TY - JOUR
T1 - Genomic insights into the probiotic potential of Bacillus velezensis D-18 for aquaculture
AU - Monzón-Atienza, Luis
AU - Lorenzo Felipe, Álvaro
AU - Cabrera-Guerlé, Nicolás
AU - Gómez-Mercader, Antonio
AU - Carlino-Costa, Camila
AU - Ramos-Vivas, José
AU - Zhang, Meiling
AU - Montero, Daniel
AU - Acosta, Félix
AU - Galindo-Villegas, Jorge
N1 - Publisher Copyright:
Copyright © 2026 Monzón-Atienza, Lorenzo Felipe, Cabrera-Guerlé, Gómez-Mercader, Carlino-Costa, Ramos-Vivas, Zhang, Montero, Acosta and Galindo-Villegas.
PY - 2026/5/18
Y1 - 2026/5/18
N2 - The identification of safe and functionally robust probiotics is a key challenge for sustainable aquaculture and requires genome-based validation of candidate strains. Here, we performed an integrative genomic characterization of Bacillus velezensis D-18, a strain previously shown to enhance disease resistance in European seabass. Whole-genome sequencing generated a draft genome of approximately 4.06 Mb containing 4, 178 protein-coding genes and 84 RNA genes. Comparative genomics confirmed the taxonomic placement of the strain within the B. velezensis lineage and its clear separation from pathogenic members of the Bacillus cereus group. Genome-wide screening detected no acquired antimicrobial resistance genes or virulence determinants, supporting the biosafety of the strain. Functional annotation revealed genetic determinants associated with quorum quenching, biofilm formation, stress tolerance, and antimicrobial activity. AntiSMASH analysis further identified seven biosynthetic gene clusters encoding bioactive metabolites including surfactin, fengycin, bacilysin, and macrolactin. In addition, molecular docking analyses suggested potential interactions between bacterial proteins and mucin glycoproteins, consistent with previously reported mucus adhesion. Together, these findings provide a genomic framework supporting the probiotic potential of B. velezensis D-18 for aquaculture applications.
AB - The identification of safe and functionally robust probiotics is a key challenge for sustainable aquaculture and requires genome-based validation of candidate strains. Here, we performed an integrative genomic characterization of Bacillus velezensis D-18, a strain previously shown to enhance disease resistance in European seabass. Whole-genome sequencing generated a draft genome of approximately 4.06 Mb containing 4, 178 protein-coding genes and 84 RNA genes. Comparative genomics confirmed the taxonomic placement of the strain within the B. velezensis lineage and its clear separation from pathogenic members of the Bacillus cereus group. Genome-wide screening detected no acquired antimicrobial resistance genes or virulence determinants, supporting the biosafety of the strain. Functional annotation revealed genetic determinants associated with quorum quenching, biofilm formation, stress tolerance, and antimicrobial activity. AntiSMASH analysis further identified seven biosynthetic gene clusters encoding bioactive metabolites including surfactin, fengycin, bacilysin, and macrolactin. In addition, molecular docking analyses suggested potential interactions between bacterial proteins and mucin glycoproteins, consistent with previously reported mucus adhesion. Together, these findings provide a genomic framework supporting the probiotic potential of B. velezensis D-18 for aquaculture applications.
KW - antimicrobial metabolite biosynthesis
KW - biosynthetic gene clusters
KW - comparative genomics
KW - host-microbe interactions
KW - mucosal adhesion
KW - quorum-quenching
UR - https://www.scopus.com/pages/publications/105041220041
U2 - 10.3389/fmicb.2026.1824441
DO - 10.3389/fmicb.2026.1824441
M3 - 文章
AN - SCOPUS:105041220041
SN - 1664-302X
VL - 17
JO - Frontiers in Microbiology
JF - Frontiers in Microbiology
M1 - 1824441
ER -