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Biology subjects

Sauka, D. H.

Publications and source records attributed to Sauka, D. H..

3 recordsLinked to original sources

Unlocking the (Coleoptera: Tenebrionidae)-Combatting Capabilities of INTA Mo4-4 through genomic and phenotypic characterization

Bacillus thuringiensis INTA Mo4-4 was characterized phenotypically, genomically, and for insecticidal activity against Alphitobius diaperinus. Microscopy revealed rare flat rectangular parasporal crystals, and SDS-PAGE identified a ca. 67 kDa protein, similar to B. thuringiensis serovar morrisoni strain tenebrionis DSM-2803, which was proteolytically processed to a ca. 55 kDa fragment. Genomic analysis showed a 5.99 Mb genome with 99.43% completeness, clustering phylogenetically with B. cereus and B. thuringiensis. High genomic similarity was observed with B. thuringiensis svar. morrisoni BGSC 4AA1, confirmed by MLST analysis assigning it to ST-23. The genome encodes an interesting arsenal of pesticidal proteins showing significant similarity to Cry3Aa, Mpp23Aa, Xpp37Aa, Mpp5Ab, Vpb1Ad, Vpb1Ae, Vpa2Ab, Vpa2Ba, Vpa2Bb and Spp1Aa, with demonstrated toxicity against coleopteran pests. Biosynthetic gene clusters for toyoncin, fengycin, and bacillibactin were identified. Dose-response bioassays showed that INTA Mo4-4 was nearly four times more toxic to A. diaperinus larvae (LC50 136.9 {micro}g/ml) than DSM-2803 (LC50 540.5 {micro}g/ml), with the difference being statistically significant. No teratological effects were observed on Musca domestica. These findings suggest that INTA Mo4-4 is a promising candidate for the biological control of A. diaperinus.

microbiology↗

Draft Genome Sequence of Bacillus pergaminensis sp. nov. strain Bva_UNVM-123: A Promising Candidate for Bioremediation.

The Bacillus genus comprises physiologically versatile, endospore-forming bacteria widely distributed in natural environments. In this study, we report the isolation and genomic characterization of strain Bva_UNVM-123, recovered from agricultural soil in Pergamino, Argentina. Whole-genome sequencing using Illumina technology yielded a 5.1 Mbp draft genome assembled in 67 contigs with a GC content of 36%. Comparative genomic analyses using the TYGS server and digital DNA-DNA hybridization (dDDH) values supported its classification as a potentially novel species within the Bacillus sensu lato (s.l.) group. Genome annotation revealed 4,866 protein-coding genes, including multiple determinants conferring resistance to antibiotics (e.g., fosfomycin, tetracycline, beta-lactams) and toxic heavy metals (e.g., arsenic, cadmium, mercury), supporting its potential application in bioremediation. Additionally, PathogenFinder predicted a low probability of human pathogenicity (0.207), reinforcing its safety for environmental use. Functional classification based on Swiss-Prot further supported a metabolically versatile profile and revealed the presence of resistance-related categories associated with environmental adaptation. This study adds to the growing knowledge of environmental Bacillus species and their biotechnological potential.

microbiology↗

Bacillus toyonensis biovar Thuringiensis: an overlooked entomopathogen?

Horizontal gene transfer (HGT) significantly influences prokaryotic genome evolution. Bacillus cereus and Bacillus thuringiensis are nearly identical at the chromosomal level, except for B. thuringiensis producing parasporal crystals. The genes for these crystal proteins (e.g., cry1A), along with other encoded insecticidal proteins (e.g., vip3A), are located on megaplasmids and can be horizontally transferred. Recently, Sauka et al. (2022) reported a Bacillus toyonensis strain that produces parasporal crystals with dual insecticidal activity. This strain was classified as Bacillus toyonensis biovar Thuringiensis (NCBI: txid2923195) following Carroll et al.s (2020) nomenclature. Misclassified B. toyonensis strains, previously identified as B. thuringiensis (e.g., strain MC28), encode cry and cyt genes toxic to lepidopteran and dipteran insects. Advances in genome sequencing and bioinformatics tools now reduce misidentifications, enabling accurate reclassification in databases like GenBank. These findings highlight the need for genome-based taxonomic reassessment within the Bacillus cereus group and clarify the chromosomal placement of crystal-forming B. toyonensis strains.

evolutionary biology↗