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De Bonis, S.

Publications and source records attributed to De Bonis, S..

2 recordsLinked to original sources

Deinococcus radiodurans HU: a versatile architect of nucleoid structure and plasticity

Nucleoid-associated proteins are known to compact and organise bacterial genomes, but how their local DNA binding shapes higher-order chromatin architecture remains unclear. Using in vitro and in situ approaches, we investigated how Deinococcus radiodurans HU (DrHU) orchestrates nucleoid organisation. DrHU engages DNA through two synergistic binding modes: high-affinity {beta}-hairpin-mediated stabilisation of DNA loops and low-affinity, multivalent interaction via its N-terminal tail, driving parallel, uniformly spaced DNA alignment. In vitro, DrHU organises supercoiled plasmid DNA into regular 2D lattices of double-spirals, while in situ, UV-C light induces a nucleoid transition from a loose DNA mesh to a blue liquid crystalline phase characterised by DNA swirls. The striking structural similarity and shared inter-filament spacing of these two arrangements suggests that DrHU plays a pivotal role in genome organisation through its versatile binding properties that enable DNA loop stabilisation, protection and DNA bridging, linking molecular interactions to 3D genome ordering and stress-induced remodelling.

microbiology↗

Evidence for strong interplay between the nucleotide and base excision repair pathways in D. radiodurans

Deinococcus radiodurans harbors a largely classical bacterial DNA repair machinery yet displays exceptional resistance to ultra-violet and ionizing radiation. To investigate whether crosstalk between its DNA repair pathways contributes to this phenotype, we mapped putative interactions between the nucleotide excision repair (NER) and base excision repair (BER) pathways, which together are responsible for the removal of nucleobase lesions. Using a bacterial two-hybrid system, we identified multiple direct interactions between NER and BER proteins, notably involving the two UvrA variants, and validated these interactions in vitro. Furthermore, functional analyses revealed that NER interferes with the BER-mediated removal of oxidized guanines by the Fpg DNA glycosylase, likely through competition for DNA binding and sequestration of Fpg. Finally, UvrB and UvrC were found to further process the Fpg incision product in an ATP-dependent, UvrA1-independent manner. Together, these results demonstrate a multi-level crosstalk between NER and BER in D. radiodurans, which may contribute to its extraordinary DNA repair capacity. To our knowledge, this represents the first evidence of such a complex interplay in bacteria.

biochemistry↗