4.7 Article

Antenna effect of pyridoxal phosphate on the fluorescence of mitoxantrone-silicon nanoparticles and its application in alkaline phosphatase assay

期刊

ANALYTICAL AND BIOANALYTICAL CHEMISTRY
卷 414, 期 17, 页码 4877-4884

出版社

SPRINGER HEIDELBERG
DOI: 10.1007/s00216-022-04110-7

关键词

Silicon nanoparticles; Mitoxantrone; Fluorescence; Antenna effect; Pyridoxal phosphate

资金

  1. National Natural Science Foundation of China [81772287]
  2. Natural Science Foundation of Fujian Province [2020J011203]
  3. Program for Innovative Leading Talents in Fujian Province [2016B016]
  4. Program for Innovative Research Team in Science and Technology in Fujian Province University [2018B033]

向作者/读者索取更多资源

Silicon nanoparticles (SiNPs) are currently attracting extensive research as a low toxicity, stable, and environmentally friendly sensing and imaging fluorescent probe. In this study, mitoxantrone-SiNPs (MXT-SiNPs) with green emission were synthesized under mild temperature conditions. The luminescence of MXT-SiNPs was enhanced using a pyridoxal phosphate (PLP)-based antenna, which also served as a novel sensing strategy for alkaline phosphatase (ALP). The activity of ALP was measured by the relationship between antenna formation ability and PLP hydrolysis degree.
As a kind of sensing and imaging fluorescent probe with the merit of low toxicity, good stability, and environment-friendly, silicon nanoparticles (SiNPs) are currently attracting extensive research. In this work, we obtained mitoxantrone-SiNPs (MXT-SiNPs) with green emission by one-pot synthesis under mild temperature condition. The antenna based on pyridoxal phosphate (PLP) was designed for light-harvesting to enhance the luminescence of MXT-SiNPs and to establish a novel sensing strategy for alkaline phosphatase (ALP). PLP transfers the absorbed photon energy to MXT-SiNPs by forming Schiff base. When PLP is dephosphorized by ALP, the released free hydroxyl group reacts with aldehyde group to form internal hemiacetal, which leads to the failure of Schiff base formation. Based on the relationship between antenna formation ability and PLP hydrolysis degree, the activity of ALP can be measured. A good linear relationship was obtained from 0.2 to 3.0 U/L, with a limit of detection of 0.06 U/L. Furthermore, the sensing platform was successfully used to detect ALP in human serum with recovery of 97.6-106.2%. The rational design of antenna elements for fluorescent nanomaterials can not only provide a new pathway to manipulate the luminescence, but also provide a new direction for fluorescence sensing strategy.

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