Quantum Dot Lipase Biosensor Utilizing a Custom-Synthesized Peptidyl-Ester Substrate.
Joyce C BregerKimihiro SusumuGuillermo Lasarte AragonésSebastian A DiazJesper BraskIgor L MedintzPublished in: ACS sensors (2020)
Lipases are an important class of lipid hydrolyzing enzymes that play significant roles in many aspects of cell biology and digestion; they also have large roles in commercial food and biofuel preparation and are being targeted for pharmaceutical development. Given these, and many other biotechnological roles, sensitive and specific biosensors capable of monitoring lipase activity in a quantitative manner are critical. Here, we describe a Förster resonance energy transfer (FRET)-based biosensor that originates from a custom-synthesized ester substrate displaying a peptide at one end and a dye acceptor at the other. These substrates were ratiometrically self-assembled to luminescent semiconductor quantum dot (QD) donors by metal affinity coordination using the appended peptide's terminal hexahistidine motif to give rise to the full biosensing construct. This resulted in a high rate of FRET between the QD donor and the proximal substrate's dye acceptor. The lipase hydrolyzed the intervening target ester bond in the peptide substrate which, in turn, displaced the dye acceptor containing component and altered the rate of FRET in a concentration-dependent manner. Specifics of the substrate's stepwise synthesis are described along with the sensors assembly, characterization, and application in a quantitative proof-of-concept demonstration assay that is based on an integrated Michaelis-Menten kinetic approach. The utility of this unique nanoparticle-based architecture within a sensor configuration is then discussed.
Keyphrases
- energy transfer
- quantum dots
- sensitive detection
- label free
- structural basis
- amino acid
- gold nanoparticles
- highly efficient
- high resolution
- high throughput
- fatty acid
- stem cells
- mesenchymal stem cells
- risk assessment
- fluorescent probe
- molecularly imprinted
- low cost
- tandem mass spectrometry
- solar cells
- capillary electrophoresis
- room temperature