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◇ bioRxiv2026-09-08· biochemistry

A nucleolar assembly module integrates an ancestral isoaspartylase to safeguard ribosome biogenesis

V. G. Panse, a. g. geiger, S. Favre, o. vadas, T. v. Arx, f. ackle, M. A. Ruoss, L. Zyberaj, Y. Verma, R. Separovich, C. A. J. Hutter, M. Oborska-Oplova, D. Portugal-Calisto, m. seeger, P. Beltrao, N. Leulliot, A. Smirnov, D. Kressler, V. G. Panse

原始摘要(英文原文)· Original abstract
Eukaryotes inherited the core ribosome biogenesis apparatus from archaea. However, nucleocytoplasmic compartmentalisation and expansion to >200 assembly factors created the challenge of integrating this ancestral machinery into a complex maturation programme. One solution is the formation of transient modules in which newly acquired assembly factors support deeply conserved components. Here, we identify such a module, centred on the ancestral isoaspartylase Fap7, which couples the modification of the ribosomal protein uS11 to its incorporation into pre-ribosomes. Fap7 partners with Krr1 to capture uS11, forming an early checkpoint in which uS11 loading licenses Kri1 engagement and assembly progression. Loss of uS11 modification triggers a late checkpoint, preventing aberrant pre-ribosomes from acquiring translational competence. Integrative structure-function studies reveal how the ancestral isoaspartylase is embedded within a conserved eukaryotic assembly-factor network to safeguard the timing, order, and fidelity of ribosome production.
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A nucleolar assembly module integrates an ancestral isoaspartylase to safeguard ribosome biogenesis — 科研速览 Science Skim