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Way, L. E.

Publications and source records attributed to Way, L. E..

5 recordsLinked to original sources

Genome-wide DNA bridging by H-NS reshapes the stationary phase nucleoid and transcriptional landscape

Bacterial nucleoid-associated proteins (NAPs) structure the chromosome and regulate gene expression, but how these two functions are related is unclear. H-NS is a well-studied NAP that acts as a global gene silencer capable of bridging and looping DNA in vitro. Here, using high-throughput chromosome conformation capture assays, we show that H-NS mediates genome-wide long-range DNA looping in the stationary-phase nucleoid of Escherichia coli. Chromatin immunoprecipitation assays demonstrate that high levels of H-NS are present at the base of DNA loops. Super-resolution imaging and single-particle tracking show that H-NS binds more tightly in stationary phase and compacts the nucleoid mesh. Transcriptomic analyses indicate H-NS represses gene expression more strongly in the looped nucleoid and enables higher expression of genes outside of H-NS-bound regions. Overall, our study demonstrates that H-NS bridges distal DNA regions along the genome upon nutrient limitation, causing reduced nucleoid accessibility, stronger transcriptional repression, and a shifted transcriptional landscape.

molecular biology↗

Dps binds and protects DNA in starved Escherichia coli with minimal effect on chromosome accessibility, dynamics and organisation

Dps is the most abundant nucleoid-associated protein in starved Escherichia coli with [~]180,000 copies per cell. Dps binds DNA and oxidises iron, facilitating survival in harsh environments. Dps-DNA complexes can form crystalline structures, leading to the proposed model that Dps reorganises the starved E. coli nucleoid into a compact liquid crystal, slowing chromosome dynamics and limiting access of other proteins to DNA. In this work, we directly tested this model using live-cell super-resolution microscopy and Hi-C analysis. We found that after 96 h of starvation, Dps compacts the nucleoid and increases short-range DNA-DNA interactions, but does not affect chromosome accessibility to large protein nanocages or small restriction enzymes. We also report that chromosome dynamics and organisation are primarily impacted by the bacterial growth phase; the effect of Dps is relatively minor. Our work clarifies the role of Dps in modulating nucleoid properties, and we propose an updated model for Dps-DNA interactions in which Dps binds, protects and compacts DNA largely without influencing chromosome access, dynamics and organisation. Additionally, this work provides a general framework for assessing the impact of nucleoid-associated proteins on key aspects of chromosome function in live cells. TOC O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=82 SRC="FIGDIR/small/673347v3_ufig1.gif" ALT="Figure 1"> View larger version (36K): org.highwire.dtl.DTLVardef@1385efforg.highwire.dtl.DTLVardef@1e4cb76org.highwire.dtl.DTLVardef@1e9e43dorg.highwire.dtl.DTLVardef@8768f4_HPS_FORMAT_FIGEXP M_FIG C_FIG

biophysics↗

ParB C-terminal lysine residues are essential for dimerization, in vitro DNA sliding and in vivo function

The broadly conserved ParB protein performs crucial functions in bacterial chromosome segregation and replication regulation. The cellular function of ParB requires it to dimerize, recognize parS DNA sequences, clamp on DNA, then slide to adjacent sequences through nonspecific DNA binding. How ParB coordinates nonspecific DNA binding and sliding remains elusive. Here, we combine multiple in vitro biophysical and computational tools and in vivo approaches to address this question. We found that the five conserved lysine residues in the C-terminal domain of ParB play distinct roles in proper positioning and sliding on DNA, and their integrity is crucial for ParBs in vivo functions. Many proteins with diverse cellular activities need to move on DNA while loosely bound. Our findings reveal the detailed molecular mechanism by which multiple flexible basic residues enable DNA binding proteins to efficiently slide along DNA.

biophysics↗

The B. subtilis replicative polymerases bind the sliding clamp with different strengths to tune replication processivity and fidelity

Ring-shaped sliding clamp proteins are essential components of the replication machinery, the replisome, across all domains of life. In bacteria, DNA polymerases bind the sliding clamp, DnaN, through conserved short peptide sequences called clamp-binding motifs. Clamp binding increases the processivity and rate of DNA synthesis and is generally required for polymerase activity. The current understanding of clamp-polymerase interactions was elucidated in the model bacterium Escherichia coli, which has a single replicative polymerase, Pol III. However, many bacteria have two essential replicative polymerases, such as PolC and DnaE in Bacillus subtilis. PolC performs the bulk of DNA synthesis whereas the error-prone DnaE only synthesizes short stretches of DNA on the lagging strand. How the clamp interacts with the two polymerases and coordinates their activity is unknown. We investigated this question by combining in vivo single-molecule fluorescence microscopy with biochemical and microbiological assays. We found that PolC-DnaN binding is essential for replication, although weakening the interaction is tolerated with only minimal effects. In contrast, the DnaE-DnaN interaction is dispensable for replication. Altering the clamp-binding strength of DnaE produces only subtle effects on DnaE cellular localization and dynamics, but it has a substantial impact on mutagenesis. Our results support a model in which DnaE acts distributively during replication but can be stabilized on the DNA template by clamp binding. This study provides new insights into the coordination of multiple replicative polymerases in bacteria and the role of the clamp in polymerase processivity, fidelity, and exchange.

biochemistry↗

Lysine-Cysteine-Lysine (KCK) tag changes ParB action in vitro but not in vivo.

Due to the enhanced labeling capability of maleimide-based fluorescent probes, lysine-cysteine-lysine (KCK) tags are frequently added to proteins for visualization. In this study, we employed in vitro single-molecule DNA flow-stretching assay as a sensitive way to assess the impact of the KCK-tag on the property of DNA-binding proteins. Using Bacillus subtilis ParB as an example, we show that, although no noticeable changes were detected by in vivo fluorescence imaging and chromatin immunoprecipitation (ChIP) assays, the KCK-tag substantially altered ParBs DNA compaction rates, its response to nucleotide binding and to the presence of the specific sequence (parS) on the DNA. While it is typically assumed that short peptide tags minimally perturb protein function, our results urge researchers to carefully validate the use of tags for protein labeling. Our comprehensive analysis can be expanded and used as a guide to assess the impacts of other tags on DNA-binding proteins in single-molecule assays. MotivationSingle-molecule fluorescence microscopy has been extensively used in modern biology to define the molecular action of proteins. Appending short peptide tags is a common strategy to enhance fluorescence labeling. In this Resources article, we evaluate the impact of a commonly used tag, the lysine-cysteine-lysine (KCK) tag, on protein behavior in single-molecule DNA flow-stretching assay, which is a sensitive and versatile method to understand the action of DNA-binding proteins. Our motivation is to provide researchers with an experimental framework to validate the fluorescently labeled DNA-binding proteins in single-molecule methods.

biophysics↗