Key Laboratory of Luminescence Analysis and Molecular Sensing, Ministry of Education, School of Chemistry and Chemical Engineering, Southwest University, Chongqing, 400715, PR China.
School of Chemistry and Chemical Engineering, Chongqing University of Technology, Chongqing, 400054, PR China.
Biosens Bioelectron. 2024 Oct 1;261:116473. doi: 10.1016/j.bios.2024.116473. Epub 2024 Jun 12.
Sensitive monitoring of luteinizing hormone (LH), a glycoprotein that regulates the synthesis of regulatory steroid hormones, can facilitate the diagnosis of various reproductive diseases. In this work, a new and highly catalytic Sulfur-doped and bimetal-coordinated CoFe(CN)NO (denoted as S-CoFe(CN)NO) nanoparticles are synthesized. Such material is further used to construct high performance sensing interface and coupled with primer exchange reaction (PER) and hybridization chain reaction (HCR) amplification cascades for sensitive electrochemical aptamer-based LH assay. Target LH molecules bind aptamer sequences in DNA duplex probes to liberate ssDNA strands, which initiate subsequent PER/HCR amplification cascades for the capture of many ferrocene (Fc)-tagged DNAs on sensing interface. S-CoFe(CN)NO subsequently leads to catalytic oxidation of these Fc tags for yielding substantially magnified currents for realizing ultrasensitive assay of LH with the detection limit of 0.69 pM in range from 5 pM to 10 nM. Owing to the high specificity of aptamer, such sensor has high selectivity and can achieve low levels of LH assay in diluted serum samples. With the successful demonstration for detecting trace LH, such sensor can be easily extended as a universal aptamer-based electrochemical sensing method for monitoring various target analytes in the biomedical and biological fields.
促黄体生成激素(LH)是一种糖蛋白,可调节调节性甾体激素的合成,对各种生殖疾病的诊断具有重要意义。本工作合成了一种新型的、高催化活性的硫掺杂双金属配位 CoFe(CN)NO(记为 S-CoFe(CN)NO)纳米粒子。该材料进一步用于构建高性能传感界面,并与引物交换反应(PER)和杂交链式反应(HCR)扩增级联反应相结合,用于基于电化学适体的 LH 灵敏检测。目标 LH 分子与 DNA 双链探针中的适体序列结合,释放单链 DNA 链,随后引发后续的 PER/HCR 扩增级联反应,在传感界面上捕获许多带有二茂铁(Fc)标签的 DNA。S-CoFe(CN)NO 随后催化这些 Fc 标签的氧化,产生明显放大的电流,从而实现 LH 的超灵敏检测,检测下限为 0.69 pM,检测范围为 5 pM 至 10 nM。由于适体的高特异性,该传感器具有高选择性,并能够在稀释的血清样本中实现低水平的 LH 检测。通过成功地检测痕量 LH 的实例,该传感器可作为一种通用的基于适体的电化学传感方法,用于监测生物医学和生物学领域中的各种靶标分析物。