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Dybkov, O.

Publications and source records attributed to Dybkov, O..

8 recordsLinked to original sources

18S rRNA 3’ end cleavage by the phosphorylated endoribonuclease NOB1 is interconnected with early small subunit biogenesis

Processing of the precursor ribosomal RNAs (pre-rRNAs) is a key aspect of ribosomal subunit assembly that is closely coordinated with other maturation events. The ribonucleases that mediate pre-rRNA cleavages require regulation to ensure that their activities are exerted in a timely manner. Post-translational modifications can influence protein functions, and although many human ribosome assembly factors are reported to be post-translationally modified, most of these sites remain unconfirmed and functional insights are lacking. Here, we show that NOB1, the PIN domain endoribonuclease responsible for cleavage of the 3' end of the 18S rRNA, is phosphorylated within an evolutionarily conserved acidic tract that can be modified by casein kinase II in vitro. Association of NOB1 with pre-ribosomes is independent of these phosphorylations, and lack of NOB1 phosphorylation only mildly perturbs the efficiency of SSU maturation events upstream of 3' end cleavage of the 18S rRNA. Interestingly, our analyses of pre-rRNA levels in cells depleted of NOB1 or lacking its catalytic activity revealed not only accumulation of the 18SE precursor of the 18S rRNA, but also altered levels of pre-rRNAs containing 5' external transcribed spacer (ETS) sequences (43S, 26S and 30S). This suggests that lack of NOB1-mediated pre-rRNA cleavage impairs recycling of assembly factors required during early biogenesis steps, leading to altered kinetics of 5' ETS processing. Taken together these data provide new insights into the role of NOB1 during SSU biogenesis and the post-translational regulation of this ribonuclease.

Molecular Biology↗

Structure of human cytoplasmic Pol II complex explains global transcription repression by Gdown1

RNA polymerase II (Pol II) is a 12-subunit enzyme crucial for gene transcription in the nucleus. However, its assembly in the cytoplasm, nuclear import, and nuclear function of assembly factors remain poorly understood. Here, we isolated Pol II from the cytoplasmic fraction of human cells (cfPol II) and determined its cryo-EM structure. The structure reveals that Pol II is fully assembled in the cytoplasm before nuclear import. We also found that Gdown1 binds Pol II through three distinct regions, indicating it may stabilize Pol II assembly intermediates. Notably, Gdown1 binding precludes the association of essential transcription factors IIB and IIF, rendering cfPol II inactive in promoter-dependent transcription in vitro. Our results provide a basis for Gdown1-dependent global transcription repression and suggest a model for the role of Gdown1 in Pol II assembly, import, and transcription regulation.

biochemistry↗

Alphafold 3 guided insights into the Importin b / Importin 7 heterodimer interaction and its binding to Histone H1

The nuclear import of H1 linker histones is facilitated by a heterodimer of the transport receptors Importin{beta} (Imp{beta}) and Importin7 (Imp7). While both importins can individually interact with H1, only their preassembled hetero-dimer enables its proper binding for translocation through the nuclear pore. The interaction between Imp7 and Imp{beta} is mediated by a short stretch of residues in the C-terminal region of Imp7, which plays a key role in Imp7 activation by Imp{beta}. This interaction is allosterically regulated by Imp{beta}, finely tuning the activity of the Imp{beta}/Imp7 heterodimer. A complete model of the Imp{beta}:Imp7:H1 complex was predicted by Alphafold3 (AF3) and subsequently validated using cross-linking (X-link) data, isothermal titration calorimetry (ITC), and pull-down experiments, providing robust support for the models accuracy. This model positions the globular domain of H1 within the central cavity of Imp7, in agreement with cross-linking data. Refinement of this atomic model against a previously published cryo-EM map demonstrated significantly improved correspondence compared to the earlier interpretation, which placed the H1 globular domain within Imp{beta}. This enhanced structural consistency further substantiates the accuracy of the AI-driven prediction. Detailed analysis identified the nucleoporin-like binding (NlB) region of Imp7 as a short stretch interacting with the outer surface of Imp{beta}. This interaction mode implies that regulation of FG-binding site accessibility on Imp{beta}, mediated by the FXFG nucleoporin motives within the Imp7 NlB region, likely modulates transport pathways and/or enhances the efficiency of H1 nuclear import.

molecular biology↗

Influence of ULK1 activity on the memory of ATG101 auto-activation dynamics

The initiation of autophagy is marked by the prompt convergence of initiation proteins to form super molecular complexes in spatially-defined autophagic hubs. The recruitment and activation of the ULK-kinase complex is a pivotal event in starting the initiation cascade. ULK complex-component ATG101 is required for initiating autophagy in mammalian cells, but its function is unknown. Its HORMA domain interacts with the HORMA domain of ATG13 and transmembrane protein ATG9A to collectively form the essential autophagy initiation complex ATG9A-ATG13-ATG101. ATG101 has structurally malleable elements, reminiscent of topological conversions used in related metamorphic HORMA domain proteins to control the rate of complex formation. To elucidate the function of ATG101, we monitored the interaction kinetics of ATG101 with ATG13 and ATG9A, and observed that the interaction of ATG101 with ATG9A and ATG13 is exceptionally slow. Dramatic acceleration of complex formation is observed upon a change in the fold of ATG101 induced by its transient homo-dimerization, which in turn is initiated by phosphorylation by the ULK1 kinase. In an auto-catalytic mechanism, ATG101 dimers create a positive feedback to propagate activation to further ATG101 molecules in the absence of ULK1 activity. Despite the competitive nature of the interaction interfaces, homo-dimerization of ATG101 surprisingly accelerates its association to ATG13. Memory of ATG101 activation persists for many hours after dephosphorylation and continues to accelerate the assembly of the ATG9A-ATG13-ATG101 complex. Overall, this work proposes an unusual regulatory mechanism where UKL1 initiates an ATG101 auto activation cascade, whose memory creates a responsive positive feedback that dictates the assembly rate of a key complex in autophagy initiation.

