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基于沉淀的微尺度酶反应器与多孔和粘性弹性体结合,可实现有效细菌去污和按需膜抗污染。

Precipitation-based microscale enzyme reactors coupled with porous and adhesive elastomer for effective bacterial decontamination and membrane antifouling on-demand.

机构信息

Department of Chemical and Biological Engineering, Korea University, Seoul 02841, Republic of Korea.

Engineering Center, Samsung C&T Corporation, Tower B, 26, Sangil-ro, 6- gil, Gangdong-gu, Seoul, Republic of Korea.

出版信息

Environ Res. 2022 Sep;212(Pt C):113407. doi: 10.1016/j.envres.2022.113407. Epub 2022 May 4.

Abstract

Bacterial contamination of water environments can cause various troubles in various areas. As one of potential solutions, we develop enzyme-immobilized elastomer, and demonstrate the uses of enzyme reactions on-demand for effective microbial decontamination and antifouling. Asymmetrically-structured elastomer is prepared by combining two polydimethylsiloxane (PDMS) layers with different degrees of crosslinking: highly-crosslinked and lightly-crosslinked PDMS layers. At the surface of highly-crosslinked PDMS layer, porous structure with average diameter of 842 nm is formed by dissolving pre-packed and entrapped latex beads. Lightly-crosslinked PDMS on the other side, due to its adhesive nature, enables iterative attachments on various materials under either dry or wet condition. Glucose oxidase (GOx) is immobilized by using the pores at the surface of highly-crosslinked PDMS matrix via a ship-in-a-bottle protocol of precipitation-based microscale enzyme reactor (p-MER), which consists of GOx adsorption, precipitation and chemical crosslinking (EAPC). As a result, crosslinked enzyme aggregates (CLEAs) of GOx not only are well entrapped within many pores of highly-crosslinked PDMS layer (ship-in-bottle) but also cover the external surface of matrix, both of which are well connected together. Highly-interconnected network of CLEAs themselves effectively prevents enzyme leaching, which shows the 25% residual activity of GOx under shaking at 200 rpm for 156 days after 48% initial drop of loosely-bound p-MER after 4 days. In presence of glucose, the underwater attachment of biocatalytic elastomer demonstrates the generation of hydrogen peroxide via p-MER-catalyzed glucose oxidation, exhibiting effective biocidal activities against both gram-positive S. aureus and gram-negative E. coli. Adhesion-induced GOx-catalyzed reaction also alleviates the biofouling of membrane, suggesting its extendibility to various engineering systems being suffered by biofouling. This study of biocatalytic elastomer has demonstrated its new opportunities for the facile and on-demand enzyme-catalyzed reactions in various environmental applications, such as bactericidal treatment, water treatment/purification, and pollutant degradation.

摘要

水环境中的细菌污染会在各个领域引发各种问题。作为潜在的解决方案之一,我们开发了酶固定弹性体,并展示了按需酶反应在有效微生物去污和防污方面的应用。通过将两层具有不同交联度的聚二甲基硅氧烷(PDMS)结合在一起,制备了具有不对称结构的弹性体:高度交联的 PDMS 层和轻度交联的 PDMS 层。在高度交联的 PDMS 层表面,通过溶解预先填充和包埋的乳胶珠形成平均直径为 842nm 的多孔结构。另一侧的轻度交联 PDMS 由于其粘性,能够在干燥或湿润条件下在各种材料上进行反复附着。通过基于沉淀的微尺度酶反应器(p-MER)的船在瓶中的沉淀法,将葡萄糖氧化酶(GOx)固定在高度交联的 PDMS 基质的表面孔中,该方法包括 GOx 吸附、沉淀和化学交联(EAPC)。结果,GOx 的交联酶聚集体(CLEAs)不仅很好地包埋在高度交联的 PDMS 层的许多孔内(船在瓶中),而且还覆盖了基质的外表面,两者都很好地连接在一起。高度互连的 CLEAs 网络本身有效地防止了酶的浸出,在 4 天后初始结合的 p-MER 下降 48%后,在 200rpm 下摇晃 156 天后,GOx 的残余活性仍保持在 25%。在葡萄糖存在的情况下,水下生物催化弹性体的附着通过 p-MER 催化的葡萄糖氧化产生过氧化氢,表现出对革兰氏阳性菌金黄色葡萄球菌和革兰氏阴性菌大肠杆菌的有效杀菌活性。在诱导附着的情况下,GOx 催化的反应还减轻了膜的生物污染,表明其在各种遭受生物污染的工程系统中的扩展性。本研究中的生物催化弹性体展示了其在各种环境应用中,如杀菌处理、水处理/净化和污染物降解,简便且按需进行酶催化反应的新机会。

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