Tsougeni K, Petrou P S, Awsiuk K, Marzec M M, Ioannidis N, Petrouleas V, Tserepi A, Kakabakos S E, Gogolides E
†Institute of Nanoscience and Nanotechnology, National Center For Scientific Research (NCSR) Demokritos, 15310 Agia Paraskevi, Greece.
§M. Smoluchowski Institute of Physics, Jagiellonian University, Łojasiewicza 11, 30-348 Kraków, Poland.
ACS Appl Mater Interfaces. 2015 Jul 15;7(27):14670-81. doi: 10.1021/acsami.5b01754. Epub 2015 Jul 2.
A new method for direct covalent immobilization of protein molecules (including antibodies) on organic polymers with plasma-induced random micronanoscale topography and stable-in-time chemical functionality is presented. This is achieved using a short (1-5 min) plasma etching and simultaneous micronanotexturing process, followed by a fast thermal annealing step, which induces accelerated hydrophobic recovery while preserving important chemical functionality created by the plasma. Surface-bound biomolecules resist harsh washing with sodium dodecyl sulfate and other detergents even at elevated temperatures, losing less than 40% of the biomolecules bound even at the harshest washing conditions. X-ray photoelectron spectroscopy, secondary-ion mass spectrometry, and electron paramagnetic resonance are used to unveil the chemical modification of the plasma-treated and stabilized surfaces. The nanotextured and chemically stabilized surfaces are used as substrates for the development of immunochemical assays for the sensitive detection of C-reactive protein and salmonella lipopolysaccharides through immobilization of the respective analyte-specific antibodies onto them. Such substrates are stable for a period of 1 year with ambient storage.
本文提出了一种将蛋白质分子(包括抗体)直接共价固定在具有等离子体诱导的随机微米纳米级形貌和随时间稳定的化学功能的有机聚合物上的新方法。这是通过短时间(1-5分钟)的等离子体蚀刻和同步微米纳米纹理化过程实现的,随后进行快速热退火步骤,该步骤在保留等离子体产生的重要化学功能的同时,诱导加速的疏水恢复。表面结合的生物分子即使在高温下也能抵抗十二烷基硫酸钠和其他洗涤剂的严苛洗涤,在最严苛的洗涤条件下,结合的生物分子损失不到40%。利用X射线光电子能谱、二次离子质谱和电子顺磁共振来揭示等离子体处理和稳定化表面的化学修饰。通过将各自的分析物特异性抗体固定在纳米纹理化和化学稳定化的表面上,将其用作开发用于灵敏检测C反应蛋白和沙门氏菌脂多糖的免疫化学分析的底物。这种底物在环境储存条件下可稳定保存1年。