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Reinhardt, C. J.

Publications and source records attributed to Reinhardt, C. J..

4 recordsLinked to original sources

A Global Ligandability Map of Tryptoline Butynamide Stereoprobes Identifies Covalent Inhibitors of the Actin Maturation Protease ACTMAP

Covalent chemistry coupled with activity-based protein profiling (ABPP) offers a versatile approach for small-molecule ligand discovery in native biological contexts. The covalent ligandability maps generated by ABPP that target cysteine have frequently leveraged the acrylamide as a reactive group due to its tempered electrophilicity and presence in many advanced tool compounds and therapeutics. More recently, alternative cysteine-directed reactive groups such as the butynamide have emerged as an additional source of covalent probes and drugs, but their global reactivity with the proteome remains largely unexplored. Here, we compare the ligandability maps of stereochemically defined acrylamide and butynamide compounds (stereoprobes) built from a common tryptoline core and find that the butynamides, despite exhibiting attenuated intrinsic and proteome-wide reactivity, preferentially engage a diverse set of proteins in human cancer cells. Among the butynamide-preferring proteins was C19orf54/ACTMAP, a cysteine protease required for the post-translational maturation of actin. We show that (1S, 3R)-tryptoline butynamides stereoselectively react with the catalytic nucleophile of ACTMAP, leading to accumulation of N-terminally unprocessed actin in cancer cells. Our findings support reactive group diversification as a strategy for expanding the ligandability of the human proteome and the butynamide, more specifically, as a differentiated cysteine-directed electrophile for chemical probe discovery.

biochemistry↗

Mapping ortholog-restricted ligandable cysteines in the wheat pathogen Zymoseptoria tritici

Zymoseptoria (Z.) tritici is the fungal phytopathogen responsible for Septoria tritici leaf blotch (STB), the main foliar disease of wheat. Fungicides mitigate crop loss caused by STB, but multidrug-resistant Z. tritici strains pose a major threat to the global food supply and underscore the need to identify new fungicidal targets. Here, we use activity-based protein profiling to generate a covalent ligandability map of Z. tritici, leading to the discovery of cysteines in a diverse set of essential proteins that are targeted by stereochemically defined, electrophilic small molecules (stereoprobes). We identify stereoprobes that display nucleotide-dependent reactivity with an ortholog-restricted cysteine in the GTPase SAR1, leading to accumulation of this protein and other COPII components at apparent ER exit sites and corresponding impairments in Z. tritici growth. Our findings thus expand the scope of ligandable, essential proteins in Z. tritici and illuminate opportunities to selectively target this destructive plant pathogen.

biochemistry↗

Integrated phenotypic screening and chemical proteomics identifies ETF1 ligands that modulate viral translation and replication

Emerging and re-emerging viruses pose a significant threat to global health. Although direct-acting antivirals have shown success, their efficacy is limited by the rapid emergence of drug-resistant viral variants. Hence, there is an urgent need for additional broad spectrum antiviral therapeutic strategies. Here, we identify by phenotypic screening a set of stereochemically defined photoreactive small molecules (photo-stereoprobes) that stereoselectively suppress SARS-CoV-2 replication in human lung epithelial cells. Structure-activity relationship-guided chemical proteomics identified the eukaryotic translation termination factor 1 (ETF1) as a target of the photo-stereoprobes, and this interaction was recapitulated with recombinant purified ETF1. We found that the photo-stereoprobes modulate programmed ribosomal frameshifting mechanisms essential for SARS-CoV-2 infection without causing ETF1 degradation, thus distinguishing the photo-stereoprobes from other known ETF1-directed small molecules. We finally show that the photo-stereoprobes also inhibit the replication of additional viruses with non-canonical ribosomal frameshifting mechanisms. Our findings thus identify a mechanistically distinct class of ETF1 ligands that implicate host translation termination processes as a potential target for antiviral development. SIGNIFICANCE STATEMENTThe identification of broad-spectrum antivirals that target host proteins is a desirable strategy to combat emerging viral infections given the rapid escape potential of viruses and the need to develop new countermeasures for clinically significant pathogens. Here, we integrate phenotypic screening and chemical proteomics to identify photo-stereoprobe small molecules that inhibit the replication of multiple viruses. We show that these compounds bind the protein eukaryotic peptide chain release factor subunit 1 (ETF1) and modulate programmed ribosomal frameshifting. Unlike previously described ligands for ETF1, which lead to proteasomal destruction of the protein, we did not find that the photo-stereoprobes altered ETF1 content in cells. Our findings thus point to an opportunity to pharmacologically modulate a host protein implicated in programmed ribosomal frameshifting as a strategy to combat infection of viruses from different families.

microbiology↗

Redirecting the pioneering function of FOXA1 with covalent small molecules

Pioneer transcription factors (TFs) exhibit a specialized ability to bind to and open closed chromatin, facilitating engagement by other regulatory factors involved in gene activation or repression. Chemical probes are lacking for pioneer TFs, which has hindered their mechanistic investigation in cells. Here, we report the chemical proteomic discovery of electrophilic small molecules that stereoselectively and site-specifically bind the pioneer TF, FOXA1, at a cysteine (C258) within the forkhead DNA-binding domain. We show that these covalent ligands react with FOXA1 in a DNA-dependent manner and rapidly remodel its pioneer activity in prostate cancer cells reflected in redistribution of FOXA1 binding across the genome and directionally correlated changes in chromatin accessibility. Motif analysis supports a mechanism where the covalent ligands relax the canonical DNA binding preference of FOXA1 by strengthening interactions with suboptimal ancillary sequences in predicted proximity to C258. Our findings reveal a striking plasticity underpinning the pioneering function of FOXA1 that can be controlled by small molecules.

biochemistry↗