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Detection of an IL-6 Biomarker Using a GFET Platform Developed with a Facile Organic Solvent-Free Aptamer Immobilization Approach

机译:使用具有面部有机溶剂的APTamer固定方法的GFET平台检测IL-6生物标志物

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摘要

Aptamer-immobilized graphene field-effect transistors (GFETs) have become a well-known detection platform in the field of biosensing with various biomarkers such as proteins, bacteria, virus, as well as chemicals. A conventional aptamer immobilization technique on graphene involves a two-step crosslinking process. In the first step, a pyrene derivative is anchored onto the surface of graphene and, in the second step, an amine-terminated aptamer is crosslinked to the pyrene backbone with EDC/NHS (1-ethyl-3-(3-dimethylaminopropyl) carbodiimide hydrochloride/N-hydroxysuccinimide) chemistry. However, this process often requires the use of organic solvents such as dimethyl formamide (DMF) or dimethyl sulfoxide (DMSO) which are typically polar aprotic solvents and hence dissolves both polar and nonpolar compounds. The use of such solvents can be especially problematic in the fabrication of lab-on-a-chip or point-of-care diagnostic platforms as they can attack vulnerable materials such as polymers, passivation layers and microfluidic tubing leading to device damage and fluid leakage. To remedy such challenges, in this work, we demonstrate the use of pyrene-tagged DNA aptamers (PTDA) for performing a one-step aptamer immobilization technique to implement a GFET-based biosensor for the detection of Interleukin-6 (IL-6) protein biomarker. In this approach, the aptamer terminal is pre-tagged with a pyrene group which becomes soluble in aqueous solution. This obviates the need for using organic solvents, thereby enhancing the device integrity. In addition, an external electric field is applied during the functionalization step to increase the efficiency of aptamer immobilization and hence improved coverage and density. The results from this work could potentially open up new avenues for the use of GFET-based BioMEMS platforms by broadening the choice of materials used for device fabrication and integration.
机译:适体 - 固定的石墨烯场效应晶体管(GFET)已成为具有各种生物标志物(如蛋白质,细菌,病毒)和化学物质的生物传感领域的公知检测平台。在石墨烯上传统的适体固定技术涉及两步交联过程。在第一步中,芘衍生物锚定到石墨烯的表面上,并且在第二步中,胺封端的适体与EDC / NHS(1-乙基-3-(3-二甲基氨基丙基)碳二亚胺(3-乙基氨基丙基)碳二亚胺交联盐酸盐/ N-羟基琥珀酰亚胺)化学。然而,该过程通常需要使用通常是极性非质子溶剂的二甲基甲酰胺(DMF)或二甲基亚甲醚(DMSO)的有机溶剂,并且因此溶解两个极性和非极性化合物。在制造实验室或护理点诊断平台时,这种溶剂的使用可以特别有问题,因为它们可以攻击易受伤害的材料,例如聚合物,钝化层和微流体管道,导致装置损坏和流体泄漏。在这项工作中弥补这些挑战,我们证明了使用芘标记的DNA适体(PTDA)来进行一步式适体固定技术,以实现基于GFET的生物传感器,用于检测白细胞介素-6(IL-6)蛋白质生物标志物。在这种方法中,适体末端用芘基团预标记,该芘基团可溶于水溶液。这消除了使用有机溶剂的需要,从而提高了装置完整性。另外,在功能化步骤期间施加外部电场以提高适体固定的效率,因此改善了覆盖和密度。这项工作的结果可能通过扩大用于器件制造和集成的材料的选择来开辟基于GFET的生物模型平台的新途径。

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