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Erzberger, J. P.

Publications and source records attributed to Erzberger, J. P..

2 recordsLinked to original sources

Sequence-directed RNA remodeling within a topologically complex RNP substrate

DEAD-box ATPases are ubiquitous enzymes essential in all aspects of RNA biology. However, the limited in vitro catalytic activities described for these enzymes is at odds with their complex cellular roles, most notably in driving large-scale RNA remodeling steps during the assembly of ribonucleoproteins (RNPs). We describe cryo-EM structures of 60S ribosomal biogenesis intermediates that reveal how context-specific RNA unwinding by the DEAD-box ATPase Spb4 results in extensive, sequence-directed remodeling of rRNA secondary structure. Multiple cis and trans interactions stabilize a post-catalytic, high-energy intermediate that drives the organization of the root helix structure within rRNA domain IV. This mechanism explains how limited strand separation by DEAD-box ATPases is leveraged to provide non-equilibrium directionality and ensure efficient and accurate RNP assembly.

biophysics↗

A comprehensive landscape of 60S ribosome biogenesis factors

Eukaryotic ribosome biogenesis is facilitated and regulated by numerous ribosome biogenesis factors (RBFs). High-resolution cryo-EM maps have defined the molecular interactions of RBFs during maturation, but many transient and dynamic interactions, particularly during early assembly, remain uncharacterized. Using quantitative proteomics and crosslinking coupled to mass spectrometry (XL-MS) data from a extensive set of pre-ribosomal particles, we derived a comprehensive and time-resolved interaction map of RBF engagement during 60S maturation. A novel filter that efficiently eliminates false positive interactions and integration of our MS data with known structural information allowed us to localize 22 unmapped RBFs to specific biogenesis intermediates and to identify 9 proteins that represent potentially new RBFs. Our analysis reveals an extensive interaction network for the casein kinase complex in 60S maturation and elucidates the timing and molecular function of 60S engagement by DEAD-box ATPases. Our data provide a powerful resource for future studies of 60S ribosome biogenesis.

biochemistry↗