Department of Chemistry, Capital Normal University, Beijing, 100048, China.
Department of Chemistry, Capital Normal University, Beijing, 100048, China.
Anal Chim Acta. 2024 Feb 8;1289:342201. doi: 10.1016/j.aca.2024.342201. Epub 2024 Jan 2.
Responsive hydrogels have received much attention for improving the detection performance of electrochemical sensors because of their special responsiveness. However, current responsive hydrogels generally suffer from long response times, ranging from tens of minutes to several hours. This situation severely limits the detection performance and practical application of electrochemical sensors. Here, an electrochemical sensing platform was constructed by employing dual-responsive polyacrylamide/zinc finger peptide/Fe-MOF hydrogel (PZFH) as the silent layer, sodium alginate-Ni-graphene oxide hydrogel as the signal layer. GOx@ZIF-8, as the immunoprobe, catalyzed glucose to HO and gluconic acid, resulting in the cleavage of immunoprobe as the pH decreased and subsequent release of Zn ions. During the process of Fe-MOF converting from Fe to Fe, free radicals were generated and used to destroy the structure of the PZFH. Cysteine and histidine in the zinc finger peptide can specifically bind to Zn to create many pores in PZFH, exposing the signal layer. These synergistic effects rapidly decreased the impedance of PZFH and increased the electrochemical signal of Ni. The electrochemical sensing platform was used to detect pro-gastrin-releasing peptide with response times as short as 7 min of PZFH, a wide linear range from 100 ng mL to 100 fg mL, and an ultra-low limit of detection of 14.24 fg mL (S/N = 3). This strategy will provide a paradigm for designing electrochemical sensors.
响应性水凝胶因其特殊的响应性而备受关注,可用于提高电化学传感器的检测性能。然而,目前的响应性水凝胶通常存在响应时间长的问题,从几十分钟到几个小时不等。这种情况严重限制了电化学传感器的检测性能和实际应用。在这里,我们构建了一个电化学传感平台,采用双响应性聚丙烯酰胺/锌指肽/Fe-MOF 水凝胶(PZFH)作为沉默层,海藻酸钠-Ni-氧化石墨烯水凝胶作为信号层。GOx@ZIF-8 作为免疫探针,催化葡萄糖生成 HO 和葡萄糖酸,导致免疫探针在 pH 值降低时被切割,并随后释放 Zn 离子。在 Fe-MOF 从 Fe 转化为 Fe 的过程中,会产生自由基并用于破坏 PZFH 的结构。锌指肽中的半胱氨酸和组氨酸可以特异性地与 Zn 结合,在 PZFH 中产生许多孔,暴露出信号层。这些协同作用迅速降低了 PZFH 的阻抗,并增加了 Ni 的电化学信号。该电化学传感平台用于检测胃泌素释放肽前体,其响应时间短至 7 分钟,线性范围从 100ng mL 到 100fg mL,检测限低至 14.24 fg mL(S/N = 3)。该策略将为设计电化学传感器提供范例。