Search bioRxiv⌕ Search

Biology subjects

Farnung, J.

Publications and source records attributed to Farnung, J..

3 recordsLinked to original sources

The E3 ubiquitin ligase mechanism specifying target-directed microRNA degradation

MicroRNAs (miRNAs) associate with Argonaute (AGO) proteins to form complexes that down-regulate target RNAs, including mRNAs from most human genes1-3. Within each complex, the miRNA pairs to target mRNAs to specify their repression, and AGO provides effector function while also protecting the miRNA from cellular nucleases2-5. Although much has been learned about this mode of posttranscriptional gene regulation, less is known about how the miRNAs themselves are regulated. In one such regulatory pathway, unusual miRNA targets called "trigger" RNAs reverse the canonical regulatory logic and instead down-regulate microRNAs6-21. This target-directed miRNA degradation (TDMD) is thought to require a cullin-RING E3 ligase (CRL) because it depends on the cullin protein CUL3 and other ubiquitylation components, including the BC-box protein ZSWIM8 (ref. 22,23). ZSWIM8 is required for murine perinatal viability and for destabilization of most short-lived miRNAs, but is otherwise poorly understood23-25. Here, we demonstrate that a human AGO-miRNA- trigger complex selectively binds ZSWIM8 for CUL3-mediated polyubiquitylation of the AGO protein within this complex. Cryogenic electron-microscopy (cryo-EM) analyses show how ZSWIM8 recognizes the distinct AGO2 and miRNA-trigger conformations shaped by pairing of the miRNA to the trigger. For example, this pairing extracts the miRNA from a binding pocket within AGO2, allowing the pocket to be captured by ZSWIM8, and it directs the trigger RNA along a distinct trajectory to be also recognized by ZSWIM8. These results biochemically establish AGO binding and polyubiquitylation as the key regulatory step of TDMD, define a unique CRL class, and reveal generalizable RNA-RNA, RNA-protein, and protein-protein interactions that specify the ubiquitin-mediated degradation of AGO with exquisite selectivity. The substrate features recognized by the E3 ubiquitin ligase do not conform to a conventional degron26-28, but rather establish a two-RNA-factor authentication mechanism specifying a protein ubiquitylation substrate.

biochemistry↗

C-terminal amides mark proteins for degradation via SCF/FBXO31

During normal cellular homeostasis unfolded and mis-localized proteins are recognized and removed, preventing the build-up of toxic byproducts1. When protein homeostasis is perturbed during aging, neurodegeneration or cellular stress, proteins can accumulate several forms of chemical damage through reactive metabolites2, 3. Such modifications have been proposed to trigger the selective removal of chemically marked proteins3-6; however, discovering modifications sufficient to induce protein degradation has remained challenging. Using a semi-synthetic chemical biology approach coupled to cellular assays, we found that C-terminal amide-bearing proteins (CTAPs) are rapidly cleared from human cells. A CRISPR screen identified the SCF/FBXO31 ubiquitin ligase as a reader of C-terminal amides, which ubiquitylates CTAPs for subsequent proteasomal degradation. A conserved binding pocket enables FBXO31 to bind almost any C-terminal peptide bearing an amide while retaining exquisite selectivity over non-modified clients. This mechanism facilitates binding and turnover of endogenous CTAPs that are formed following oxidative stress. A dominant human mutation found in neurodevelopmental disorders switches CTAP recognition, such that non-amidated neosubstrates are now degraded and FBXO31 becomes markedly toxic. We propose that CTAPs may represent the vanguard of a largely unexplored class of modified amino acid degrons that could provide a general strategy for selective yet broad surveillance of chemically damaged proteins.

cell biology↗

Human ATG3 contains a non-canonical LIR motif crucial for its enzymatic activity in autophagy

Macroautophagy is one of two major degradation systems in eukaryotic cells. Regulation and control of autophagy is often achieved through the presence of short peptide sequences called LC3 interacting regions (LIR) in autophagy-involved proteins. Using a combination of new protein-derived activity-based probes, protein modelling and X-ray crystallography, we identified a non-canonical LIR motif in the human E2 enzyme responsible for LC3 lipidation, ATG3. The LIR motif is present in the flexible region of ATG3 and adopts an uncommon {beta}-sheet structure binding to the backside of LC3. We show that the {beta}-sheet conformation is crucial for its interaction with LC3. In cellulo studies provide evidence that LIRATG3 is required for LC3 lipidation and ATG3[~]LC3 thioester formation. Removal of LIRATG3 negatively impacts the rate of thioester transfer from ATG7 to ATG3. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=182 SRC="FIGDIR/small/502437v1_ufig1.gif" ALT="Figure 1"> View larger version (39K): org.highwire.dtl.DTLVardef@f952e4org.highwire.dtl.DTLVardef@b0fe6aorg.highwire.dtl.DTLVardef@eeabcorg.highwire.dtl.DTLVardef@154ee1c_HPS_FORMAT_FIGEXP M_FIG C_FIG

biochemistry↗