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Biology subjects

Egger, T.

Publications and source records attributed to Egger, T..

4 recordsLinked to original sources

Chromatin adaptors and TOPBP1 condensates cooperate to organize ATM signaling

DNA damage response proteins frequently accumulate in biomolecular condensates, yet how these structures cooperate with classical adaptor-mediated recruitment mechanisms to organize DNA damage signaling remains poorly understood. Here, we identify Treacle and the ATM adaptor NBS1 as prominent components of TOPBP1 condensates and show that these structures activate ATM signaling in the absence of DNA damage. At rDNA breaks, Treacle recruits NBS1 and TOPBP1 through genetically separable interaction modules. Acute protein degradation further revealed that Treacle is required for condensate assembly, whereas TOPBP1 remains continuously required for condensate maintenance. Finally, we show that efficient ATM accumulation at IR-induced DNA double-strand breaks similarly depends on both NBS1 and TOPBP1, indicating that this two-component mechanism is not restricted to nucleolar DNA damage. Together, our findings support a two-component model in which adaptor proteins provide molecular specificity, whereas TOPBP1 condensates create the spatial organization required for robust ATM signaling.

cell biology↗

TERT drives liver tumorigenesis beyond telomere elongation

We generated two mouse models, p21/Tert and p21/TertCi, expressing either telomerase reverse transcriptase (TERT) or a catalytically inactive variant under the control of the p21 promoter. By 18-20 months of age, approximately 25% of mice from both genotypes developed liver tumors with histopathological features resembling human hepatocellular carcinoma (HCC). Whole-exome sequencing identified activating Ctnnb1 mutations and recurrent PP1 subunit alterations in p21/Tert tumors, whereas p21/TertCi tumors harbored activating HrasGln61Lys mutations associated with elevated C>A transversions. Both models exhibited chromosomal aberrations commonly observed in human HCC. Transcriptomic analyses revealed that {beta}-catenin-activated tumors recapitulated gene expression signatures of human HCC, while MAPK-mutated tumors showed profiles consistent with MAPK/ERK pathway activation. Metabolically, both genotypes demonstrated increased glycolysis and suppression of gluconeogenesis, including downregulation of FBP1, but expressed distinct NRF2 target genes. Spatial profiling further revealed reduced HNF4-positive hepatocytes across tumors, independent of Hnf4 transcription, and markedly diminished immune cell infiltration particularly in {beta}-catenin-activated tumors. Collectively, these findings uncover telomere-independent functions of TERT and identify molecular and metabolic features with potential relevance for predicting immunotherapy response.

cancer biology↗

TopBP1 biomolecular condensates: a new therapeutic target in advanced-stage colorectal cancer.

In cancer cells, ATR signaling is crucial to tolerate the intrinsically high damage levels that normally block replication fork progression. Assembly of TopBP1, a multifunctional scaffolding protein, into condensates is required to amplify ATR kinase activity to the levels needed to coordinate the DNA damage response and manage DNA replication stress. Many ATR inhibitors are tested for cancer treatment in clinical trials, but their overall effectiveness is oven compromised by the emergence of resistance and toxicities. In this proof-of-concept study, we propose to disrupt the ATR pathway by targeting TopBP1 condensation. First, we screened a molecule-based library using a previously developed optogenetic approach and identified several TopBP1 condensation inhibitors. Amongst them, AZD2858 disrupted TopBP1 assembly induced by the clinically relevant topoisomerase I inhibitor SN-38, thereby inhibiting the ATR/Chk1 signaling pathway. We found that AZD2858 exerted its effects by disrupting TopBP1 self-interaction and binding to ATR in mammalian cells, and by increasing its chromatin recruitment n cell-free Xenopus laevis egg extracts. Moreover, AZD2858 prevented S-phase checkpoint induction by SN-38, leading to increased DNA damage and apoptosis in a colorectal cancer cell line. Lastly, AZD2858 showed synergistic effect in combination with the FOLFIRI chemotherapy regimen in a spheroid model of colorectal cancer. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=110 SRC="FIGDIR/small/612204v3_ufig1.gif" ALT="Figure 1"> View larger version (61K): org.highwire.dtl.DTLVardef@184d016org.highwire.dtl.DTLVardef@7975f4org.highwire.dtl.DTLVardef@2f22f0org.highwire.dtl.DTLVardef@9ecb11_HPS_FORMAT_FIGEXP M_FIG C_FIG

cancer biology↗

KIF2C-induced nuclear condensation concentrates PLK1 and phosphorylated BRCA2 at the kinetochore microtubules in mitosis

During mitosis, the human microtubule depolymerase KIF2C increases the turnover of kinetochore-microtubule attachments. This facilitates the correction of attachment errors. Moreover, BRCA2 phosphorylated at Thr207 by PLK1 (BRCA2-pT207) assembles a complex including PLK1, PP2A and BUBR1 that contributes to the stability of the kinetochore-microtubule attachments. PLK1, together with Aurora B, critically regulate the accurate segregation of chromosomes. Here we demonstrate that KIF2C contains an N-terminal domain that binds directly to several phosphorylated peptides, including BRCA2-pT207. Using an optogenetic platform, we reveal that KIF2C assembles into membrane-less compartments or biomolecular condensates that are located next to microtubules. We provide evidence that condensate assembly depends on the presence of the newly defined N-terminal phospho-binding domain of KIF2C and on the kinase activities of Aurora B and PLK1. Moreover, KIF2C condensates concentrate active PLK1 and colocalize with BRCA2-pT207. We propose that, because of its phospho-dependent binding and oligomerization capacities, KIF2C forms biomolecular condensates that partition PLK1 and locally amplify its kinase activity during mitosis. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=200 SRC="FIGDIR/small/589357v1_ufig1.gif" ALT="Figure 1"> View larger version (80K): org.highwire.dtl.DTLVardef@3ff5bforg.highwire.dtl.DTLVardef@11efbdcorg.highwire.dtl.DTLVardef@1295118org.highwire.dtl.DTLVardef@18b3dd3_HPS_FORMAT_FIGEXP M_FIG C_FIG

cell biology↗