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Podh, N. K.

Publications and source records attributed to Podh, N. K..

2 recordsLinked to original sources

Paused Polymerase synergises with transcription factors and RNA to enhance the transcriptional potential of promoters

Regulated pausing of RNA polymerase II (Pol II) is essential for enabling rapid and coordinated transcriptional responses to signalling cues. Pausing also contributes to the formation of nucleosome-free regions with the help of chromatin remodellers. However, if these nucleosome-free regions engage with transcription factors to stimulate the transcription potential of paused promoters is not known. In this study, we demonstrate that ligand-induced estrogen receptor-alpha (ER) binding is stabilized at Pol II-paused sites. This stabilization results from an increased dwell time of ER on chromatin, as revealed by single molecule tracking (SMT) experiments. Notably, short chromatin-associated RNAs generated by the paused Pol II contribute to enhancing ER binding at paused promoters. We also observe that pausing increases histone H3K27 acetylation (H3K27ac) levels, which primes paused promoters for robust transcriptional activation upon release. Collectively, these findings suggest that paused Pol II plays a central role in enhancing transcription factor binding through an RNA-dependent mechanism. This, in turn, results in a more vigorous transcriptional response following pausing release, thus contributing to the fine-tuning of ER-mediated gene regulation.

molecular biology↗

Single-molecule tracking reveals the dynamics of Ipl1 recruitment to the kinetochores and spindles in S. cerevisiae

Aurora kinase B, Ipl1 in Saccharomyces cerevisiae, is the master regulator of cell division required for checkpoint regulation, spindle assembly and disassembly, chromosome segregation, and cytokinesis. Decades of research employed ensemble averaging methods to understand its dynamics and function; however, the dynamic information was lost due to population-based averaging. Here, we use single-molecule imaging and tracking (SMIT) to quantify the recruitment dynamics of Ipl1 at the kinetochores and spindles in live cells. Our data suggest that Ipl1 is recruited to these locations with different dynamics. We have demonstrated how the recruitment dynamics of Ipl1 at the kinetochores during metaphase changes in the presence and absence of tension across the kinetochore, in the absence of protein phosphatase 1 (Glc7), and the absence of its known recruiters (Ctf19 and Bub1). The SMIT of other chromosome passenger complex members suggests its hierarchical assembly at the kinetochore. Hence, SMIT provides a dynamic view of the Ipl1 trafficking at the kinetochores and spindles.

cell biology↗