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lambert, s. A.

Publications and source records attributed to lambert, s. A..

3 recordsLinked to original sources

The fission yeast SUMO-targeted Ubiquitin Ligase Slx8 functionally associates with clustered centromeres and the silent mating type region at the nuclear periphery

The SUMO-targeted Ubiquitin ligase (STUbL) family is involved in multiple cellular processes via a wide range of mechanisms to maintain genome stability. One of the evolutionarily conserved functions of STUbL is to promote changes in the nuclear positioning of DNA lesions, targeting them to the nuclear periphery. In Schizossacharomyces pombe, the STUbL Slx8 is a regulator of SUMOylated proteins and promotes replication stress tolerance by counteracting the toxicity of SUMO conjugates. In order to study the dynamic dialectic between Ubiquitinylation and SUMOylation in the nuclear space of the S. pombe genome, we analyzed Slx8 localization. Unexpectedly, we did not detect replication stress-induced Slx8 foci. However, we discovered that Slx8 forms a single nuclear focus, enriched at the nuclear periphery, which marks both clustered centromeres at the spindle pole body and the silent mating type region. The formation of this single Slx8 focus requires the E3 SUMO ligase Pli1, poly-SUMOylation and the histone methyl transferase Clr4 that is responsible for the heterochromatin histone mark H3-K9 methylation. Finally, we established that Slx8 promotes centromere clustering and gene silencing at heterochromatin domains. Altogether, our data highlight evolutionarily conserved and functional relationships between STUbL and heterochromatin domains to promote gene silencing and nuclear organization. HighlightsO_LIThe S. pombe STUbL Slx8 forms a single nuclear focus enriched at the nuclear periphery in a SUMO-chain-dependent manner. C_LIO_LISlx8 foci mark clustered centromeres and the silenced mating type region but not telomeres. C_LIO_LIH3-K9 methylation by Crl4 promotes the single nuclear Slx8 focus C_LIO_LISlx8 promotes centromere clustering and gene silencing. C_LI

cell biology↗

53BP1 interacts with the RNA primer from Okazaki fragments to support their processing during unperturbed DNA replication

RNA-binding proteins are found at replication forks, but their direct interaction with DNA-embedded RNA species that inevitably shape physiological DNA replication remains unexplored. Here we report that 53BP1, involved in the DNA damage and replication stress response, is an RNA-binding protein that directly interacts with Okazaki fragments, in the absence of any external stress. The bulk chromatin association of 53BP1 shows dramatic dependence on PRIM1, which synthesizes the RNA primer of Okazaki fragments. The direct recruitment of 53BP1 to nascent DNA shows susceptibility to in situ ribonuclease A treatment. Conversely, depletion of FEN1, which results in the accumulation of uncleaved RNA primers, leads to an upregulation of 53BP1 levels at the replication forks, suggesting that RNA primers contribute to the recruitment of 53BP1 at the lagging DNA strand. 53BP1 depletion induces an accumulation of S phase poly(ADP-ribose), which constitutes a sensor of unligated Okazaki fragments. Collectively, our data indicate that 53BP1, distinct from its canonical mode of chromatin-binding, is anchored at the replication fork through its RNA-binding activity, highlighting the role of an RNA-protein interaction at DNA replication forks.

molecular biology↗

Disordered regions and folded modules in CAF-1 promote histone deposition in S. pombe

Genome and epigenome integrity in eukaryotes depends on the proper coupling of histone deposition with DNA synthesis. This process relies on the evolutionary conserved histone chaperone CAF-1 for which the links between structure and functions are still a puzzle. While studies of the S. cerevisiae CAF-1 complex enabled to propose a model for the histone deposition mechanism, we still lack a framework to demonstrate its generality and in particular, how its interaction with the polymerase accessory factor PCNA is operating. Here, we reconstituted a complete SpCAF-1 from fission yeast. We characterized its dynamic structure using NMR, SAXS and molecular modeling together with in vitro and in vivo functional studies on rationally designed interaction mutants. Importantly, we identify the unfolded nature of the acidic domain which folds up when binding to histones. We also show how the long KER helix mediates DNA binding and stimulates SpCAF-1 association with PCNA. Our study highlights how the organization of CAF-1 comprising both disordered regions and folded modules enables the dynamics of multiple interactions to promote synthesis-coupled histone deposition essential for its DNA replication, heterochromatin maintenance, and genome stability functions.

biochemistry↗