Graphene, an Interesting Nanocarbon Allotrope for Biosensing Applications: Advances, Insights, and Prospects.

IF 2.3 Q3 ENGINEERING, BIOMEDICAL
Biomedical Engineering and Computational Biology Pub Date : 2021-02-24 eCollection Date: 2021-01-01 DOI:10.1177/1179597220983821
Farid Menaa, Yazdian Fatemeh, Sandeep K Vashist, Haroon Iqbal, Olga N Sharts, Bouzid Menaa
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引用次数: 9

Abstract

Graphene, a relatively new two-dimensional (2D) nanomaterial, possesses unique structure (e.g. lighter, harder, and more flexible than steel) and tunable physicochemical (e.g. electronical, optical) properties with potentially wide eco-friendly and cost-effective usage in biosensing. Furthermore, graphene-related nanomaterials (e.g. graphene oxide, doped graphene, carbon nanotubes) have inculcated tremendous interest among scientists and industrials for the development of innovative biosensing platforms, such as arrays, sequencers and other nanooptical/biophotonic sensing systems (e.g. FET, FRET, CRET, GERS). Indeed, combinatorial functionalization approaches are constantly improving the overall properties of graphene, such as its sensitivity, stability, specificity, selectivity, and response for potential bioanalytical applications. These include real-time multiplex detection, tracking, qualitative, and quantitative characterization of molecules (i.e. analytes [H2O2, urea, nitrite, ATP or NADH]; ions [Hg2+, Pb2+, or Cu2+]; biomolecules (DNA, iRNA, peptides, proteins, vitamins or glucose; disease biomarkers such as genetic alterations in BRCA1, p53) and cells (cancer cells, stem cells, bacteria, or viruses). However, there is still a paucity of comparative reports that critically evaluate the relative toxicity of carbon nanoallotropes in humans. This manuscript comprehensively reviews the biosensing applications of graphene and its derivatives (i.e. GO and rGO). Prospects and challenges are also introduced.

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石墨烯,一种有趣的纳米碳同素异形体用于生物传感应用:进展、见解和前景。
石墨烯是一种相对较新的二维(2D)纳米材料,具有独特的结构(如比钢更轻、更硬、更柔韧)和可调的物理化学(如电子、光学)特性,在生物传感领域具有广泛的生态友好和成本效益。此外,石墨烯相关的纳米材料(如氧化石墨烯、掺杂石墨烯、碳纳米管)引起了科学家和工业界对开发创新生物传感平台的极大兴趣,如阵列、测序仪和其他纳米光学/生物光子传感系统(如FET、FRET、CRET、GERS)。事实上,组合功能化方法正在不断提高石墨烯的整体性能,如其敏感性、稳定性、特异性、选择性和对潜在生物分析应用的响应。这些包括分子的实时多重检测、跟踪、定性和定量表征(即分析物[H2O2、尿素、亚硝酸盐、ATP或NADH];离子[Hg2+, Pb2+,或Cu2+];生物分子(DNA、iRNA、多肽、蛋白质、维生素或葡萄糖;疾病生物标志物,如BRCA1、p53的遗传改变)和细胞(癌细胞、干细胞、细菌或病毒)。然而,仍然缺乏批判性地评估碳纳米同素异形体对人类的相对毒性的比较报告。本文全面回顾了石墨烯及其衍生物(即氧化石墨烯和还原氧化石墨烯)的生物传感应用。展望和面临的挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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审稿时长
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