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Biology subjects

Sefer, A.

Publications and source records attributed to Sefer, A..

2 recordsLinked to original sources

Reliability and accuracy of single-molecule FRET studies for characterization of structural dynamics and distances in proteins

Single-molecule FRET (smFRET) has become an established tool to study biomolecular structure and dynamics in vitro and in live cells. We performed a worldwide blind study involving 19 labs to assess the uncertainty of FRET experiments for proteins with respect to the measured FRET efficiency histograms, determination of distances, and the detection and quantification of structural dynamics. Using two protein systems that undergo distinct conformational changes, we obtained an uncertainty of the FRET efficiency of less than {+/-} 0.06, corresponding to an interdye distance precision of [≤] 0.2 nm and accuracy of [≤] 0.5 nm. We further discuss the limits for detecting distance fluctuations with sensitivity down to [lsim] 10% of the Forster distance and provide guidelines on how to detect potential dye perturbations. The ability of smFRET experiments to simultaneously measure distances and avoid averaging of conformational dynamics slower than the fluorescence lifetime is unique for dynamic structural biology.

biophysics↗

Structural dynamics of DNA strand break sensing by PARP-1 at a single-molecule level

Single stranded breaks (SSBs) are the most frequent DNA lesions threatening genomic integrity. A highly kinked DNA structure in complex with human PARP-1 led to the proposal that SSB sensing in Eukaryotes relies on dynamics of both the broken DNA double helix and PARP-1s multi-domain organization. Here, we directly probe this fundamental yet poorly understood process at the single-molecule level. Quantitative SM-FRET and structural ensemble calculations reveal how PARP-1 binding converts DNA SSBs from a largely unperturbed conformation into the highly kinked state. Binding of the second N-terminal zinc finger yields an intermediate DNA conformation that can be recognized by the first zinc finger. Thus, the data is inconsistent with a conformational selection model, instead an induced fit mechanism via a multi-domain assembly cascade drives SSBs sensing. Interestingly, a clinically used PARP-1 inhibitor niraparib shifts the equilibrium towards the unkinked state, whereas the inhibitor EB47 stabilizes the kinked state.

biophysics↗