bioRxiv ScienceSearch

Biology subjects

Frost, A.

Publications and source records attributed to Frost, A..

4 recordsLinked to original sources

The ESCRT-III proteins IST1 and CHMP1B assemble around nucleic acids

ESCRT-III proteins can promote inside-out or outside-in membrane tubulation and fission. In addition, several observations suggest that ESCRT factors may also associate with nucleic acids during development, different stages of the cell cycle, and during retro-transposition of parasitic nucleic acids like LINE1 elements. Two ESCRT-III subunits, IST1 (aka CHMP8) and CHMP1B, can coassemble as an external protein coat around liposomes in vitro and around recycling endosomal tubules in living cells. Here we show that recombinant IST1 and CHMP1B can also copolymerize into double stranded filaments that surround nucleic acids. Electron cryo-microscopy reconstructions of nucleic acid-bound IST1-CHMP1B copolymers revealed that the polynucleotides track along a binding groove formed between filaments of the inner CHMP1B strand. The well-ordered structures also reveal that the C-terminal tails of CHMP1B subunits extrude through the outer IST1 layer to the tube exterior. As a result, the MIT domain binding motifs of both CHMP1B and IST1 are arrayed on the outer surface of the copolymer, where they could bind and recruit MIT domain-containing co-factors, such as the SPASTIN ATPase or the USP8 ubiquitin protease. Our structure raises the possibility that ESCRT-III proteins may form nucleic acid complexes in mammalian cells.

biochemistry

Vms1p is a release factor for the Ribosome-associated Quality control Complex

Eukaryotic cells employ the Ribosome-associated Quality control Complex (RQC) to maintain homeostasis despite defects that cause ribosomes to stall. The RQC comprises the E3 ubiquitin ligase Ltn1p, the ATPase Cdc48p, and the novel proteins Rqc1p and Rqc2p1-3. Following recognition and subunit splitting of stalled ribosomes, the RQC detects and assembles on 60S subunits that hold incomplete polypeptides linked to a tRNA (60S:peptidyl-tRNA)4-8. Ltn1p cooperates with Rqc1p to facilitate ubiquitination of the incomplete nascent chain, marking it for degradation7,9,10. Rqc2p stabilizes Ltn1p on the 60S3-5,8 and recruits charged tRNAs to the 60S to catalyze elongation of the nascent protein with Carboxy-terminal Alanine and Threonine extensions, or CAT tails, via a mechanism that is distinct from canonical translation4,10. CAT-tailing mobilizes and exposes lysine residues in the nascent chain, especially those stalled within the exit tunnel, thereby supporting efficient ubiquitination10,11. If the ubiquitin-proteasome system is overwhelmed or unavailable, CAT-tailed nascent chains aggregate in the cytosol or within organelles like the mitochondria12-14. Here we identify Vms1p as the tRNA hydrolase that releases nascent polypeptides for extraction and degradation in the RQC pathway.

biochemistry

Structure of the nucleotide exchange factor eIF2B reveals mechanism of memory-enhancing molecule

Regulation by the integrated stress response (ISR) converges on the phosphorylation of translation initiation factor eIF2 in response to a variety of stresses. Phosphorylation converts eIF2 from substrate to competitive inhibitor of its dedicated guanine nucleotide exchange factor, eIF2B, inhibiting translation. ISRIB, a drug-like eIF2B activator, reverses the effects of eIF2 phosphorylation and, remarkably, in rodents enhances cognition and corrects cognitive deficits after brain injury. To determine its mechanism of action, we solved an atomic-resolution structure of ISRIB bound in a deep cleft within decameric human eIF2B by electron cryo-microscopy. Structural and biochemical analyses revealed that formation of fully active, decameric eIF2B holoenzyme depended on the assembly of two identical tetrameric subcomplexes, and that ISRIB promoted this step by cross-bridging a central symmetry interface. Regulation of eIF2B assembly emerges as a rheostat for eIF2B activity that tunes translation during the ISR and that can be further modulated by ISRIB.

biochemistry

Structural Basis of Mitochondrial Receptor Binding and GTP Driven Conformational Constriction by Dynamin-Related Protein 1

Mitochondrial inheritance, genome maintenance, and metabolic adaptation all depend on organelle fission by Dynamin-Related Protein 1 (DRP1) and its mitochondrial receptors. DRP1 receptors include the paralogs Mitochondrial Dynamics 49 and 51 (MID49/MID51) and Mitochondrial Fission Factor (MFF), but the mechanisms by which these proteins recruit DRP1 and regulate its activities are unknown. Here we present a cryoEM structure of human, full-length DRP1 bound to MID49 and an analysis of structure- and disease-based mutations. We report that GTP binding allosterically induces a remarkable elongation and rotation of the G-domain, Bundle-Signaling Element (BSE) and connecting hinge loops of DRP1. In this nucleotide-bound conformation, a distributed network of multivalent interactions promotes DRP1 copolymerization into a linear filament with MID49, MID51 or both. Subsequent GTP hydrolysis and exchange within the filament leads to receptor dissociation, shortening through disassembly, and concomitant curling of DRP1 oligomers into closed rings. The dimensions of the closed DRP1 rings are consistent with DRP1-constricted mitochondrial tubules observed in human cells. These structures are the first views of full-length, receptor- and nucleotide-bound dynamin-family GTPases and--in comparison with nucleotide-free crystal structures--teach us how these molecular machines perform mechanical work through nucleotide-driven allostery.

biophysics