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Urdiain-Arraiza, J.

Publications and source records attributed to Urdiain-Arraiza, J..

4 recordsLinked to original sources

Cohesin–axis interaction via a conserved Red1 motif promotes domain-specific DSB formation and Mek1 activation

Faithful chromosome segregation during meiosis I requires tight control of interhomolog recombination. In budding yeast, the meiotic chromosome axis, built on Rec8-containing cohesin together with Red1 and Hop1, acts as a central platform regulating meiotic recombination from programmed DNA double-strand break (DSB) formation to checkpoint signaling and chromosome segregation, yet how cohesin recruits axis proteins remains unclear. Here, we identified a conserved cohesin-interacting motif (CIM) in Red1 that directly binds Rec8. AlphaFold3 modeling predicted that Red1-CIM forms a short -helix that docks into a conserved hydrophobic pocket within the Rec8 C-terminal winged-helix domain, which we confirmed biochemically. Disruption of the Red1-CIM preferentially impaired Red1 recruitment to Rec8-dependent chromosomal regions, while relative enrichment in Rec8-independent domains was preserved, leading to reduced DSB formation in Rec8-dependent domains. The Red1-CIM mutation also reduced crossover formation, increased chromosome missegregation, and reduced spore viability. Notably, this spore lethality exceeded that predicted by the reduction in DSB formation. Consistently, red1-CIM mutants failed to activate the meiotic checkpoint kinase Mek1. Finally, we provide evolutionary, structural, and biochemical evidence that this Red1-Rec8 interaction is conserved across fungi and plants. Together, these findings define a direct molecular bridge linking cohesin to chromosome-axis organization, spatial DSB regulation, and checkpoint signaling during meiosis.

molecular biology↗

Dimerization of the S. cerevisiae Spo11 core complex

Spo11 initiates meiotic recombination by introducing programmed DNA double-strand breaks. DNA cleavage occurs via a topoisomerase-like mechanism involving hybrid active sites formed at the dimer interface. However, in contrast to its topoisomerase relative (Topo VI), Spo11 does not form a stable dimer, likely to prevent uncontrolled DNA cleavage. Here, we investigated the dimerization of S. cerevisiae Spo11 in complex with its partners Ski8, Rec102, and Rec104. We show that the Spo11 complex dimerizes transiently on DNA, forming unstable dimeric complexes with duplex and branched DNA substrates. Guided by AlphaFold modeling of a pre-cleavage complex, we identified mutations that reduce dimerization. Surprisingly, DSB formation is resilient to mutagenesis of the Spo11 dimer interface, implying that additional factors promote dimerization in vivo. Finally, we found that Rec102 exerts a key DNA-binding function, essential for catalysis, and show that it also participates in dimerization through trans contacts with Ski8. Our work provides new insights into the mechanism of Spo11 dimerization and the role of its partners in initiating meiotic recombination.

molecular biology↗

Structures of two LarA-like nickel-pincer nucleotide cofactor-utilizing enzymes with a single catalytic histidine residue

The nickel pincer nucleotide (NPN) cofactor catalyzes the racemization/epimerization of -hydroxy acids in enzymes of the LarA family. The established proton-coupled hydride transfer mechanism requires two catalytic histidine residues that alternately act as general acids and general bases. Notably, however, a fraction of LarA homologs (LarAHs) lack one of the active site histidine residues, replacing it with an asparaginyl side chain that cannot participate in acid/base catalysis. Here, we investigated two such LarAHs and solved their cryo-electron microscopic structures with and without loaded NPN cofactor, respectively. The structures revealed a consistent octameric assembly that is unprecedented in the LarA family and unveiled a new set of active site residues that likely recognize and process substrates differently from those of the well-studied LarAHs. Genomic context analysis suggested their potential involvement in carbohydrate metabolism. Together, these findings lay the groundwork for expanding the breadth of reactions and the range of mechanisms of LarA enzymes.

biochemistry↗

Structural Basis for Catalysis and Substrate Specificity of a LarA Racemase with a Broad Substrate Spectrum

The LarA family consists of diverse racemases/epimerases that interconvert the diastereomers of a variety of -hydroxyacids by using a nickel-pincer nucleotide (NPN) cofactor. The hidden redox reaction catalyzed by the NPN cofactor makes LarA enzymes attractive engineering targets for applications. However, how a LarA enzyme binds its natural substrate and recognizes different -hydroxyacids has not been elucidated. Here, we report three high-resolution structures of the enzyme-substrate complexes of a broad-spectrum LarA enzyme from Isosphaera pallida (LarAIp). The substrate binding mode reveals an optimal orientation and distance between the hydride donor and acceptor, strongly supporting the proposed proton-coupled hydride transfer mechanism. The experimentally solved structures, together with the structural models of other LarA enzymes, allow us to identify the residues/structural elements critically involved in the interactions with different -hydroxyacid substrates. Collectively, this work provides a critical structural basis for catalysis and substrate recognition of the diverse enzymes in the LarA family, thus building a foundation for enzyme engineering.

biochemistry↗