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  • Author: Albert B
  • References

Author: Albert B


References 27 references


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  • Bianco E, et al. (2025) Stm1 regulates Ifh1 activity revealing crosstalk between ribosome biogenesis and ribosome dormancy. Mol Cell 85(9):1806-1823.e17 PMID:40315826
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  • Hamze H, et al. (2025) The snoRNP chaperone snR190 and the Npa1 complex form a macromolecular assembly required for 60S ribosomal subunit maturation. Nucleic Acids Res 53(5) PMID:40037705
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  • Neto VG, et al. (2025) New insights into nuclear import and nucleolar localization of yeast RNA exosome subunits. Mol Biol Cell 36(6):ar69 PMID:40266794
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  • Zencir S, et al. (2025) A two-step regulatory mechanism dynamically controls histone H3 acetylation by SAGA complex at growth-related promoters. Nucleic Acids Res 53(7) PMID:40207626
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  • Busselez J, et al. (2024) Remodelling of Rea1 linker domain drives the removal of assembly factors from pre-ribosomal particles. Nat Commun 15(1):10309 PMID:39604383
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  • Dominique C, et al. (2024) The dual life of disordered lysine-rich domains of snoRNPs in rRNA modification and nucleolar compaction. Nat Commun 15(1):9415 PMID:39482307
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  • Garadi Suresh H, et al. (2024) K29-linked free polyubiquitin chains affect ribosome biogenesis and direct ribosomal proteins to the intranuclear quality control compartment. Mol Cell 84(12):2337-2352.e9 PMID:38870935
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  • Allen G, et al. (2023) Not1 and Not4 inversely determine mRNA solubility that sets the dynamics of co-translational events. Genome Biol 24(1):30 PMID:36803582
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  • Khreiss A, et al. (2023) The DEAD-box protein Dbp6 is an ATPase and RNA annealase interacting with the peptidyl transferase center (PTC) of the ribosome. Nucleic Acids Res 51(2):744-764 PMID:36610750
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  • Shore D and Albert B (2022) Ribosome biogenesis and the cellular energy economy. Curr Biol 32(12):R611-R617 PMID:35728540
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  • Shore D, et al. (2021) Transcriptional control of ribosome biogenesis in yeast: links to growth and stress signals. Biochem Soc Trans 49(4):1589-1599 PMID:34240738
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  • Shyian M, et al. (2020) Fork pausing complex engages topoisomerases at the replisome. Genes Dev 34(1-2):87-98 PMID:31805522
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  • Zencir S, et al. (2020) Mechanisms coordinating ribosomal protein gene transcription in response to stress. Nucleic Acids Res 48(20):11408-11420 PMID:33084907
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  • Albert B, et al. (2019) Sfp1 regulates transcriptional networks driving cell growth and division through multiple promoter-binding modes. Genes Dev 33(5-6):288-293 PMID:30804227
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  • Albert B, et al. (2019) A ribosome assembly stress response regulates transcription to maintain proteome homeostasis. Elife 8 PMID:31124783
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  • Hafner L, et al. (2018) Rif1 Binding and Control of Chromosome-Internal DNA Replication Origins Is Limited by Telomere Sequestration. Cell Rep 23(4):983-992 PMID:29694906
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  • Kubik S, et al. (2018) Sequence-Directed Action of RSC Remodeler and General Regulatory Factors Modulates +1 Nucleosome Position to Facilitate Transcription. Mol Cell 71(1):89-102.e5 PMID:29979971
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  • Kubik S, et al. (2017) A Reply to "MNase-Sensitive Complexes in Yeast: Nucleosomes and Non-histone Barriers," by Chereji et al. Mol Cell 65(3):578-580 PMID:28157510
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  • Albert B, et al. (2016) A Molecular Titration System Coordinates Ribosomal Protein Gene Transcription with Ribosomal RNA Synthesis. Mol Cell 64(4):720-733 PMID:27818142
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  • Shyian M, et al. (2016) Budding Yeast Rif1 Controls Genome Integrity by Inhibiting rDNA Replication. PLoS Genet 12(11):e1006414 PMID:27820830
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  • Albert B, et al. (2013) Systematic characterization of the conformation and dynamics of budding yeast chromosome XII. J Cell Biol 202(2):201-10 PMID:23878273
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  • Albert B, et al. (2013) Structure-function analysis of Hmo1 unveils an ancestral organization of HMG-Box factors involved in ribosomal DNA transcription from yeast to human. Nucleic Acids Res 41(22):10135-49 PMID:24021628
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  • Hajjoul H, et al. (2013) High-throughput chromatin motion tracking in living yeast reveals the flexibility of the fiber throughout the genome. Genome Res 23(11):1829-38 PMID:24077391
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  • Albert B, et al. (2012) Nuclear organization and chromatin dynamics in yeast: biophysical models or biologically driven interactions? Biochim Biophys Acta 1819(6):468-81 PMID:22245105
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  • Albert B, et al. (2012) Regulation of ribosomal RNA production by RNA polymerase I: does elongation come first? Genet Res Int 2012:276948 PMID:22567380
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  • Albert B, et al. (2011) RNA polymerase I-specific subunits promote polymerase clustering to enhance the rRNA gene transcription cycle. J Cell Biol 192(2):277-93 PMID:21263028
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  • Beckouet F, et al. (2008) Two RNA polymerase I subunits control the binding and release of Rrn3 during transcription. Mol Cell Biol 28(5):1596-605 PMID:18086878
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