bioactive agents in different environments. Hydrogels were prepared by the chemical crosslinking of gelatin, which is commercially available and inexpensive. This is crucial to ensure scalability and cost-effectiveness. To explore changes in key physicochemical parameters and their impact on cell viability, we varied the concentration of the crosslinking agent (glutaraldehyde) and the gelatin. The synthesized hydrogels were characterized in terms of morphological, physical-chemical, mechanical, thermal and rheological properties. This comprehensive characterization allowed us to identify critical parameters to facilitate encapsulation and enhance cell survival. Mainly due to pore size in the range of 5–10 μm, sufficient rigidity (breaking forces of about 1 N), low brittleness and structural stability under swelling and relatively high shear conditions, we selected hydrogels with a high concentration of gelatin (7.5% (w/v)) and concentrations of the crosslinking agent of 3.0% and 5.0% (w/w) for cell encapsulation. Yeasts were encapsulated with an efficiency of about 10% and subsequently tested in bioreactor operation and GI tract simulated media, thereby leading to cell viability levels that approached 95% and 50%, respectively. After testing, the hydrogels’ firmness was only reduced to half of the initial value and maintained resistance to shear even under extreme pH conditions. The mechanisms underlying the observed mechanical response will require further investigation. These encouraging results, added to the superior structural stability after the treatments, indicate that the proposed encapsulates are suitable to overcome most of the major issues of oral administration of probiotics and open the possibility to explore additional biotech applications further.
机译:口服施用基于微生物的益生菌时,主要问题之一是当它们通过胃肠道(GI)时生物活性显着下降。为了克服这些问题,在这里,我们建议将益生菌酵母包裹在化学交联的明胶水凝胶上,以保护不同环境中的生物活性剂。通过明胶的化学交联制备水凝胶,这是可商购的并且便宜。这对于确保可伸缩性和成本效益至关重要。为了探索关键理化参数的变化及其对细胞活力的影响,我们改变了交联剂(戊二醛)和明胶的浓度。合成的水凝胶的形态,物理化学,机械,热学和流变学特性进行了表征。这种全面的表征使我们能够确定关键参数,以促进封装和提高细胞存活率。主要是由于孔径在5–10μm范围内,足够的刚度(大约1 N的断裂力),在膨胀和相对高剪切条件下的低脆性和结构稳定性,我们选择了明胶浓度高(7.5%)的水凝胶(w / v))和3.0%和5.0%(w / w)的交联剂浓度用于细胞封装。酵母以约10%的效率被封装,随后在生物反应器操作和胃肠道模拟培养基中进行测试,从而导致细胞活力水平分别接近95%和50%。经过测试,水凝胶的硬度仅降低到初始值的一半,即使在极端的pH条件下也能保持抗剪切力。观察到的机械反应的机制尚需进一步研究。这些令人鼓舞的结果,加上处理后优异的结构稳定性,表明所提出的胶囊适合克服益生菌口服给药的大多数主要问题,并为进一步探索其他生物技术应用打开了可能性。

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