Dual-Mode Arginine Assay Based on the Conformation Switch of a Ferrocene-Grafted Polypeptide.
Ling WuKaijie ZhuShulei XueBowen WuZhongliang XiaoZemeng FengYulong YinJishan LiDonghong YuZhong CaoPublished in: Analytical chemistry (2024)
Both controllable regulation of the conformational structure of a polypeptide and specific recognition of an amino acid are still arduous challenges. Here, a novel dual-mode (electrochemical and colorimetric) biosensor was built for arginine (Arg) recognition based on a conformation switch, utilizing controllable and synergistic self-assembly of a ferrocene-grafted hexadecapeptide (P 16 Fc) with gold nanoparticles (AuNPs). Benefiting from the flexibility and unique topological structure of P 16 Fc formed nanospheres, the assembly and disassembly can undergo a conformation transition induced by Arg through controlling the distance and number of Fc detached from the gold surface, producing on-off electrical signals. Also, they can induce aggregation and dispersion of AuNPs in solution, causing a color change. The mechanism of Arg recognition with polypeptide conformation regulation was well explored by combining microstructure characterizations with molecular mechanics calculations. The electrochemical and colorimetric assays for Arg were successfully established in sensitive and selective manner, not only obtaining a very low detection limit, but also effectively eliminating the interference from other amino acids and overcoming the limitation of AuNP aggregation. Notably, the conformational change-based assay with the peptide regulated by the target will make a powerful tool for the amino acid biosensing and health diagnosis.
Keyphrases
- gold nanoparticles
- amino acid
- molecular dynamics simulations
- label free
- high throughput
- molecular dynamics
- reduced graphene oxide
- crystal structure
- healthcare
- single molecule
- public health
- nitric oxide
- white matter
- cancer therapy
- multiple sclerosis
- health information
- single cell
- molecularly imprinted
- climate change
- density functional theory
- ionic liquid
- fluorescent probe