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Pavlova, M. N.

Publications and source records attributed to Pavlova, M. N..

2 recordsLinked to original sources

Werner syndrome RECQ helicase participates in and directs maintenance of the protein complexes of constitutive heterochromatin in proliferating human cells

The WRN RECQ helicase is responsible for the Werner syndrome of premature aging and cancer predisposition. Substantial progress has been made in delineating WRN functions in multiple aspects of DNA metabolism, including DNA replication, repair, transcription, and telomere maintenance. Nevertheless, a complete mechanistic understanding of how loss of WRN accelerates aging in humans has not been achieved yet. Here we show that WRN is involved in the maintenance of constitutive heterochromatin, CH, in proliferating, immortalized human fibroblasts. WRN is found within a complex with histone deacetylase 2, HDAC2, and WRN/HDAC2 association is mediated by heterochromatin protein alpha, HP1. WRN deficiency derepresses SATII pericentromeric satellite repeats and reduces a subset of protein-protein interactions that participate in the organization of CH in the nucleus. In particular, WRN deficiency reduces the complexes involving Lamin B1 and Lamin B receptor, LBR. Both mRNA level and subcellular distribution of LBR are affected by WRN deficiency, and the latter phenotype does not require WRN catalytic activities. At the mRNA level, WRN supports complete maturation of the LBR mRNA. All signs of heterochromatin disruption seen in WRN-deficient proliferating fibroblasts are also observed in WRN-proficient fibroblasts undergoing replicative or oncogene-induced senescence, and WRN complexes with HP1 and HDAC2 are also markedly downregulated in these senescing cells. The data suggest that WRN loss affects heterochromatin independently of the senescence program but can mimic aspects of it and thus sensitize cells to triggers of senescence.

molecular biology↗

Innate immunity mediator STING modulates nascent DNA metabolism at stalled forks in human cells

The cGAS/STING pathway, part of the innate immune response to foreign DNA, is known to be activated by cells own DNA arising from the processing of the genome, including the excision of nascent DNA at arrested replication forks. We found STING activation to affect nascent DNA processing, suggesting a novel, unexpected feedback connection between the two events. Depletion of STING suppressed and re-expression of the protein in STING-deficient cells upregulated degradation of nascent DNA. Fork arrest was accompanied by the STING pathway activation, and a STING mutant that does not activate the pathway failed to upregulate nascent strand degradation. Consistent with this, cells expressing the STING mutant had a reduced level of RPA on parental and nascent DNA of arrested forks as well as a reduced CHK1 activation compared to the cells with wild type STING. Together our findings reveal a novel connection between replication stress and innate immunity.

molecular biology↗