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Biology subjects

Boeri Erba, E.

Publications and source records attributed to Boeri Erba, E..

4 recordsLinked to original sources

Characterization of the REC114-MEI4-IHO1 complex regulating meiotic DNA double-strand break formation

Meiotic recombination is initiated by the formation of DNA double-strand breaks (DSBs), essential for fertility and genetic diversity. In the mouse, DSBs are formed by the catalytic TOPOVIL complex consisting of SPO11 and TOPOVIBL. To preserve genome integrity, the activity of the TOPOVIL complex is finely controlled by several meiotic factors including REC114, MEI4 and IHO1, but the underlying mechanism is poorly understood. Here, we report that mouse REC114 forms homodimers, that it associates with MEI4 as a 2:1 heterotrimer that further dimerizes, and that IHO1 forms coiled-coil based tetramers. Using AlphaFold2 modelling combined with biochemical characterization we uncovered the molecular details of these assemblies. Finally, we show that IHO1 directly interacts with the PH domain of REC114 by recognizing the same surface as TOPOVIBL and another meiotic factor ANKRD31. These results provide strong evidence for the existence of a ternary IHO1-REC114-MEI4 complex and show that REC114 is a potential regulatory platform mediating mutually exclusive interactions with several partners.

biochemistry↗

Structural analysis shows that the BIR2 domain of E3 ligase XIAP binds across the RIP2 kinase dimer interface

NOD1 and NOD2 are innate immune system pattern recognition receptors that play a key role in the protection from bacterial infections and in the maintenance of gastro-intestinal homeostasis. Dysregulation of NOD signalling pathways promotes chronic inflammatory diseases such as inflammatory bowel disease. RIP2, which contains a kinase domain (RIP2K) and a CARD domain, is the immediate downstream signalling partner in the NOD pathway and inhibition of its kinase activity and ubiquitination are promising strategies to address these inflammatory diseases. However, recent work indicates that the phosphorylation activity of RIP2K is dispensable for signalling and that inhibitors of both RIP2K activity and RIP2 ubiquitination prevent the essential interaction between RIP2K and the BIR2 domain of XIAP, the key RIP2 ubiquitin E3 ligase. Moreover, XIAP BIR2 antagonists also block this interaction. To reveal the molecular mechanisms involved, we combined Native mass spectrometry, NMR, cryo-electron microscopy and Alphafold2 predictions to determine the structure of the RIP2K-XIAP BIR2 complex with 2:1 stoichiometry. The structure shows that complex formation requires that the kinase is in an active-like (i.e. C-helix IN) and dimeric conformation and explains both inhibitory mechanisms. It also shows why phosphorylation of the kinase activation loop is dispensable for signalling and reveals the structural role of RIP2K-K209 residue in the RIP2K-XIAP BIR2 interaction. Importantly, our results clarify the features of the RIP2K conformation essential for its role as a scaffold protein for ubiquitination.

biochemistry↗

Structural basis of bacteriophage T5 infection trigger and E. coli cell wall perforation

The vast majority of bacteriophages (phages) - bacterial viruses - present a tail that allows host recognition, cell wall perforation and safe channelling of the viral DNA from the capsid to the cytoplasm of the infected bacterium. The majority of tailed phages bears a long flexible tail (Siphoviridae) at the distal end of which a tip complex, often called baseplate, harbours one or more Receptor Binding Protein{middle dot}s (RBPs). Interaction between the RBPs and the host surface triggers cell wall perforation and DNA ejection, but little is known on these mechanisms for Siphoviridae. Here, we present the structure of siphophage T5 tip at high resolution, determined by electron cryo-microscopy, allowing to trace most of its constituting proteins, including 35 C-terminal residues of the Tape Measure Protein. We also present the structure of T5 tip after interaction with its E. coli receptor FhuA reconstituted into nanodisc. It brings out the dramatic conformational changes underwent by T5 tip upon infection, i.e. bending of the central fibre on the side, opening of the tail tube and its anchoring to the membrane, and formation of a transmembrane channel. These new structures shed light on the mechanisms of host recognition and activation of the viral entry for Siphoviridae.

microbiology↗

Binding stoichiometry and structural model of the HIV-1 Rev/Importin beta complex

HIV-1 Rev mediates the nuclear export of intron-containing viral RNA transcripts and is essential for viral replication. Rev is imported into the nucleus by the host protein Importin {beta} (Imp{beta}), but how Rev associates with Imp{beta} is poorly understood. Here we report biochemical, biophysical and structural studies of the Imp{beta}/Rev complex. Gel shift, native mass spectrometry and isothermal titration calorimetry data reveal that Imp{beta} binds two Rev monomers through independent binding sites. Small-angle X-ray scattering (SAXS) data suggest that the HEAT repeats of Imp{beta} retain an extended conformation upon binding Rev, which according to NMR data is primarily recognized through its helical hairpin domain. Peptide scanning data and charge-reversal mutations identify the N-terminal tip of Rev helix 2 within Revs Arginine-Rich Motif (ARM) as a primary Imp{beta} binding epitope. Crosslinking mass spectrometry and compensatory mutagenesis data combined with molecular docking simulations suggest a structural model in which one Rev monomer binds to the C-terminal half of Imp{beta} with Rev helix 2 roughly parallel to the HEAT-repeat superhelical axis while the other monomer binds to the N-terminal half. These findings shed light on the molecular basis of Rev recognition by Imp{beta} and highlight an atypical binding behaviour that distinguishes Rev from canonical cellular Imp{beta} cargos.

biochemistry↗