Time-resolved Fret

Time-resolved FRET is a fluorescence-based technique that measures molecular proximity and conformational change by tracking energy transfer between nearby donor and acceptor fluorophores over time. A pulsed excitation source initiates donor fluorescence, and an acceptor within nanometer-scale distance reduces the donor’s fluorescence lifetime through nonradiative Förster energy transfer. Measuring this lifetime change can reveal molecular distances and interactions while reducing interference from background fluorescence and sample autofluorescence. In biological research, time-resolved FRET supports studies of protein association, receptor activation, enzyme activity, and dynamic structural changes, providing quantitative insight into biomolecular mechanisms.

Time-resolved Fret - Related Videos

Research

JoVE Journal - Bioengineering

Millifluidics for Chemical Synthesis and Time-resolved Mechanistic Studies

0 Views •

Cited by 8 •

2013

Millifluidic devices are utilized for controlled synthesis of nanomaterials, time-resolved analysis of reaction mechanisms and continuous flow catalysis.

Time Multiplexing Super Resolving Technique for Imaging from a Moving Platform

0 Views •

2014

A method for overcoming the optical diffraction limit is presented. The method includes a two-step process: optical phase retrieval using iterative Gerchberg-Saxton algorithm, and imaging system shifting followed by repetition of the first step. A synthetically increased lens aperture is generated along the direction of movement, yielding higher imaging resolution.

Research

JoVE Journal - Biology
Free Sample

Combining QD-FRET and Microfluidics to Monitor DNA Nanocomplex Self-Assembly in Real-Time

0 Views •

Cited by 4 •

2009

We present a novel and powerful integration of nanophotonics (QD-FRET) and microfluidics to investigate the formation of polyelectrolyte polyplexes, which is expected to provide better control and synthesis of uniform and customizable polyplexes for future nucleic acid-based therapeutics.

FRET Microscopy for Real-time Monitoring of Signaling Events in Live Cells Using Unimolecular Biosensors

0 Views •

Cited by 29 •

2012

Förster resonance energy transfer (FRET) microscopy is a powerful technique for real-time monitoring of signaling events in live cells using various biosensors as reporters. Here we describe how to build a customized epifluorescence FRET imaging system from commercially available components and how to use it for FRET experiments.

Time-Resolved Forster Resonance Energy Transfer for Monitoring Protein Phosphorylation in Cells

0 Views •

2025

This video describes the time-resolved Förster resonance energy transfer or TR-FRET assay to determine endogenous protein phosphorylation with the help of donor and acceptor fluorophores tagged on antibodies specific to a test protein. This technique is designed to measure the phosphorylation of test proteins in cell lysates.

View All Results

FAQs

Related Topics