Sizova Svetlana, Shakurov Ruslan, Mitko Tatiana, Shirshikov Fedor, Solovyeva Daria, Konopsky Valery, Alieva Elena, Klinov Dmitry, Bespyatykh Julia, Basmanov Dmitry
Federal Research and Clinical Center of Physical-Chemical Medicine of Federal Medical Biological Agency, 1A Malaya Pirogovskaya St., 119435 Moscow, Russia.
Department of Biomaterials and Bionanotechnology, Shemyakin & Ovchinnikov Institute of Bioorganic Chemistry RAS, 16/10 Miklukho-Maklaya St., 117997 Moscow, Russia.
Polymers (Basel). 2021 Dec 31;14(1):152. doi: 10.3390/polym14010152.
Here, we propose and study several types of quartz surface coatings designed for the high-performance sorption of biomolecules and their subsequent detection by a photonic crystal surface mode (PC SM) biosensor. The deposition and sorption of biomolecules are revealed by analyzing changes in the propagation parameters of optical modes on the surface of a photonic crystal (PC). The method makes it possible to measure molecular and cellular affinity interactions in real time by independently recording the values of the angle of total internal reflection and the angle of excitation of the surface wave on the surface of the PC. A series of dextrans with various anchor groups (aldehyde, carboxy, epoxy) suitable for binding with bioligands have been studied. We have carried out comparative experiments with dextrans with other molecular weights. The results confirmed that dextran with a Mw of 500 kDa and anchor epoxy groups have a promising potential as a matrix for the detection of proteins in optical biosensors. The proposed approach would make it possible to enhance the sensitivity of the PC SM biosensor and also permit studying the binding process of low molecular weight molecules in real time.
在此,我们提出并研究了几种用于生物分子高效吸附及其随后通过光子晶体表面模式(PC SM)生物传感器进行检测的石英表面涂层。通过分析光子晶体(PC)表面光学模式传播参数的变化来揭示生物分子的沉积和吸附情况。该方法能够通过独立记录全内反射角和PC表面表面波激发角的值来实时测量分子和细胞的亲和相互作用。研究了一系列带有适合与生物配体结合的各种锚定基团(醛基、羧基、环氧基)的葡聚糖。我们还对不同分子量的葡聚糖进行了对比实验。结果证实,分子量为500 kDa且带有环氧锚定基团的葡聚糖作为光学生物传感器中蛋白质检测的基质具有广阔的应用前景。所提出的方法将能够提高PC SM生物传感器的灵敏度,还能实时研究低分子量分子的结合过程。