Two structurally mobile regions control the conformation and function of metamorphic meiotic HORMAD proteins
Barroso, C.; Prince, J. P.; Rattu, P.; Kounde, D.; Ferrandiz, N.; Khalid, S.; Martinez-Perez, E.
Show abstract
Metamorphic HORMA domain proteins (HORMADs) nucleate protein complex formation by refolding their mobile safety belt region to bind short motifs on interactors. Meiotic HORMADs (mHORMADs) bind proteinaceous axial elements to orchestrate complex chromosomal events that underpin fertility, including pairing and recombination between homologous chromosomes. However, the mechanisms supporting the diverse roles of mHORMADs remain unclear. Here, we show that mHORMADs have a second structurally mobile region, the {beta}5-C loop, which controls mHORMAD conformation and function. Molecular dynamics and in vivo approaches show that functional specialisation of C. elegans paralogs HTP-1 and HTP-2 depends on the interplay between their {beta}5-C loop and safety belt. The {beta}5-C loop can interact with the same HORMA core surface as the safety belt, forming a "loop engaged" conformation. The {beta}5-C loop HORMA core interaction is essential for axis loading of HTP-1 and its paralog HTP-3, and is also present in yeast, plant, and mammalian mHORMADs, suggesting that it represents a conserved functional feature of mHORMADs. Our study reveals that mHORMADs have expanded the bimodal folding landscape first identified in Mad2, paving the way to elucidate how non-canonical HORMAD conformations control meiotic chromosome function to ensure fertility.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Competition between kinesin-1 and myosin-V define Drosophila posterior determination 97%
- Novel mechanistic insights into the role of Mer2 as the keystone of meiotic DNA break formation 97%
- Mechanical force of uterine occupation enables large vesicle extrusion from proteostressed maternal neurons 96%
Similar papers in this journal
- Synaptonemal Complex dimerization regulates chromosome alignment and crossover patterning in meiosis 95%
- A bipartite, low-affinity roadblock domain-containing GAP complex regulates bacterial front-rear polarity 95%
- Mutagenesis and structural modeling implicate RME-8 IWN domains as conformational control points 95%
Similar papers in this journal
- Drosophila dTBCE recruits tubulin around chromatin to promote mitotic spindle assembly 97%
- Dopey-dependent regulation of extracellular vesicles maintains neuronal morphology 96%
- Evolutionary diversification reveals distinct somatic versus germline cytoskeletal functions of the Arp2 branched actin nucleator protein 96%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.