
The design and evolution of fluorescent protein-based sensors for monoatomic ions in biology
Author(s) -
Kiheon Baek,
Ke Ji,
Weicheng Peng,
Sureshee M Liyanaarachchi,
Sheel C. Dodani
Publication year - 2021
Publication title -
protein engineering, design and selection
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.627
H-Index - 109
eISSN - 1741-0134
pISSN - 1741-0126
DOI - 10.1093/protein/gzab023
Subject(s) - monatomic gas , fluorescence , ion , nanotechnology , fluorescent protein , chemistry , biophysics , biology , materials science , physics , biochemistry , green fluorescent protein , organic chemistry , gene , quantum mechanics
Living cells rely on a finely tuned symphony of inorganic ion gradients composed of both cations and anions. This delicate balance is maintained by biological receptors all acting in concert to selectively recognize and position ions for homeostasis. These dynamic processes can be intercepted and visualized with optical microscopy at the organismal, tissue, cellular and subcellular levels using fluorescent protein-based biosensors. Since the first report of such tool for calcium (Ca2+) in 1997, outstanding biological questions and innovations in protein engineering along with associated fields have driven the development of new biosensors for Ca2+ and beyond. In this Review, we summarize a workflow that can be used to generate fluorescent protein-based biosensors to study monoatomic ions in biology. To showcase the scope of this approach, we highlight recent advances reported for Ca2+ biosensors and in detail discuss representative case studies of biosensors reported in the last four years for potassium (K+), magnesium (Mg2+), copper (Cu2+/+), lanthanide (Ln3+) and chloride (Cl-) ions.