Department of Chemistry & Biochemistry, Metropolitan State University of Denver, Denver, CO 80204, USA.
Program in Biomolecular Science and Engineering, University of California Santa Barbara, Santa Barbara, CA 93106, USA.
Biosensors (Basel). 2023 Jun 25;13(7):675. doi: 10.3390/bios13070675.
To overcome early cancer detection challenges, diagnostic tools enabling more sensitive, rapid, and noninvasive detection are necessary. An attractive cancer target for diagnostic blood tests is human Ecto-NOX disulfide-thiol exchanger 2 (ENOX2), expressed in most human cancer types and regularly shed into blood sera. Here, we developed an electrochemical DNA-based (E-DNA) biosensor that rapidly detects physiologically relevant levels of ENOX2. To identify ENOX2-binding aptamers that could potentially be used in a biosensor, recombinantly expressed ENOX2 was used as a binding target in an oligonucleotide library pull-down that generated a highly enriched ENOX2-binding aptamer. This candidate aptamer sensitively bound ENOX2 via gel mobility shift assays. To enable this aptamer to function in an ENOX2 E-DNA biosensor, the aptamer sequence was modified to adopt two conformations, one capable of ENOX2 binding, and one with disrupted ENOX2 binding. Upon ENOX2 introduction, a conformational shift to the ENOX2 binding state resulted in changed dynamics of a redox reporter molecule, which generated a rapid, significant, and target-specific electrical current readout change. ENOX2 biosensor sensitivity was at or below the diagnostic range. The ENOX2 E-DNA biosensor design presented here may enable the development of more sensitive, rapid, diagnostic tools for early cancer detection.
为了克服早期癌症检测的挑战,需要开发能够实现更敏感、快速和非侵入式检测的诊断工具。一种有吸引力的用于诊断血液检测的癌症靶标是人类外核苷酸焦磷酸酶/磷酸二酯酶 2(ENOX2),它在大多数人类癌症类型中表达,并经常被分泌到血清中。在这里,我们开发了一种基于电化学 DNA(E-DNA)的生物传感器,可快速检测生理相关水平的 ENOX2。为了鉴定可能用于生物传感器的 ENOX2 结合适体,我们使用重组表达的 ENOX2 作为结合靶标,在寡核苷酸文库下拉中生成了高度富集的 ENOX2 结合适体。该候选适体通过凝胶迁移率变动分析灵敏地结合 ENOX2。为了使该适体能够在 ENOX2 E-DNA 生物传感器中发挥作用,对适体序列进行了修饰,以采用两种构象,一种能够结合 ENOX2,另一种则破坏了 ENOX2 的结合。在引入 ENOX2 后,构象向 ENOX2 结合状态的转变导致氧化还原报告分子的动力学发生变化,从而产生快速、显著和特异性的电流读数变化。ENOX2 生物传感器的灵敏度达到或低于诊断范围。这里提出的 ENOX2 E-DNA 生物传感器设计可能会为早期癌症检测开发更敏感、快速的诊断工具。