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Shliaha, P. V.

Publications and source records attributed to Shliaha, P. V..

4 recordsLinked to original sources

Chromatin is dispensable for bacterial life

Inside cells, DNA is intimately associated with proteins, forming chromatin. The protein constituents of chromatin vary across the tree of life: histones are the principal building blocks of chromatin in eukaryotes and many archaea, whereas bacteria typically encode a collection of nucleoid-associated proteins (NAPs) that wrap, bend, bridge or coat the DNA. Although chromatin proteins appear to be a universal feature of cellular life, DNA-templated processes such as transcription, replication, and DNA repair can take place in vitro in the absence of chromatin, raising the possibility that cellular systems might exist -- or could be built -- that lack chromatin proteins. To explore this possibility, the molecular consequences and potential systemic adjustments required for life without chromatin, we serially deleted the nine most abundant NAPs from E. coli (hupA , hupB , ihfA , ihfB , hns , stpA , fis , dps , lrp), resulting in a strain ({Delta}NAP9) that lacks its native chromatin. Using an array of different techniques, we document change -- and sometimes surprising lack thereof -- in compaction, composition and 3D architecture of the nucleoid, supercoiling, prophage activity, growth, viability, and genetic make-up of {Delta}NAP9. Most notably, we find that {Delta}NAP9 exhibits global dysregulation of gene expression, marked by a striking homogenization of transcriptional output across the genome that is reminiscent of the effects of histone depletion in eukaryotic cells. Our results reinforce the notion that chromatin plays a key role in compartmentalizing the use of genomic information, enabling both the localized suppression of selfish elements and dynamic reprogramming of genome activity in response to environmental change. At the same time, the successful construction of {Delta}NAP9 demonstrates that bacterial cells can carry out basic cellular functions in the absence of co-evolved chromatin proteins, highlighting the potential for radical (re-)engineering of prokaryotic chromatin and systems of gene expression.

microbiology↗

A Bactericidal Phospholipase from Archaea

Archaea kill bacteria, at least on occasion. The molecular underpinnings of these lethal interactions are barely understood. Here, we describe cinquedea, an /{beta} hydrolase secreted by the halophilic archaeon Haloferax larsenii s5a-1. Cinquedea exhibits bactericidal activity in the nanomolar range, killing halophilic Pontibacillus bacteria. Bacterial death is accompanied by gross morphological abnormalities, indicative of severe damage to the cell envelope. We predict, and confirm in vitro, that cinquedea is a phospholipase, with structural similarities to a phospholipase A1 enzyme isolated from hornet venom. Exposing lipids extracted from a cinquedea-sensitive Pontibacillus strain to the enzyme leads to accumulation of lysophosphatidylglycerol, a cleavage product of phospholipase A activity. This is consistent with direct activity of cinquedea against the Pontibacillus membrane, which we show is chiefly composed of phosphatidylglycerol. Considered alongside recent findings that some archaea encode bactericidal peptidoglycan hydrolases, these results suggest that archaea can kill bacteria in mechanistically diverse ways. Our work provides a template for future experimental discovery and characterization of bactericidal proteins of archaeal origin and reinforces an emerging view that archaea represent a substantial reservoir for the discovery of new antibacterial compounds.

microbiology↗

Mitochondrial dysfunction underlies monocyte immune deficiency in patients with severe alcohol-related hepatitis

Severe alcohol-related hepatitis (sAH) is a life-threatening form of alcohol-related liver disease (ARLD) associated with a significant short-term mortality. Opportunistic infections due to impaired immune function are a major cause of patient mortality. Mitochondrial dysfunction within the liver is a well-recognised feature of ARLD and sAH. However, whether these hepatic mitochondrial defects extend to the immune system of sAH patients, underlying their immune dysfunction, remains unclear. Here, we demonstrate that sAH monocytes exhibit an increased content of inefficient, dysfunctional mitochondria. These changes were underpinned by abnormal mitochondrial cristae ultrastructure, which were associated with depletion of cristae structural proteins and alterations in cardiolipin profiles. Overall, our study uncovers novel structural and functional mitochondrial defects, which likely contribute to impaired monocyte immune function in sAH.

immunology↗

Conserved helical motifs in the Ikaros IDR mediate NuRD interaction and transcriptional repression

The transcription factor IKZF1/Ikaros is essential for B cell development, and recurrently mutated in human B-ALL. Ikaros has been ascribed both activating and repressive functions via interactions with coactivator and corepressor complexes, but the relative abundance of Ikaros-associated coregulatory complexes and their contribution to Ikaros-mediated gene regulation are not well understood. To address this issue, we performed an unbiased identification of Ikaros-interacting proteins in pre-B cells, and found that Ikaros interacts overwhelmingly with corepressors and heterochromatin-associated proteins. Time-resolved analysis of transcription and chromatin state identified transcriptional repression as the immediate response to Ikaros induction. Transcriptional repression preceded transcriptional activation by several hours, and was accompanied by a rapid loss of chromatin accessibility and reduced levels of H3K27ac particularly at enhancers. Functional characterisation of intrinsically disordered regions in the Ikaros protein identified highly conserved helical motifs that mediate Ikaros association with the NuRD corepressor complex and contribute to the silencing of target genes in pre-B cells and antiproliferative functions of Ikaros in human B-ALL.

molecular biology↗