biochemistry↗

Biocompatible sulfonium-based covalent probes for endogenous tubulin fluorescence nanoscopy in live and fixed cells

Fluorescent probes enable the visualization of dynamic cellular processes with high precision, particularly when coupled with super-resolution imaging techniques that surpass the diffraction limit. Traditional methods include fluorescent protein fusion (e.g., GFP) or organic fluorophores linked to ligands targeting the protein of interest. However, these approaches often introduce functional disruptions or ligand-associated biological effects. Herein, we address these challenges by developing covalent fluorescent probes for endogenous tubulin, a critical cytoskeletal protein involved in processes such as cell movement, division, and biomolecule trafficking. Using well-known tubulin binder cabazitaxel and cell permeable fluorophore silicon-rhodamine--as a basis, we introduce a novel biocompatible cleavable linker containing a sulfonium center. This allowed the construction of the optimized probe, 6-SiR-o-C9-CTX, demonstrating excellent cell permeability, fluorogenic properties, and the ability to covalently label tubulin across various human cell lines. Importantly, the targeting moiety could be washed out while preserving tubulin staining, ensuring minimal disruption of tubulin function. This labeling technique is compatible with STED nanoscopy in both live and fixed cells, offering a powerful high-resolution imaging tool.

biochemistry↗

Molecular mechanism of co-transcriptional H3K36 methylation by SETD2

Tri-methylation of histone H3 at residue lysine-36 (H3K36me3) is a hallmark of actively and recently transcribed genes and contributes to cellular memory and identity. The deposition of H3K36me3 occurs co-transcriptionally when the methyltransferase SETD2 associates with RNA polymerase II (Pol II). Here we present three cryo-EM structures of SETD2 bound to Pol II elongation complexes at different states of nucleosome passage. Together with functional probing, our results suggest a 3-step mechanism of transcription-coupled H3K36me3 deposition. First, binding to the elongation factor SPT6 tethers the catalytic SET domain in proximity to the upstream DNA. Second, Pol II nucleosome passage leads to the transfer of a hexasome from downstream to upstream, poised for methylation. Finally, continued transcription leads to upstream nucleosome reassembly, partial dissociation of the histone chaperone FACT and sequential methylation of both H3 tails, completing H3K36me3 deposition of an upstream nucleosome after Pol II passage.

biochemistry↗

Structural basis of Nipah virus replication

Nipah virus (NiV) is a non-segmented negative-strand RNA virus (nsNSV) with high pandemic potential, as it frequently causes zoonotic outbreaks and can be transmitted from human to human. Its RNA-dependent RNA polymerase (RdRp) complex carries out viral genome replication and transcription and is therefore an attractive drug target. However, to date no structural data is available on the NiV RdRp complex. Here, we report cryo-EM structures of NiV RdRp in the apo and in an early elongation state with RNA and incoming substrate bound. The structure of the apo enzyme reveals the architecture of the NiV RdRp complex, which shows a high degree of similarity to other nsNSV RdRps. The structure of the RNA-bound NiV RdRp shows how the enzyme interacts with template and product RNA during early replication and how nucleoside triphosphates are bound in the active site. Comparisons show that RNA binding leads to rearrangements of key elements in the RdRp core and to ordering of the flexible C-terminal domains of NiV L required for RNA capping. Taken together, these results reveal the first structural snapshots of an actively replicating nsNSV RdRp and provide insights into the mechanisms of genome replication and transcription by NiV and related viruses.

biochemistry↗

Structures of aberrant spliceosome intermediates on their way to disassembly

Intron removal during pre-mRNA splicing is of extraordinary complexity and its disruption causes a vast number of genetic diseases in humans1. While key steps of the canonical spliceosome cycle have been revealed by combined structure-function analyses2,3, structural information on an aberrant spliceosome committed to premature disassembly is not available. Here, we report two cryo-EM structures of post-Bact spliceosome intermediates from S. pombe primed for disassembly. We identify the DEAH-box helicase - G patch protein pair (Gih35-Gpl1, homologous to human DHX35-GPATCH1) and show how it maintains catalytic dormancy. In both structures, Gpl1 recognizes a remodeled active site introduced by an over-stabilization of the U5 loop I interaction with the 5 exon leading to a single nucleotide insertion at the 5splice site. Remodeling is communicated to the spliceosome surface and the Ntr1 complex that mediates disassembly is recruited. Our data pave the way for a targeted analysis of splicing quality control.

biochemistry↗