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聚(乙烯醇)-水凝胶微球具有软阻挡壳用于微球菌的封装。

Poly(Vinyl Alcohol)-Hydrogel Microparticles with Soft Barrier Shell for the Encapsulation of Micrococcus luteus.

机构信息

Macromolecular Chemistry and Bavarian Polymer Institute, University of Bayreuth, Universitätsstrasse 30, Bayreuth, 95440, Germany.

Avram and S. Goldstein-Goren, Department of Biotechnology Engineering and The Ilse Katz, Center for Meso and Nanoscale Science and Technology, Ben-Gurion University of the Negev, Beer-Sheva, 8410501, Israel.

出版信息

Macromol Biosci. 2021 May;21(5):e2000419. doi: 10.1002/mabi.202000419. Epub 2021 Mar 13.

Abstract

The encapsulation of bacteria in polymers results in hybrid materials that are essential for the long-term biological activity of bacteria and formulations in practical applications. Here, the problem of bacterial escape and the exchange of metabolism products from hydrogel microparticles within an aqueous environment are addressed. Bacteria are encapsulated in chemically cross-linked poly(vinyl alcohol) (PVA) hydrogel-microparticles followed by their encapsulation in a pH-responsive and soft antibacterial shell of poly(N,N-diethylamino ethyl methacrylate) (PDEAEMA). This polymer shell acts selectively with regards to the mass transport in and out of the microparticle core and is affected by environmental parameters, such as pH and antibacterial effect. The pH-responsive PDEAEMA shell forms an open porous structure that accelerates nutrient transfer into the PVA core containing living Micrococcus luteus (M. luteus). Results show that the antibacterial effect of PDEAEMA retards the escape of bacteria up to 35 days when the shell is open. Additionally, the permeation of a small molecule into the gel, for example, methylene blue dye through the core/open-shell structure, certifies a flexible barrier for mass transport, which is required in the long term for the biological activity of encapsulated M. luteus.

摘要

细菌的封装导致了混合材料的产生,这些材料对于细菌的长期生物活性和实际应用中的制剂至关重要。在这里,解决了水凝胶微球在水相环境中细菌逃逸和代谢产物交换的问题。细菌首先被封装在化学交联的聚乙烯醇(PVA)水凝胶微球中,然后被包裹在 pH 响应性和柔软的抗菌聚(N,N-二乙基氨基乙基甲基丙烯酸酯)(PDEAEMA)壳中。这种聚合物壳对微球核心内外的质量传递具有选择性,并且受到环境参数(如 pH 值和抗菌效果)的影响。pH 响应性的 PDEAEMA 壳形成开放的多孔结构,加速营养物质向含有活的藤黄微球菌(M. luteus)的 PVA 核心转移。结果表明,当壳层打开时,PDEAEMA 的抗菌作用将细菌的逃逸延迟了 35 天。此外,小分子(例如亚甲蓝染料)通过核心/开壳结构渗透到凝胶中,证明了用于质量传递的柔性屏障,这对于封装的藤黄微球菌的长期生物活性是必需的。

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