Department of Physics and Astronomy and ‡Department of Bioengineering, University of Pennsylvania , Philadelphia 19104, United States.
ACS Nano. 2016 Sep 27;10(9):8700-4. doi: 10.1021/acsnano.6b04110. Epub 2016 Sep 2.
Scalable production of all-electronic DNA biosensors with high sensitivity and selectivity is a critical enabling step for research and applications associated with detection of DNA hybridization. We have developed a scalable and very reproducible (>90% yield) fabrication process for label-free DNA biosensors based upon graphene field effect transistors (GFETs) functionalized with single-stranded probe DNA. The shift of the GFET sensor Dirac point voltage varied systematically with the concentration of target DNA. The biosensors demonstrated a broad analytical range and limit of detection of 1 fM for 60-mer DNA oligonucleotide. In control experiments with mismatched DNA oligomers, the impact of the mismatch position on the DNA hybridization strength was confirmed. This class of highly sensitive DNA biosensors offers the prospect of detection of DNA hybridization and sequencing in a rapid, inexpensive, and accurate way.
可扩展的全电子 DNA 生物传感器的高灵敏度和选择性的生产是与 DNA 杂交检测相关的研究和应用的关键推动步骤。我们已经开发出了一种可扩展且非常可重复(>90%的产率)的制造工艺,用于基于功能化单链探针 DNA 的石墨烯场效应晶体管(GFET)的无标记 DNA 生物传感器。GFET 传感器的 Dirac 点电压的偏移与目标 DNA 的浓度呈系统变化。该生物传感器对 60 个碱基对 DNA 寡核苷酸的分析范围很宽,检测限为 1 fM。在与错配 DNA 寡核苷酸的对照实验中,证实了错配位置对 DNA 杂交强度的影响。这种高灵敏度的 DNA 生物传感器有望以快速、廉价和准确的方式检测 DNA 杂交和测序。