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Cajili, M. K.

Publications and source records attributed to Cajili, M. K..

3 recordsLinked to original sources

Adaptive gene transcription in Escherichia coli under environmental stress

Escherichia coli is highly sensitive to acid and osmotic stress but adapts by modulating the expression of stress responsive genes. Nucleoid-associated proteins (NAPs) play key roles in DNA organization and sensing environmental changes. The histone-like nucleoid structuring protein H-NS is an NAP acting as a global regulator of stress genes. H-NS may alter local chromatin structure to modulate the expression of such genes in response to environmental stress. The H-NS homolog StpA co-regulates several target genes, but its precise role is poorly defined. To investigate the regulatory interplay between these two proteins, we examined transcription, DNA binding and chromatin structure at two regulated operons, hdeAB and proVWX, in E. coli following exposure to acid and salt shock. Our results show that H-NS senses pH and osmotic cues to remodel chromatin and relieve repression, while StpA compensates for H-NS loss, particularly at proVWX, highlighting a coordinated regulatory network.

microbiology↗

Archaeal histone HTkC hypercompacts DNA

Histones are important organizers of chromatin in eukaryotes and archaea. In eukaryotes, the core histones assemble with DNA to form the octameric nucleosome. In archaea, histones form hypernucleosomes that are not restricted to an octameric histone core but can extend to variable lengths. We previously identified face-to-face (FtF) histones as a widely distributed group of archaeal histones that assemble into toroidal tetramer structures, distinct from nucleosomal histones. Here, we characterize the FtF histone HTkC from Thermococcus kodakarensis, which also encodes the canonical histones HTkA and HTkB. We show that HTkC wraps DNA around its toroidal tetramer and forms highly compact nucleoprotein complexes, achieving a level of compaction approximately twice that of hypernucleosomes. Consistent with a major chromatin-organizing role, htkC is among the most highly expressed genes in T. kodakarensis and its deletion leads to impaired growth. Together, these findings establish FtF histones as important organizers of archaeal chromatin alongside classical histones.

biochemistry↗

Modulation of archaeal hypernucleosome structure and stability by Mg2+

DNA-wrapping histone proteins play a central role in chromatin organization, gene expression and regulation in most eukaryotes and archaea. While the structure and function of eukaryotic histones are well-characterized, archaeal histones and their complexes with DNA require further scrutiny. Distinct from their eukaryotic counterparts, previously characterized canonical archaeal histones assemble on DNA into an endless superhelical nucleoprotein complex called a hypernucleosome. In this study, we explored whether hypernucleosome formation is a conserved feature of canonical archaeal histones. Moreover, to further elucidate how hypernucleosomes are regulated, we also explored how changes in the physico-chemical conditions, particularly the presence of Mg2+, influence the hypernucleosome. Using a combination of Tethered Particle Motion (TPM) and single-molecule force spectroscopy, we established that T. kodakarensis histones assemble into hypernucleosomes on DNA, similar to the M. fervidus histones HMfA and HMfB, the only canonical histones structurally characterized in previous studies. However, the effects of Mg2+ ions are distinct despite the histones high sequence- and structural similarity. We propose a model in which Mg2+ ions exert a generic effect on hypernucleosome compactness and stability due to electrostatic DNA shielding, with additional differential effects depending on histone identity.

molecular biology↗