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Jaskolowski, M.

Publications and source records attributed to Jaskolowski, M..

2 recordsLinked to original sources

Molecular basis of the TRAP complex function in ER protein biogenesis

The Translocon Associated Protein (TRAP) complex resides in the endoplasmic reticulum (ER) membrane and interacts with the Sec translocon and the translating ribosome to facilitate biogenesis of secretory and membrane proteins1-4. TRAP is essential for the secretion of many hormones, and its key role in the production of the hormone peptide insulin has been particularly well established5,6. The mechanism by which TRAP engages ribosomes and the translocon to facilitate translocation of protein clients in the secretory pathway is not clear. Here, we reveal the molecular architecture of the mammalian TRAP complex and how it engages the translating ribosome associated with Sec61 translocon on the ER membrane. The TRAP complex is anchored to the ribosome via a long tether and its position relative to the ribosome and the translocon is further stabilized by a finger-like loop. This spatial arrangement positions a cradle-like lumenal domain of TRAP below the protein conducting pore of the translocon for interactions with translocated nascent chains. The biological importance of these key interactions is evident by structure-guided TRAP mutations in C. elegans that lead to growth deficits associated with increased ER stress and defects in insulin secretion. Our findings elucidate the molecular basis of the TRAP complex in the biogenesis and translocation of proteins at the ER.

molecular biology↗

Stepwise maturation of the peptidyl transferase region of human mitoribosomes

Mitochondrial ribosomes are specialized for the synthesis of membrane proteins responsible for oxidative phosphorylation. Mammalian mitoribosomes diverged considerably from the ancestral bacterial ribosomes and feature dramatically reduced ribosomal RNAs. Structural basis of the mammalian mitochondrial ribosome assembly is currently not understood. Here we present eight distinct assembly intermediates of the human large mitoribosomal subunit involving 7 assembly factors. We discover that NSUN4-MTERF4 dimer plays a critical role in the process by stabilizing the 16S rRNA in a conformation that exposes the functionally important regions of rRNA for modification by MRM2 methyltransferase and quality control interactions with a conserved mitochondrial GTPase MTG2 that contacts the sarcin ricin loop and the immature active site. The successive action of these factors leads to the formation of the peptidyl transferase active site of the mitoribosome and the folding of the surrounding rRNA regions responsible for interactions with tRNAs and the small ribosomal subunit.

biochemistry↗