Studying the physics of charged macromolecules by single molecule fluorescence spectroscopy.
Jiang ZhaoPublished in: The Journal of chemical physics (2021)
It is well documented that conventional methods such as dynamic light scattering have encountered difficulties in characterizing charged macromolecules and, therefore, it is desirable that new methods and techniques are introduced. With the ultra-high sensitivity, single molecule fluorescence spectroscopy has successfully lowered the detection limit considerably and enabled measurement under extreme dilution conditions-around the concentration of 10-9M-at which the effect of inter-chain electrostatic repulsion is suppressed. Furthermore, the excellent spatial and temporal resolution as well as the capacity of molecular recognition of these methods help in obtaining rich information of charged macromolecules. This paper summarizes the applications of single molecule fluorescence spectroscopy, especially fluorescence correlation spectroscopy and photon counting histogram, in the studies on charged macromolecules in aqueous solutions and plenty of new information has been revealed on the molecular conformation, counterion distribution, and a few important governing factors. The powerfulness and effectiveness of single molecule fluorescence spectroscopy make it promising in the investigations of charged macromolecules.
Keyphrases
- single molecule
- living cells
- atomic force microscopy
- randomized controlled trial
- systematic review
- high resolution
- molecular dynamics simulations
- magnetic resonance imaging
- climate change
- magnetic resonance
- computed tomography
- liquid chromatography tandem mass spectrometry
- contrast enhanced
- case control
- diffusion weighted
- high speed