Biological Engineering Program, Faculty of Engineering, King Mongkut's University of Technology Thonburi, Thailand.
Biochemical Engineering and Pilot Plant Research and Development Laboratory, National Center for Genetic Engineering and Biotechnology, National Science and Technology Development Agency at King Mongkut's University of Technology Thonburi, Thailand.
Nanoscale. 2018 Mar 28;10(12):5466-5473. doi: 10.1039/c7nr07998b. Epub 2018 Feb 15.
Zwitterionic nanoparticles are typically utilized as nanoprobes and delivery vehicles in nanomedicine and therapeutics due to their resistance to interferences. Their high stability also shows great potential to be applied in sensing applications. Here, we report a selective, sensitive and rapid colorimetric sensing of nickel ions (Ni) using zwitterionic polypeptide, EKEKEKPPPPC (EK), capped gold nanoparticles (AuNP-(EK)). By taking advantage of the alternate carboxylic (-COOH)/amine (-NH) groups, the zwitterionic peptide can function dually by being able to sense metal ions and maintain colloidal stability. Ni can trigger the aggregation of the AuNP-(EK) nanoprobe, which results in a red-to-purple color change of the AuNP-(EK) solution. Our 40 nm AuNP-(EK) nanoprobe can detect Ni as low as 34 nM within 15 min with a linear range of 60-160 nM, and is stable in soil, urine and water samples. We demonstrate that the aggregation mechanism of the nanoprobe is due to the interactions between the -NH group of glutamic acid at the N-terminus of the peptide and Ni, and the aggregation process is reversible. Furthermore, the slight modification of two amino acid sequences at the N-terminus allows the nanoprobe to retain its stability, even in a high ionic strength medium. We believe that by adjusting or extending the peptide sequences, new metal ion selective peptides could be created.
两性离子纳米粒子通常因其抗干扰能力而在纳米医学和治疗学中被用作纳米探针和输送载体。它们的高稳定性也显示出在传感应用中的巨大潜力。在这里,我们报道了一种使用两性离子多肽 EKEKEKPPPPC(EK)封端的金纳米粒子(AuNP-(EK))对镍离子(Ni)进行选择性、灵敏和快速比色传感的方法。利用交替的羧酸(-COOH)/胺(-NH)基团,两性离子肽可以通过既能感应金属离子又能保持胶体稳定性的双重作用。Ni 可以触发 AuNP-(EK)纳米探针的聚集,导致 AuNP-(EK)溶液的颜色从红色变为紫色。我们的 40nm AuNP-(EK)纳米探针可以在 15 分钟内检测到低至 34 nM 的 Ni,线性范围为 60-160 nM,并且在土壤、尿液和水样中稳定。我们证明,纳米探针的聚集机制是由于肽的 N 端谷氨酸的 -NH 基团与 Ni 之间的相互作用,并且聚集过程是可逆的。此外,N 端两个氨基酸序列的微小修饰使纳米探针即使在高离子强度介质中也能保持其稳定性。我们相信,通过调整或扩展肽序列,可以创建新的金属离子选择性肽。