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Biology subjects

Castaing, B.

Publications and source records attributed to Castaing, B..

3 recordsLinked to original sources

A new class of inherently efficient SUMOylation substrates

SUMOylation is an essential eukaryotic ubiquitin-like post-translational modification that plays a central role in the regulation of various nuclear processes and stress responses. It canonically occurs at lysine residues within {Psi}KXE consensus motifs that lie in intrinsically disordered regions or loops and interact specifically with the SUMO-conjugating E2 enzyme UBC9. However, many detected SUMOylation sites are found within structured domains, and it remains unclear how these are recognised by UBC9. Here, we investigated the SUMOylation of Lys43 in the BTB domain of human ZBTB38 (ZBTB38BTB), a lysine located within a rigid {beta}-sheet. By combining X-ray crystallography, structural prediction, and in-vitro UBC9 interaction and SUMOylation assays, we show that ZBTB38BTB possesses a dedicated surface that recapitulates the spatial arrangement of residues found in canonical linear consensus motifs. This surface binds UBC9 with mid-micromolar affinity and is predicted to position Lys43 in its active site for efficient SUMOylation. Structural modelling and sequence analyses suggest that this property is shared by BTB domains of five members (10%) of the ZBTB-protein family across vertebrates, revealing a previously unrecognised property of a subset of ZBTBBTB domains. Kinetic analyses reveal that, under the reaction conditions used, the catalytic efficiency of ZBTB38BTB and ZBTB33BTB SUMOylation are closely comparable to that of the C-terminal domain of RANGAP1, the best-characterised and most efficiently SUMOylated substrate known. This defines a new class of inherently efficient, E3 ligase-independent SUMOylation substrates beyond RANGAP1 and suggests that structural pre-organisation of the acceptor lysine and its environment may promote productive UBC9 engagement. Lastly, we demonstrate the presence of higher-molecular-weight, modified forms of ZBTB38 in human cells, consistent with SUMOylation. Together, these results provide a biochemical basis for interpreting existing and designing future studies on the functional impact of ZBTB SUMOylation. More broadly, our findings offer insights into the determinants of efficient SUMOylation, and may facilitate the identification of further inherently efficient targets, and, potentially, the design of SUMOylation modulators.

biochemistry↗

A coordinated haptic mechanism ensures efficient DNA sampling by the 8-oxoguanine glycosylase OGG1.

7,8-Dihydro-8-oxoguanine (8-oxoG) is the most frequent base modification occurring upon oxidative stress. This highly mutagenic lesion is specifically recognized and excised by the DNA glycosylase OGG1 when paired with cytosine, initiating the base excision repair pathway. Since 8-oxoG neither significantly impacts the structure of the double helix nor blocks transcription and replication processes, its detection requires a careful inspection of each base pair by OGG1. By monitoring this lesion search process both in vitro and in living cells, we demonstrate that it involves a tight coordination between several conserved amino acids encircling the DNA helix. More specifically, we show that the N149-151 motif, on the target strand, as well as residues R154 and R204, on the opposite strand, both regulate OGG1 engagement on the DNA to ensure fast Y203-mediated base unstacking, a prerequisite for efficient 8-oxoG detection. These findings highlight the early mechanisms that enable OGG1 to maintain rapid sampling kinetics while preserving high specificity for 8-oxoG in the context of the complex architecture displayed by the DNA within the cell nucleus.

genetics↗

Identification of key residues of the DNA glycosylase OGG1 controlling efficient DNA scanning and recruitment to oxidized bases in living cells

The DNA-glycosylase OGG1 oversees the detection and clearance of the 7,8-dihydro-8-oxoguanine (8-oxoG), which is the most frequent form of oxidized base in the genome. This lesion is deeply buried within the double-helix and its detection requires careful inspection of the bases by OGG1 via a mechanism that remains only partially understood. By analyzing OGG1 dynamics in the nucleus of living human cells, we demonstrate that the glycosylase constantly scans the DNA by rapidly alternating between diffusion within the nucleoplasm and short transits on the DNA. This scanning process, that we find to be tightly regulated by the conserved residue G245, is crucial for the rapid recruitment of OGG1 at oxidative lesions induced by laser micro-irradiation. Furthermore, we show that residues Y203, N149 and N150, while being all involved in early stages of 8-oxoG probing by OGG1 based on previous structural data, differentially regulate the scanning of the DNA and recruitment to oxidative lesions.

cell biology↗