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Frazier, C. L.

Publications and source records attributed to Frazier, C. L..

2 recordsLinked to original sources

Engineered reactivity of a bacterial E1-like enzyme enables ATP-driven modification of protein C termini

In biological systems, ATP provides an energetic driving force for peptide bond formation, but protein chemists lack tools that emulate this strategy. Inspired by the eukaryotic ubiquitination cascade, we developed an ATP-driven platform for C-terminal activation and peptide ligation based on E. coli MccB, a bacterial ancestor of ubiquitin-activating (E1) enzymes that natively catalyzes C-terminal phosphoramidate bond formation. We show that MccB can act on non-native substrates to generate an O-AMPylated electrophile that can react with exogenous nucleophiles to form diverse C-terminal functional groups including thioesters, a versatile class of biological intermediates that have been exploited for protein semisynthesis. To direct this activity towards specific proteins of interest, we developed the Thioesterification C-terminal Handle (TeCH)-tag, a sequence that enables high-yield, ATP-driven protein bioconjugation via a thioester intermediate. By mining the natural diversity of the MccB family, we developed two additional MccB/TeCH-tag pairs that are mutually orthogonal to each other and to the E. coli system, facilitating the synthesis of more complex bioconjugates. Our method mimics the chemical logic of peptide bond synthesis that is widespread in biology for high-yield in vitro manipulation of protein structure with molecular precision.

biochemistry↗

An expanded 2-pyridinecarboxaldehyde (2PCA)-based chemoproteomics toolbox for probing protease specificity

Proteomic profiling of protease-generated N termini, or N terminomics, provides key insights into protease function and specificity. However, current N terminomics technologies have sequence limitations or require specialized synthetic reagents for N-terminal peptide isolation. Here, we introduce an expanded N terminomics toolbox that is based on 2-pyridinecarboxaldehyde (2PCA) reagents. These tools enable efficient enrichment of protein N termini by combining selective N-terminal biotinylation using 2PCA reagents with chemically cleavable linkers for N-terminal peptide recovery. By incorporating a commercially available alkyne-modified 2PCA in combination with Cu(I)-catalyzed azide-alkyne cycloaddition (CuAAC), our strategy eliminates the need for chemical synthesis of N-terminal probes. Using these reagents, we developed PICS2 (Proteomic Identification of Cleavage Sites with 2PCA reagents) to profile the specificity of subtilisin/kexin-type proprotein convertases (PCSKs). We also implemented CHOPPER (Chemical enrichment Of Protease substrates with Purchasable, Elutable Reagents) for global sequencing of apoptotic proteolytic cleavage sites. Based on their broad applicability and ease of implementation, PICS2 and CHOPPER are useful tools that will advance our understanding of protease biology.

biochemistry↗