Rabchinskii Maxim K, Besedina Nadezhda A, Brzhezinskaya Maria, Stolyarova Dina Yu, Ryzhkov Sergei A, Saveliev Sviatoslav D, Antonov Grigorii A, Baidakova Marina V, Pavlov Sergei I, Kirilenko Demid A, Shvidchenko Aleksandr V, Cherviakova Polina D, Brunkov Pavel N
Ioffe Institute, Politekhnicheskaya St. 26, Saint Petersburg 194021, Russia.
Department of Physics, Alferov University, 8/3 Khlopina Street, Saint Petersburg 194021, Russia.
Nanomaterials (Basel). 2023 May 25;13(11):1730. doi: 10.3390/nano13111730.
The facile synthesis of biografted 2 derivatives complemented by a nuanced understanding of their properties are keystones for advancements in biosensing technologies. Herein, we thoroughly examine the feasibility of aminated graphene as a platform for the covalent conjugation of monoclonal antibodies towards human IgG immunoglobulins. Applying core-level spectroscopy methods, namely X-ray photoelectron and absorption spectroscopies, we delve into the chemistry and its effect on the electronic structure of the aminated graphene prior to and after the immobilization of monoclonal antibodies. Furthermore, the alterations in the morphology of the graphene layers upon the applied derivatization protocols are assessed by electron microscopy techniques. Chemiresistive biosensors composed of the aerosol-deposited layers of the aminated graphene with the conjugated antibodies are fabricated and tested, demonstrating a selective response towards IgM immunoglobulins with a limit of detection as low as 10 pg/mL. Taken together, these findings advance and outline graphene derivatives' application in biosensing as well as hint at the features of the alterations of graphene morphology and physics upon its functionalization and further covalent grafting by biomolecules.
生物接枝2衍生物的简便合成以及对其性质的细微理解是生物传感技术进步的基石。在此,我们全面研究了胺化石墨烯作为共价偶联抗人IgG免疫球蛋白单克隆抗体平台的可行性。应用核心能级光谱方法,即X射线光电子能谱和吸收光谱,我们深入研究了在固定单克隆抗体之前和之后胺化石墨烯的化学性质及其对电子结构的影响。此外,通过电子显微镜技术评估了应用衍生化方案后石墨烯层形态的变化。制备并测试了由胺化石墨烯气溶胶沉积层与偶联抗体组成的化学电阻式生物传感器,其对IgM免疫球蛋白表现出选择性响应,检测限低至10 pg/mL。综上所述,这些发现推动并概述了石墨烯衍生物在生物传感中的应用,并暗示了石墨烯在功能化以及被生物分子进一步共价接枝时形态和物理性质改变的特征。