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Burstein, C.

Publications and source records attributed to Burstein, C..

3 recordsLinked to original sources

Tunable kinetic destabilization governs RNA polymerase passage through a DNA-bound transcription factor

Eukaryotic transcription factors recognize short motifs, creating abundant binding sites within gene bodies and potential collisions with elongating RNA polymerases, yet how such encounters are resolved remains unclear. Here, we use optical tweezers to monitor RNA polymerase transcription through DNA-bound Egr-1, a zinc-finger transcription factor. Using DNA-fluctuation suppression as a readout of polymerase arrival, we show that Egr-1 delays elongation in an orientation- and rNTP-dependent manner, whereas force measurements indicate that RNAP does not bypass the TF by mechanical eviction. Instead, RNAP destabilizes the Egr-1-DNA complex over a short, structured interaction zone, increasing TF dissociation non-monotonically with distance. Monte Carlo simulations incorporating these kinetic changes recapitulate passage-time distributions. CpG methylation shortens Egr-1 residence time and largely eliminates the TF-dependent delay, suggesting a role for gene-body methylation in reducing kinetic barriers to elongation. These results reveal DNA-bound TFs as tunable barriers that locally shape transcription elongation.

biophysics↗

The GT1 domain of RNase J ensures RNA quality control through dsRNA binding in Arabidopsis plastids

RNase J is a ribonuclease found in bacteria, archaea, and plant chloroplasts, and plays diverse roles in RNA maturation and stability. Chloroplast RNase J is encoded by the nuclear RNJ locus and is essential for embryo maturation. Arabidopsis or tobacco plants depleted for RNase J accumulate massive amounts of double-stranded RNA, which interferes with translation and causes chlorosis. Land plant RNase J uniquely contains a C-terminal GT1 domain, a DNA- binding motif found in transcription factors. Here, we have used complementation of an Arabidopsis rnj mutant with versions of RNase J with a mutated or deleted GT1 domain to investigate its role in RNase J function. We show that in vitro, the recombinant GT1 domain binds both double-stranded RNA and DNA, but not single-stranded nucleic acids, with no sequence specificity. Furthermore, while RNase J lacking GT1 binding complements the rnj mutant, these plants accumulate high levels of dsRNA as detected by immunolocalization and RNA-Seq. GT1 mutations also change RNase J solubility in vivo, suggesting that the GT1 domain is involved in localization within the plastid. Taken together, our results suggest that the GT1 domain plays a key role in dsRNA removal through localizing the enzyme and/or selectively binding the dsRNA substrate. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=81 SRC="FIGDIR/small/682605v1_ufig1.gif" ALT="Figure 1"> View larger version (21K): org.highwire.dtl.DTLVardef@e5642borg.highwire.dtl.DTLVardef@136456org.highwire.dtl.DTLVardef@1205466org.highwire.dtl.DTLVardef@184f72b_HPS_FORMAT_FIGEXP M_FIG C_FIG

plant biology↗

Intrinsically disordered regions facilitate Msn2 target search to drive promoter selectivity

Transcription factors (TFs) regulate gene expression by binding specific DNA motifs, yet only a fraction of putative sites is occupied in vivo. Intrinsically disordered regions (IDRs) have emerged as key contributors to promoter selectivity, but the underlying mechanisms remain incompletely understood. Here, we use single-molecule optical tweezers to dissect how IDRs influence DNA binding by Msn2, a yeast stress-response regulator. We show that IDRs facilitate initial non-specific association with DNA and promote one-dimensional diffusion toward target motifs, supported by charge-mediated interactions. Remarkably, the IDR-dependent search mechanism displays sequence sensitivity, with promoter-derived sequences enhancing both initial binding and sliding rates, demonstrating that Msn2-DNA interactions alone are sufficient to confer promoter selectivity in the absence of chromatin or cofactors. These findings provide direct mechanistic evidence for how IDRs tune transcription factor search dynamics and expand sequence recognition beyond canonical motifs, supporting a mechanism for promoter selectivity in complex genomic contexts.

biophysics↗