Search bioRxiv⌕ Search

Biology subjects

Henrichs, I. K.

Publications and source records attributed to Henrichs, I. K..

2 recordsLinked to original sources

Comprehensive Variant Effect Map of Parkin-Mediated Mitophagy in Parkinson's Disease

The development of Parkinsons disease (PD) has a substantial genetic basis. Variants in the PRKN gene account for roughly half of autosomal-recessive PD cases, yet most variants remain classified as variants of uncertain significance. PRKN encodes the E3 ubiquitin-protein ligase, Parkin, that plays a key role in mitochondrial quality control by initiating mitophagy. In this work, we introduce a multiplexed mitophagy assay and measure the activity of more than 99% of all possible single-amino acid substitution and nonsense variants of Parkin. We also demonstrate that misfolded, rapidly degraded variants autonomously trigger Parkin-independent mitophagy. The obtained activity landscape closely reflects known structural and functional aspects of Parkin while revealing new insights into specific functional effects across the protein. This dataset near-perfectly distinguishes pathogenic from benign variants and surpasses both computational predictors and abundance-based metrics in pathogenicity assessment. Finally, the data pinpoint hypomorphic variants that could be amenable to rescue in future personalized therapeutic approaches for PD.

genetics↗

BAG6 and RNF126 are broadly involved in protein quality control of non-native missense protein variants

Protein quality control (PQC) degradation is a vigorous and selective system that limits the accumulation of harmful, non-native and aggregation-prone proteins. Specific PQC pathways have been described for misfolded ER proteins, aberrant translational products and mislocalized proteins. However, many components involved in PQC of structurally unstable cytosolic proteins are unknown despite such proteins being a common consequence of pathogenic coding variants. Here, we present results from a genome-wide CRISPR knockout screen to identify components involved in PQC of the Parkin R42P variant. We find that HSP90 and STIP1 stabilize Parkin, while the BAG6 chaperone and E3 ubiquitin ligase RNF126 are critical for PQC degradation. Variant abundance by massively parallel sequencing (VAMP-seq) reveal >1000 Parkin variants, including several variants linked to autosomal recessive juvenile Parkinsonism, are BAG6 targets. Pathogenic missense variants in phenylalanine hydroxylase (PAH) and the tumor suppressor FLCN are also stabilized in BAG6 and RNF126 knockout cells. We propose that BAG6 and RNF126 are broadly involved in PQC and may represent targets for the development of therapeutics for protein misfolding diseases.

biochemistry↗