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Cintas, L. M.

Publications and source records attributed to Cintas, L. M..

2 recordsLinked to original sources

An Enhanced Split Intein-Mediated Ligation (SIML) Platform for Rapid Discovery and Functional Screening of Circular Bacteriocins

Bacteriocins are ribosomally synthesized antimicrobial peptides with promising applications in biotechnology, particularly in food preservation and animal and human health. Circular bacteriocins are especially attractive due to their head-to-tail cyclized structure, which confers enhanced stability and antimicrobial potency relative to linear peptides. Here, we report an in vitro cell-free protein synthesis system coupled with an enhanced Split Intein-Mediated Ligation platform (IV-CFPS/SIML) for the efficient synthesis of circular bacteriocins through systematic evaluation of cyclization sites and alternative split inteins. Using enterocin AS-48 as a model, we systematically evaluated multiple serine-based cyclization sites in combination with three split inteins, NpuDnaE, Gp41-1, and SspGyrB, to identify configurations supporting efficient splicing and high antimicrobial activity. Gp41-1 emerged as the most effective intein and was subsequently applied to the production of garvicin ML, amylocyclicin, and 27 naturally occurring sequence variants, demonstrating that cyclization site selection, intein identity, and minor sequence variations strongly influence antimicrobial potency and target range. Finally, SIML expression cassettes encoded in pUC-derived vectors enabled in vivo production and functional expression of selected circular bacteriocins in recombinant Escherichia coli. Collectively, these results establish SIML as a versatile platform for in vitro and in vivo production, screening, and functional characterization of known and putative circular bacteriocins.

synthetic biology↗

Altitudin S from Bacillus altitudinis ECC22 defines a new subgroup of circular bacteriocins

Bacteriocins are ribosomally synthesized antimicrobial peptides exhibiting diverse structures and mechanisms of action. Bacillus altitudinis ECC22, previously shown to produce the circular bacteriocins pumilarin and altitudin A, was found to harbor an additional biosynthetic gene cluster encoding a novel circular bacteriocin, designated altitudin S Proteomic analysis of active supernatant fractions confirmed the production of altitudin S, with a molecular mass of 8379 Da, consistent with head-to-tail cyclization. The peptide is synthesized as a 132-residue precursor comprising a 56-amino-acid leader and a 76-residue circular mature core. Structural modeling predicted a compact saposin-like fold composed of five -helices and a strongly cationic surface (pI {approx} 11.0, net charge +13). Altitudin S was successfully produced using a cell-free protein synthesis system coupled to split-intein mediated ligation (IV-CFPS/SIML) and exhibited a narrow but reproducible antimicrobial spectrum. Comprehensive sequence, structural, and phylogenetic analyses revealed that altitudin S is a highly divergent circular bacteriocin, defined by distinctive sequence features and physicochemical properties, including an exceptionally high isoelectric point, net charge, and low hydrophobicity. Bioprospecting across sequence databases identified homologs of altitudin S in diverse Bacillales species, all showing high sequence similarity, conserved structural features and preservation of its distinctive physicochemical profile. Genomic analysis further revealed a conserved biosynthetic gene cluster among all altitudin S homologs, notably including a gene encoding a characteristic M48-family metallopeptidase. Altogether, these findings support the classification of altitudin S and its homologs as representatives of a novel subgroup of circular bacteriocins.

microbiology↗