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1.
Chembiochem ; 25(10): e202400073, 2024 May 17.
Article in English | MEDLINE | ID: mdl-38457625

ABSTRACT

Identifying the drug-target interactome of small molecule therapeutics is essential for understanding the full pharmacological effects of a compound. These therapies often induce changes within the cellular proteome, leading to unexpected consequences such as changes in the targets complexation state or off-target interactions between the compound and additional proteins. Currently, unbiased target-ID approaches are being used to embark on this task. Here we provide an overview of the strengths and limitations of these methods, and a practical step-by-step protocol for using the BioTAC system to assist with drug target and interactome ID.


Subject(s)
Proteins , Ligands , Proteins/chemistry , Proteins/metabolism , Humans , Protein Binding
2.
Biochemistry ; 61(20): 2182-2187, 2022 10 18.
Article in English | MEDLINE | ID: mdl-36154019

ABSTRACT

The enzyme nicotine oxidoreductase (NicA2) is a member of the flavoprotein amine oxidase family that uses a cytochrome c protein (CycN) as its oxidant instead of dioxygen, which is the oxidant used by most other members of this enzyme family. We recently identified a potential binding site for CycN on the surface of NicA2 through rigid body docking [J. Biol. Chem. 2022, 298 (8), 102251]. However, this potential binding interface has not been experimentally validated. In this paper, we used unnatural amino acid incorporation to probe the binding interface between NicA2 and CycN. Our results are consistent with a structural model of the NicA2-CycN complex predicted by protein-protein docking and AlphaFold, suggesting that this is the binding site for CycN on NicA2's surface. Based on additional mutagenesis of potentially redox active residues in NicA2, we propose that electron transfer from NicA2's flavin to CycN's heme occurs without the assistance of a protein-derived wire.


Subject(s)
Nicotine , Oxidoreductases , Amines , Amino Acids/metabolism , Cytochromes c/genetics , Cytochromes c/metabolism , Electron Transport , Electrons , Flavins/metabolism , Flavoproteins/metabolism , Heme/metabolism , Nicotine/chemistry , Oxidants , Oxidation-Reduction , Oxidoreductases/metabolism , Oxygen
3.
Nat Commun ; 14(1): 8016, 2023 Dec 04.
Article in English | MEDLINE | ID: mdl-38049406

ABSTRACT

Understanding how small molecules bind to specific protein complexes in living cells is critical to understanding their mechanism-of-action. Unbiased chemical biology strategies for direct readout of protein interactome remodelling by small molecules would provide advantages over target-focused approaches, including the ability to detect previously unknown ligand targets and complexes. However, there are few current methods for unbiased profiling of small molecule interactomes. To address this, we envisioned a technology that would combine the sensitivity and live-cell compatibility of proximity labelling coupled to mass spectrometry, with the specificity and unbiased nature of chemoproteomics. In this manuscript, we describe the BioTAC system, a small-molecule guided proximity labelling platform that can rapidly identify both direct and complexed small molecule binding proteins. We benchmark the system against µMap, photoaffinity labelling, affinity purification coupled to mass spectrometry and proximity labelling coupled to mass spectrometry datasets. We also apply the BioTAC system to provide interactome maps of Trametinib and analogues. The BioTAC system overcomes a limitation of current approaches and supports identification of both inhibitor bound and molecular glue bound complexes.


Subject(s)
Biotin , Proteins , Proteins/metabolism , Chromatography, Affinity , Mass Spectrometry/methods , Photoaffinity Labels/chemistry
4.
bioRxiv ; 2023 Aug 22.
Article in English | MEDLINE | ID: mdl-37662262

ABSTRACT

Unbiased chemical biology strategies for direct readout of protein interactome remodelling by small molecules provide advantages over target-focused approaches, including the ability to detect previously unknown targets, and the inclusion of chemical off-compete controls leading to high-confidence identifications. We describe the BioTAC system, a small-molecule guided proximity labelling platform, to rapidly identify both direct and complexed small molecule binding proteins. The BioTAC system overcomes a limitation of current approaches, and supports identification of both inhibitor bound and molecular glue bound complexes.

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