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Lazennec-Schurdevin, C.

Publications and source records attributed to Lazennec-Schurdevin, C..

2 recordsLinked to original sources

Coordinated Assembly of WAVE and WASH complexes

WAVE and WASH polymerize Arp2/3-mediated branched actin at the leading edge of migrating cells and on the surface of endosomes, respectively. These two proteins are regulated within similar multiprotein complexes, the assembly mechanism of which remains poorly understood. Here we found using mass spectrometry that the two smallest subunits, BRK1 of the WAVE complex and CCDC53 of the WASH complex, interact with each other and with the assembly factor HSBP1. HSBP1 promotes WAVE and WASH assemblies and their respective activities, migration persistence and endosomal branched actin. Reduced levels of WAVE and WASH complexes caused by HSBP1 depletion can be corrected by providing cells with an excess of BRK1 or CCDC53 to assemble their specific complex. Unexpectedly, endogenous levels of BRK1 cross-regulate WASH assembly, whereas those of CCDC53 cross-regulate WAVE assembly. We found that various oligomers comprising BRK1, CCDC53 and HSBP1, including a heterotrimer containing one molecule of each, are formed through their promiscuous coiled coils. These oligomers play a coordinating role in the assembly of WAVE and WASH complexes.

cell biology↗

Role of aIF5B in archaeal translation initiation

In eukaryotes and in archaea late steps of translation initiation involve the two initiation factors e/aIF5B and e/aIF1A. In eukaryotes, the role of eIF5B in ribosomal subunit joining is established and structural data showing eIF5B bound to the full ribosome were obtained. To achieve its function, eIF5B collaborates with eIF1A. However, structural data illustrating how these two factors interact on the small ribosomal subunit have long been awaited. The role of the archaeal counterparts, aIF5B and aIF1A, remains to be extensively addressed. Here, we study the late steps of Pyrococcus abyssi translation initiation. Using in vitro reconstituted initiation complexes and light scattering, we show that aIF5B bound to GTP accelerates subunit joining without the need for GTP hydrolysis. We report the crystallographic structures of aIF5B bound to GDP and GTP and analyze domain movements associated to these two nucleotide states. Finally, we present the cryo-EM structure of an initiation complex containing 30S bound to mRNA, Met-tRNAiMet, aIF5B and aIF1A at 2.7 [A] resolution. Structural data shows how archaeal 5B and 1A factors cooperate to induce a conformation of the initiator tRNA favorable to subunit joining. Archaeal and eukaryotic features of late steps of translation initiation are discussed.

biochemistry↗