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Buist, A.

Publications and source records attributed to Buist, A..

2 recordsLinked to original sources

Data-independent acquisition (DIA) approach for comprehensive ubiquitinome profiling in targeted protein degradation

Targeted protein degradation (TPD) has emerged as a highly promising therapeutic strategy for a wide range of diseases, including cancer and neurodegenerative disorders. The ubiquitin-proteasome system, which is responsible for protein degradation, plays a critical role in this process. Gaining comprehensive insights into the ubiquitylation landscape is essential for the development of selective and efficient targeted protein degradation approaches. Recently, data-independent acquisition (DIA) has gained significant popularity as a robust and unbiased approach for quantitative proteomics. Here, we report a cutting-edge workflow that utilizes diGly antibody-based enrichment followed by an optimized Orbitrap-based DIA method for the identification of ubiquitylated peptides. We identify over 40,000 diGly precursors corresponding to more than 7,000 proteins in a single measurement from cells exposed to a proteasome inhibitor, highlighting an exceptional throughput. By applying our optimized workflow, we successfully identify ubiquitylation sites on substrate proteins with various TPD approaches. Therefore, our workflow holds tremendous potential for rapidly establishing mode of action for various TPD modalities, including PROTACs and molecular glues.

cell biology↗

Targeted degradation of α-synuclein prevents PFF-induced aggregation

Accumulation of misfolded -synuclein protein in intracellular inclusion bodies of dopaminergic neurons underlies the pathogenesis of Synucleinopathies, which include Parkinsons Disease (PD), Dementia with Lewy Bodies (DLB) and Multiple System Atrophy (MSA). Therefore, clearance of misfolded -synuclein from dopaminergic neurons could in principle offer a therapeutic window for Synucleinopathies, which currently remain untreatable. In this study, we employ the Affinity-directed PROtein Missile (AdPROM) system consisting of the substrate receptor of the CUL2-E3 ligase complex VHL and a nanobody selectively recognising the human -synuclein protein and demonstrate targeted degradation of endogenous -synuclein from human cell lines with remarkable selectivity. We further demonstrate that targeted degradation of -synuclein prevents the pre-formed fibril (PFF)-induced aggregation of -synuclein in primary neurons derived from rats expressing human -synuclein. This approach represents the first demonstration of nanobody-guided proteasomal degradation of all clinically relevant -synuclein variants, highlighting its potential as a therapeutic strategy against Synucleinopathies.

neuroscience↗