Biogenic Polymer-Based Fluorescent Assemblies: Versatile Platforms for Ultrasensitive ATP Detection and Enzyme Assay.
Sourav MondalNilanjan DeyPublished in: Langmuir : the ACS journal of surfaces and colloids (2024)
Here, we investigated the optical properties of biocompatible supramolecular assemblies formed through electrostatic interactions between anionic fluorescent dyes and biogenic polymers. The dynamic equilibrium between the monomeric form (fluorescent) and aggregates (nonfluorescent) of dye molecules is responsible for the stimuli-responsive behavior of these polymer composites, which can respond to changes in pH, temperature, and ionic strength. Furthermore, we employed supramolecular assemblies for the purpose of turn-on fluorescence sensing of adenosine triphosphate (ATP) at physiological pH. Notably, no interference was observed even in the presence of well-known competing analytes such as pyrophosphate. In addition to its outstanding selectivity, the present system can detect ATP at concentrations as low as 4.8 nM. The superior detection capabilities are achieved through multiple interactions with biogenic polymers, involving the adenine ring, ribose unit (through hydrogen bonding), and phosphate groups (via charge pairing) of ATP. Given the remarkable sensitivity to ATP, we have applied the present system for the detection of a dephosphorylating enzyme, alkaline phosphatase.
Keyphrases
- label free
- quantum dots
- living cells
- loop mediated isothermal amplification
- real time pcr
- energy transfer
- sensitive detection
- ionic liquid
- fluorescent probe
- aqueous solution
- molecular dynamics simulations
- single molecule
- molecular dynamics
- high throughput
- cancer therapy
- water soluble
- high resolution
- high speed
- atomic force microscopy
- protein kinase