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利用电场进行短弹性蛋白样肽的嫁接。

Grafting of short elastin-like peptides using an electric field.

机构信息

Department of Chemical and Biomolecular Engineering, Case Western Reserve University, Cleveland, USA.

Department of Biomedical Engineering, Case Western Reserve University, Cleveland, USA.

出版信息

Sci Rep. 2022 Nov 4;12(1):18682. doi: 10.1038/s41598-022-21672-9.

Abstract

Surface-grafted elastin has found a wide range of uses such as sensing, tissue engineering and capture/release applications because of its ability to undergo stimuli-responsive phase transition. While various methods exist to control surface grafting in general, it is still difficult to control orientation as attachment occurs. This study investigates using an electric field as a new approach to control the surface-grafting of short elastin-like polypeptide (ELP). Characterization of ELP grafting to gold via quartz crystal microbalance with dissipation, atomic force microscopy and temperature ramping experiments revealed that the charge/hydrophobicity of the peptides, rearrangement kinetics and an applied electric field impacted the grafted morphology of ELP. Specifically, an ELP with a negative charge on the opposite end of the surface-binding moiety assembled in a more upright orientation, and a sufficient electric field pushed the charge away from the surface compared to when the same peptide was assembled in no electric field. In addition, this study demonstrated that assembling charged ELP in an applied electric field impacts transition behavior. Overall, this study reveals new strategies for achieving desirable and predictable surface properties of surface-bound ELP.

摘要

表面接枝弹性蛋白因其能够经历刺激响应的相转变,因此在传感、组织工程和捕获/释放应用等方面得到了广泛的应用。虽然目前存在各种控制表面接枝的方法,但在接枝发生时仍然难以控制其取向。本研究探讨了使用电场作为控制短弹性蛋白样多肽 (ELP) 表面接枝的新方法。通过石英晶体微天平与耗散、原子力显微镜和温度斜坡实验对 ELP 接枝到金表面的特性进行了表征,结果表明肽的电荷/疏水性、重排动力学和外加电场影响了 ELP 的接枝形态。具体来说,在表面结合部分的相反端带有负电荷的 ELP 以更直立的取向组装,与在没有电场时组装相同肽相比,外加电场将电荷推离表面。此外,本研究表明,在外加电场中组装带电的 ELP 会影响转变行为。总的来说,这项研究揭示了实现表面结合 ELP 期望和可预测表面性能的新策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9554/9636273/79231b4da8af/41598_2022_21672_Fig1_HTML.jpg

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