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Ostrofet, E.

Publications and source records attributed to Ostrofet, E..

2 recordsLinked to original sources

Accurate single-bead force calibration in high-throughput magnetic tweezers reveals the mechanism of directional transcription termination by MTERF1

High-throughput force spectroscopy assays, such as with magnetic tweezers, enable reconstruction of biomolecular reaction energy landscapes and provide access to rare events with deep statistics. Precise force calibration is essential for accurately describing complex reactions, which can be hindered by sample heterogeneity, such as bead-to-bead difference in magnetic content. Here, we describe an in-situ force calibration methodology for high-throughput magnetic tweezers that enables the calibration for each individual bead with an accuracy of up to 3%, limited only by the statistical resolution. We apply this approach to characterize the directional transcription termination molecular mechanism by the polar roadblock mitochondrial transcription termination factor 1 (MTERF1). Establishing a SpyTag-SpyCatcher surface-attachment strategy, we performed force-jump experiments on the same tethers for up to 11 hours. We showed that directional DNA unwinding is sufficient to explain the polar roadblock activity of MTERF1. Accurate force spectroscopy further reveals that the unlocking transition is rate-limited by a single kinetic barrier, with a transition-state distance consistent with structural interpretations. Together, these results provide a mechanistic and broadly applicable model for the asymmetric stability of MTERF1 and other nucleic acid polar roadblocks and establish a robust force spectroscopy framework for high-throughput magnetic tweezers experiments.

biophysics↗

Quantitative parameters of bacterial RNA polymerase open-complex formation, stabilization and disruption on a consensus promoter

Transcription initiation is the first step in gene expression, and is therefore strongly regulated in all domains of life. The RNA polymerase (RNAP) first associates with the initiation factor{sigma} to form a holoenzyme, which binds, bends and opens the promoter in a succession of reversible states. These states are critical for transcription regulation, but remain poorly understood. Here, we addressed the mechanism of open complex formation by monitoring its assembly/disassembly kinetics on individual consensus lacUV5 promoters using high-throughput single-molecule magnetic tweezers. We probed the key protein-DNA interactions governing the open-complex formation and dissociation pathway by modulating the dynamics at different concentrations of monovalent salts and varying temperatures. Consistent with ensemble studies, we observed that RPO is a stable, slowly reversible state that is preceded by a kinetically significant open intermediate (RPI), from which the holoenzyme dissociates. A strong anion concentration and type dependence indicates that the RPO stabilization may involve sequence-independent interactions between the DNA and the holoenzyme, driven by a non-Coulombic effect consistent with the non-template DNA strand interacting with{sigma} and the RNAP {beta} subunit. The temperature dependence provides the energy scale of open-complex formation and further supports the existence of additional intermediates.

biophysics↗