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Biomedical subjects

Wilfred A van der Donk

Publications and source records attributed to Wilfred A van der Donk.

5 recordsLinked to original sources

Substrate-Dependent Crosslinking by the Cytochrome P450 From Aminopyruvatide Biosynthesis.

Cytochrome P450s catalyze an array of reactions including crosslinking of aromatic side chains in the biosynthesis of ribosomally synthesized and post-translationally modified peptides (RiPPs). ApyO is a cytochrome P450 that forms a C─C bond between two tyrosines in a YLY motif in the substrate ApyA, the precursor peptide of the RiPP aminopyruvatide. We utilized cell-free translation to generate ApyA variants and probe the substrate tolerance of ApyO. Through AlphaFold-based modelling and in vitro assays, we show that ApyO accepts the 10 C-terminal residues of ApyA and requires a conserved Arg/Lys in the substrate. Inspired by substrate sequences in orthologous biosynthetic gene clusters, we substituted one of the tyrosine residues with a tryptophan and observed that ApyO catalyzed formation of an N─C bond between the indole of Trp and Cε2 of Tyr. ApyO unexpectedly catalyzed formation of a C─O bond between the two tyrosine residues when we substituted the leucine residue in the YLY motif with tyrosine or tryptophan. A peptide containing a biaryl linkage and C-terminal aminopyruvate displayed sub-nanomolar inhibition of select proteases, with the aminopyruvate group critical for activity. Overall, this study demonstrates plasticity in the manner of macrocyclization catalyzed by the P450 ApyO.

biosynthesis

Unconventional Biocatalytic Strategies Orchestrate the Synthesis of the Nucleoside Analog Sinefungin.

Sinefungin is a potent nucleoside antimetabolite of S-adenosylmethionine (SAM). Since its discovery in the 1970s, sinefungin has generated significant scientific interest owing to its role as a bioisostere of SAM and its broad range of biological activities. Despite considerable efforts to uncover the enzymes responsible for sinefungin production in the following years, its biosynthesis remained unclear for decades. Here, we characterize the complete sinefungin biosynthetic gene cluster (sin BGC) from Streptomyces incarnatus NRRL 8089. In vitro and in vivo analyses support a recent finding that the defining carbon-carbon (C-C) bond is formed not by a long-hypothesized PLP-dependent process, but by a vitamin B12-dependent radical SAM enzyme. We provide direct mechanistic evidence, via isotope-labeled products, that the adenosyl group of sinefungin originates from adenosylcobalamin and is atypically consumed via a homolytic SH2 substitution reaction. We also characterize two peptide aminoacyl-tRNA ligases (PEARLs) that append alanines onto the nucleoside scaffold using tRNA-activated amino acids. The PEARLs act directly on small molecules rather than macromolecular substrates, with one PEARL capable of iterative elongation. In addition, we perform in-vitro substrate profiling of several sin BGC-encoded enzymes. We reveal that multiple enzymes show specificity toward phosphorylated intermediates, including the earliest-acting PEARL enzyme. These observations provide an explanation for a cryptic phosphorylation-dephosphorylation strategy observed in the pathway, as they prevent the formation of the highly toxic sinefungin inside the cell. Finally, we leverage these enzymes in a reduced multi-enzyme cascade to biosynthesize sinefungin. Together, these findings expand upon our current knowledge of radical-mediated C-C bond formation and PEARL enzyme catalysis, unlocking biocatalytic possibilities to produce amino acid-nucleoside conjugates.

Streptomyces

The Biosynthetic Pathway to the Pyrroloiminoquinone Marine Natural Product Ammosamide C.

Ammosamide C is a marine natural product containing a highly decorated pyrroloiminoquinone core. Studies on the biosynthetic gene cluster (BGC) that produces ammosamides previously revealed that they are made by a series of posttranslational modifications (PTMs). The BGC includes genes encoding a precursor peptide AmmA and four enzymes known as PEptide Aminoacyl-tRNA Ligases (PEARLs). Initial studies into the ammosamide biosynthetic pathway demonstrated Trp addition to a precursor peptide by the PEARL AmmB2. Thereafter, sequential modifications by several enzymes, including two other PEARLs lead to the formation of a peptide intermediate bearing a C-terminal diaminoquinone. In the present work, we present the biosynthetic steps that convert this intermediate to ammosamide C. The PEARL AmmB4 unexpectedly appends an arginine to the C-terminus of the aforementioned intermediate. Then, C-terminal proteolysis by the heterodimeric TldD/E-like protease Amm12/13 releases a dipeptide, which is subsequently cleaved by the dipeptidase Amm19 to produce a Trp-derived diaminoquinone. Amm3 next catalyzes the conversion of this Trp derivative to the corresponding chlorinated ammosamaic acid. Finally, a putative aminotransferase Amm20 performs an amidation, and Amm23 methylates this intermediate to arrive at ammosamide C; the order of these last two steps could not be determined definitively. This study reveals an unexpectedly lengthy route to ammosamide that illustrates the opportunistic nature of natural product biosynthesis, demonstrates a role for a PEARL that is unlike previous roles, identifies steps that are not PTMs, and adds Arg-tRNA to the growing repertoire of aminoacyl tRNAs that are used by PEARLs.

Biological Products

Aminoacyl-tRNA Specificity of a Ligase Catalyzing Non-ribosomal Peptide Extension.

Peptide aminoacyl-transfer ribonucleic acid ligases (PEARLs) are amide-bond-forming enzymes that extend the main chain of peptides by using aminoacyl-tRNA (aa-tRNA) as a substrate. In this study, we investigated the substrate specificity of the PEARL BhaBCAla from Bacillus halodurans, which utilizes Ala-tRNAAla. By leveraging flexizyme, a ribozyme capable of charging diverse acids onto a desired tRNA, we generated an array of aa-tRNAs in which we varied both the amino acid and the tRNA to dissect the substrate scope of BhaBCAla. We demonstrate that BhaBCAla catalyzes peptide extension with noncognate proteinogenic and noncanonical amino acids, hydroxy acids, and mercaptocarboxylic acids when attached to tRNAAla. For most of these, the efficiency was considerably reduced compared to Ala, indicating that the enzyme recognizes the amino acid. By variation of the different parts of the tRNA, enzyme specificity was shown to also depend on the acceptor stem and the anticodon arm of the tRNA. These findings establish the molecular determinants of PEARL specificity and provide a foundation for engineering these enzymes for broader applications in peptide synthesis.

RNA, Transfer, Amino Acyl