Classical structural biology can only provide static snapshots of biomacromolecules. Single-molecule Forster resonance energy transfer (smFRET) paved the way for studying dynamics in macromolecular structures under biologically relevant conditions. Since its first implementation in 1996, smFRET experiments have confirmed previously hypothesized mechanisms and provided new insights into many fundamental biological processes, such as DNA maintenance and repair, transcription, translation, and membrane transport. We review 22 years of contributions of smFRET to our understanding of basic mechanisms in biochemistry, molecular biology, and structural biology. Additionally, building on current state-of-the-art implementations of smFRET, we highli...
Single-molecule Förster resonance energy transfer (smFRET) has emerged as a powerful tool for elucid...
G-quadruplex DNA is formed by tetrads of guanines. It has an immense biological importance, yet it ...
Single-molecule Förster-resonance energy transfer (smFRET) experiments allow the study of biomolecul...
Classical structural biology can only provide static snapshots of biomacromolecules. Single-molecule...
Classical structural biology can only provide static snapshots of biomacromolecules. Single-molecule...
Classical structural biology can only provide static snapshots of biomacromolecules. Single-molecule...
Uncovering the structure and function of biomolecules is a fundamental goal in structural biology. M...
Single-molecule FRET (smFRET) has become a mainstream technique for studying biomolecular structural...
Single-molecule FRET (smFRET) has become a mainstream technique for studying biomolecular structural...
Although viral protein structure and replication mechanisms have been explored extensively with X-ra...
Single-molecule Förster resonance energy transfer (smFRET) has emerged as a powerful tool for elucid...
G-quadruplex DNA is formed by tetrads of guanines. It has an immense biological importance, yet it ...
Single-molecule Förster-resonance energy transfer (smFRET) experiments allow the study of biomolecul...
Classical structural biology can only provide static snapshots of biomacromolecules. Single-molecule...
Classical structural biology can only provide static snapshots of biomacromolecules. Single-molecule...
Classical structural biology can only provide static snapshots of biomacromolecules. Single-molecule...
Uncovering the structure and function of biomolecules is a fundamental goal in structural biology. M...
Single-molecule FRET (smFRET) has become a mainstream technique for studying biomolecular structural...
Single-molecule FRET (smFRET) has become a mainstream technique for studying biomolecular structural...
Although viral protein structure and replication mechanisms have been explored extensively with X-ra...
Single-molecule Förster resonance energy transfer (smFRET) has emerged as a powerful tool for elucid...
G-quadruplex DNA is formed by tetrads of guanines. It has an immense biological importance, yet it ...
Single-molecule Förster-resonance energy transfer (smFRET) experiments allow the study of biomolecul...