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Biology subjects

Stoeber, S. D.

Publications and source records attributed to Stoeber, S. D..

3 recordsLinked to original sources

ATAC-seq and MNase-seq Detect Distinct Modes of Chromatin Accessibility

Chromatin accessibility shapes the ability of transcription factors (TFs) and the transcriptional machinery to engage genomic DNA and therefore plays a central role in gene regulation. Two widely used approaches for profiling chromatin accessibility are micrococcal nuclease (MNase)-seq and assay for transposase-accessible chromatin (ATAC)-seq. ATAC-seq peaks are often thought to be equivalent to nucleosome-depleted regions (NDRs) that are defined by MNase-seq; however, these two measurements have not been systematically compared. Here, we perform a side-by-side comparison of ATAC-seq and MNase-seq in budding yeast and find a large discrepancy between ATAC-seq peaks and MNase-defined NDRs. We show that this discrepancy is not primarily due to the intrinsic differences between MNase and Tn5 enzymatic activity. Instead, ATAC-seq peaks and NDRs capture distinct chromatin states. Specifically, ATAC-seq peaks are enriched at dynamic nucleosomes associated with transcriptional co-regulators, including SAGA and SWI/SNF, whereas ATAC- NDRs mark more static nucleosome-free regions at promoters. Depletion of SWI/SNF reduces ATAC-seq signals without affecting most NDRs. Generation of NDRs and ATAC-seq peaks requires distinct TF properties, and native TFs differ in their ability to produce these two types of open chromatin. Finally, we find that the functional distinctions between ATAC-seq peaks and NDRs are widespread across eukaryotic species, including human cells. Together, our results provide new insights into the biological meaning of chromatin accessibility measured by these two assays.

molecular biology↗

Cohesin Facilitates Nucleosome Invasion by Transcription Factors

Nucleosomes present a major barrier to transcription factor (TF) binding. However, a subgroup of TFs known as pioneer factors (PFs) can recognize motifs covered by nucleosomes and initiate chromatin opening. PFs also bind nucleosomal substrates with high affinity in vitro, which may facilitate their nucleosome invasion in vivo. Here, we show that LexA, a bacterial TF with poor nucleosome binding in vitro, can rapidly invade into a well-positioned nucleosome from a motif positioned at the dyad when expressed ectopically in yeast. This striking contrast between LexA binding in vitro and in vivo raises the possibility that TFs can exploit nucleosome dynamics in vivo to access occluded sites. Surprisingly, we find that LexA-mediated chromatin opening can occur in the absence of DNA replication, chromatin remodeling, histone turnover, and a few histone chaperones. Instead, nucleosome invasion by LexA and a native PF, Cbf1, is promoted by the cohesin complex, illustrating intriguing a connection between cohesin and TF binding. Together, our results demonstrate that even non-pioneer TFs like LexA can bind and displace nucleosomes in vivo, through a process facilitated by cohesin.

molecular biology↗

Native nucleosome-positioning elements for the investigation of nucleosome repositioning

Nucleosome repositioning is essential for establishing nucleosome-depleted regions (NDRs) to initiate transcription. This process has been extensively studied using structural, biochemical, and single-molecule approaches, which require homogenously positioned nucleosomes. This is often achieved using the Widom 601 sequence, a highly efficient nucleosome positioning element (NPE) selected for its unusually strong binding to the H3-H4 histone tetramer. Due to the artificial nature of 601, native NPEs are needed to explore the role of DNA sequence in nucleosome repositioning. Here, we characterize the position distributions and nucleosome formation free energy for a set of yeast native nucleosomes (YNNs) from Saccharomyces cerevisiae. We show these native NPEs can be used in biochemical studies of nucleosome repositioning by transcription factors (TFs) and the chromatin remodeler Chd1. TFs could directly reposition a fraction of nucleosomes containing native NPEs, but not 601-containing nucleosomes. In contrast, partial unwrapping was similar for 601 and native NPE sequences, and the rate of ATP-dependent remodeling by Chd1 was within the range of the fast and slow directions of the 601 nucleosomes. This set of native NPEs provides an alternative to the 601 NPE that can be used for probing the repositioning of nucleosomes that contain native DNA sequences.

molecular biology↗