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Antos, J. M.

Publications and source records attributed to Antos, J. M..

2 recordsLinked to original sources

Biochemical characterization of Bacillus anthracis sortase B: Use in sortase mediated ligation and substrate recognition dependent on residues beyond the canonical pentapeptide binding motif for sortase enzymes

Sortases are cysteine transpeptidases located on the surface of Gram-positive bacteria. These critical enzymes facilitate the attachment of proteins to the cell wall, and are potential targets for novel antibiotic development, as well as versatile tools in protein engineering applications. Although there are six classes of sortases recognized, class A sortases (SrtA) are the most widely studied and utilized. SrtA enzymes recognize the canonical Cell Wall Sorting Signal (CWSS), LPXTG, where X=any amino acid, although work in recent years identified additional promiscuity in multiple positions of this recognition motif. Much less is known about Class B sortases (SrtB), which target a distinct sequence, typically with an N-terminal Asn, e.g., variations of NPXTG or NPQTN. Although understudied overall, two SrtB enzymes have previously been shown to be specific for heme transporter proteins, and in vitro experiments with the catalytic domains of these enzymes reveal activities significantly worse than SrtA from the same organisms. Here, we use protein biochemistry, structural analyses, and computational simulations to better understand and characterize these enzymes, specifically investigating Bacillus anthracis SrtB (baSrtB) as a model SrtB protein. Structural modeling predicts a plausible enzyme-substrate complex, which is verified by mutagenesis of binding cleft residues at several positions. Furthermore, residues N- and C-terminal to the pentapeptide recognition motif are critical for observed activity. We also use chimeric proteins to identify a single site that improves baSrtB activity by [~]4-fold and use purified protein substrates to validate sortase-mediated ligation of two proteins using SrtB enzymes for the first time. Taken together, these studies provide insight into SrtB-target binding as well as evidence that SrtB enzymes can be modified to be of potential use in protein engineering.

biochemistry↗

A second specificity-determining loop in Class A sortases: Biochemical characterization of natural sequence variation in chimeric SrtA enzymes

Gram-positive bacteria contain sortase enzymes on their cell surfaces that catalyze transpeptidation reactions critical for proper cellular function. In vitro, sortases are used in sortase-mediated ligation (SML) reactions for a variety of protein engineering applications. Historically, sortase A from Staphylococcus aureus (saSrtA) has been the enzyme of choice for SML reactions. However, the stringent specificity of saSrtA for the sequence motif LPXTG limits its uses. Here, we use principal component analysis to identify a structurally conserved loop with a high degree of variability in all classes of sortases. We investigate the contribution of this {beta}7-{beta}8 loop, located between the catalytic cysteine and arginine residues and immediately adjacent to the target binding cleft, by designing and testing chimeric sortase enzymes. Our chimeras utilize natural sequence variation of Class A sortases from 8 species engineered into the SrtA sequence from Streptococcus pneumoniae (spSrtA). While some of our chimeric enzymes mimic the activity and selectivity of the wild-type protein from which the loop sequence is derived (e.g., that of saSrtA), others result in chimeric spSrtA enzymes able to accommodate a range of residues in the final position of the substrate motif (LPXTX). Using mutagenesis, structural, and sequence analyses, we identify three interactions facilitated by {beta}7-{beta}8 loop residues that appear to be broadly characteristic of Class A sortase enzymes. These studies provide the foundation for a deeper understanding of sortase target selectivity and can expand the sortase toolbox for future SML applications.

biochemistry↗