晶体表面蛋白质晶格上混合脂质/聚合物膜的形成和特性。

IF 2.1 4区 医学 Q2 Physics and Astronomy
Biointerphases Pub Date : 2020-01-16 DOI:10.1116/1.5132390
Christian Czernohlavek, Bernhard Schuster
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引用次数: 5

摘要

在固体材料上实现自组装生物分子,特别是传感器和电极表面,对于设计稳定的功能平台、生物启发材料和生物传感器越来越重要。本研究报道了在晶体表面层蛋白(SLP)晶格上形成平面脂质/聚合物杂化膜。后者作为连接层,将生物分子连接到无机基板上。在这种方法中,化学结合的脂质为重结晶SLP晶格上的杂化脂质/聚合物膜提供疏水锚定部分。快速溶剂交换技术是在SLP晶格上制备平面脂/聚合物杂化膜的首选方法。通过石英晶体微天平耗散监测和蛋白酶枯草菌素A酶促实验分别研究了后者的形成过程和完整性。目前的数据为在s层晶格上形成双嵌段共聚物含量为30%的脂质/聚合物杂化膜提供了证据。与纯脂双分子层相比,杂化脂/聚合物具有更高的刚度。最有趣的是,纯膜和杂交膜都通过枯草菌素a的作用阻止了底层s层蛋白的蛋白水解降解。因此,这些结果为形成固定在s层晶格上的无缺陷膜提供了证据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Formation and characteristics of mixed lipid/polymer membranes on a crystalline surface-layer protein lattice.

Formation and characteristics of mixed lipid/polymer membranes on a crystalline surface-layer protein lattice.

Formation and characteristics of mixed lipid/polymer membranes on a crystalline surface-layer protein lattice.

Formation and characteristics of mixed lipid/polymer membranes on a crystalline surface-layer protein lattice.

The implementation of self-assembled biomolecules on solid materials, in particular, sensor and electrode surfaces, gains increasing importance for the design of stable functional platforms, bioinspired materials, and biosensors. The present study reports on the formation of a planar hybrid lipid/polymer membrane on a crystalline surface layer protein (SLP) lattice. The latter acts as a connecting layer linking the biomolecules to the inorganic base plate. In this approach, chemically bound lipids provided hydrophobic anchoring moieties for the hybrid lipid/polymer membrane on the recrystallized SLP lattice. The rapid solvent exchange technique was the method of choice to generate the planar hybrid lipid/polymer membrane on the SLP lattice. The formation process and completeness of the latter were investigated by quartz crystal microbalance with dissipation monitoring and by an enzymatic assay using the protease subtilisin A, respectively. The present data provide evidence for the formation of a hybrid lipid/polymer membrane on an S-layer lattice with a diblock copolymer content of 30%. The hybrid lipid/polymer showed a higher stiffness compared to the pure lipid bilayer. Most interestingly, both the pure and hybrid membrane prevented the proteolytic degradation of the underlying S-layer protein by the action of subtilisin A. Hence, these results provide evidence for the formation of defect-free membranes anchored to the S-layer lattice.

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来源期刊
Biointerphases
Biointerphases BIOPHYSICS-MATERIALS SCIENCE, BIOMATERIALS
CiteScore
4.10
自引率
0.00%
发文量
35
审稿时长
>12 weeks
期刊介绍: Biointerphases emphasizes quantitative characterization of biomaterials and biological interfaces. As an interdisciplinary journal, a strong foundation of chemistry, physics, biology, engineering, theory, and/or modelling is incorporated into originated articles, reviews, and opinionated essays. In addition to regular submissions, the journal regularly features In Focus sections, targeted on specific topics and edited by experts in the field. Biointerphases is an international journal with excellence in scientific peer-review. Biointerphases is indexed in PubMed and the Science Citation Index (Clarivate Analytics). Accepted papers appear online immediately after proof processing and are uploaded to key citation sources daily. The journal is based on a mixed subscription and open-access model: Typically, authors can publish without any page charges but if the authors wish to publish open access, they can do so for a modest fee. Topics include: bio-surface modification nano-bio interface protein-surface interactions cell-surface interactions in vivo and in vitro systems biofilms / biofouling biosensors / biodiagnostics bio on a chip coatings interface spectroscopy biotribology / biorheology molecular recognition ambient diagnostic methods interface modelling adhesion phenomena.
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