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Garhammer, M.

Publications and source records attributed to Garhammer, M..

2 recordsLinked to original sources

Tryptoline Stereoprobe Elaboration Identifies Inhibitors of the GRPEL1-HSPA9 Chaperone Complex

Activity-based protein profiling has identified hundreds of proteins from diverse classes that react at specific cysteine residues with stereochemically defined electrophilic compounds (stereoprobes) in human cells. The structure-activity relationships underlying these stereoprobe-protein interactions, however, remain poorly understood. Here we show that the protein interaction landscape of tryptoline acrylamide stereoprobes can be profoundly altered by structural modifications distal to the acrylamide reactive group. The majority of stereoprobe liganding events occurred at non-orthosteric sites and mostly evaded assignment by the machine learning-based co-folding model Boltz-2, which instead tended to misplace the stereoprobes in orthosteric pockets (an outcome we term "orthostery burnout"). We found that stereoprobes reacting with C124 in the nucleotide exchange factor GRPEL1 disrupt interactions with the mitochondrial HSP70 chaperone HSPA9/mortalin, leading to impairments in mitochondrial protein import and induction of mitophagy. Our results highlight tryptoline acrylamides as a versatile source of covalent ligands targeting non-orthosteric sites on proteins, including tool compounds that perturb the mitochondrial HSP70 chaperone system.

biochemistry↗

Alpha-Synuclein aggregates inhibit ESCRT-III through sequestration and collateral degradation

-Synuclein aggregation is a hallmark of Parkinsons disease and related synucleinopathies. Extracellular -synuclein fibrils enter naive cells via endocytosis, followed by transit into the cytoplasm to seed endogenous -synuclein aggregation. Intracellular aggregates sequester numerous proteins, including subunits of the ESCRT-III system for endolysosome membrane repair, but the toxic effects of these events remain poorly understood. Using cellular models and in vitro reconstitution, we found that -synuclein fibrils interact with an -helix common to ESCRT-III proteins. This interaction results in sequestration of ESCRT-III subunits and triggers their proteasomal destruction in a process of "collateral degradation." These twin mechanisms deplete the available ESCRT-III pool, initiating a toxic feedback loop. The ensuing loss of ESCRT function compromises endolysosome membranes, thereby facilitating escape of aggregate seeds into the cytoplasm, which in turn increases aggregation and ESCRT-III sequestration. We suggest that collateral degradation and triggering of self-perpetuating systems could be general mechanisms of sequestration-induced proteotoxicity. HIGHLIGHTSO_LI-Synuclein fibrils bind and sequester ESCRT-III endolysosome repair proteins C_LIO_LIAn -helical segment common to ESCRT-III mediates fibril-selective interaction C_LIO_LIFibril-bound ESCRT-III subunits undergo "collateral degradation" via the proteasome C_LIO_LIESCRT-III depletion damages endolysosomes and worsens -synuclein aggregation C_LI

biochemistry↗