Key Laboratory of Functional Molecular Solids, Ministry of Education, Anhui Laboratory of Molecule-Based Materials, Anhui Key Laboratory of Chemo-Biosensing, College of Chemistry and Materials Science, Anhui Normal University, Wuhu 241000, PR China.
Scholl of Basic Courses, Bengbu Medical College, Bengbu 233030, PR China.
ACS Appl Bio Mater. 2023 Nov 20;6(11):5097-5104. doi: 10.1021/acsabm.3c00769. Epub 2023 Oct 18.
It is of great significance for the analysis of multiple biomarkers because a single biomarker is difficult to accurately achieve early diagnosis, disease course monitoring, and prognosis evaluation. Herein, a luminescence thermosensitive hydrogel was synthesized by radical polymerization using a methacrylic acid derivative monomer of luminol (LuMA) as luminescent, -isopropylacrylamide (NIPAM) as thermosensitive monomer, and acrydite-oligonucleotides [dopamine (DA) aptamer, DNA C1, and DNA C2] as recognition elements. The combined DA based on the affinity interaction between the DA and the aptamer on the hydrogel polymer chain was electrochemically oxidized to dopamine quinone during the electrochemiluminescence (ECL) scanning, which effectively quenched the ECL signal of LuMA due to the resonance energy transfer (RET). In addition, the thermosensitive hydrogel showed swelling-collapse characteristics when the temperature was below and above the volume phase transition temperature. Undergoing the collapse process initiated by the temperature, the RET efficiency was further enhanced due to the shortened distance between the energy donor and acceptor, showing a 1.4 times signal amplification and achieving sensitive detection of DA with a limit of detection (LOD) of 1.7 × 10 M. For a proof of concept application, coupled with the target-induced release of DA from the DNA-magnetic beads bioconjugations based on duplex-specific nuclease (DSN)-assisted target recycling amplification strategy and DNAzyme cleavage reaction, this ECL-RET approach was successfully used to evaluate multiple targets including miRNA-141 and MUC1 with the LOD of 2.5 aM and 1.6 fg/mL, respectively. The excellent performances of the versatile and robust ECL-RET hydrogel in multiple target sensing showed potential applications in clinical diagnosis and disease therapeutic assay.
由于单个生物标志物很难实现早期诊断、疾病过程监测和预后评估,因此对多种生物标志物的分析具有重要意义。本文通过自由基聚合,以鲁米诺(Luminol)的甲基丙烯酸酯衍生物单体(LuMA)为发光基团、异丙基丙烯酰胺(NIPAM)为温敏单体、丙烯酰胺-寡核苷酸[多巴胺(DA)适配体、DNA C1 和 DNA C2]为识别元件,合成了一种发光热敏水凝胶。基于水凝胶聚合物链上 DA 与适配体之间的亲和相互作用,将基于 DA 的复合物通过电化学氧化在电化学发光(ECL)扫描过程中转化为多巴胺醌,由于共振能量转移(RET),有效地猝灭了 LuMA 的 ECL 信号。此外,当温度低于和高于体积相转变温度时,热敏水凝胶表现出溶胀-收缩特性。在温度引发的收缩过程中,由于供体和受体之间的距离缩短,RET 效率进一步增强,表现出 1.4 倍的信号放大,实现了对 DA 的灵敏检测,其检测限(LOD)低至 1.7×10^-7 M。为了验证这一概念,结合基于双链特异性核酸酶(DSN)辅助靶标循环放大策略和 DNA 酶切割反应的 DA 从 DNA-磁性珠生物缀合物中引发的靶标释放,该 ECL-RET 方法成功用于评估包括 miRNA-141 和 MUC1 在内的多种靶标,其检测限分别为 2.5 aM 和 1.6 fg/mL。多功能和稳健的 ECL-RET 水凝胶在多种目标传感中的出色性能显示出在临床诊断和疾病治疗分析中的潜在应用。