Glyphosate Bioremediation Facilitated by Serratia Ureilytica-Derived Biosurfactants Using Amazonian Biodiversity: Genomic Insights and Adsorption Dynamics | AMiner
Glyphosate Bioremediation Facilitated by Serratia Ureilytica-Derived Biosurfactants Using Amazonian Biodiversity: Genomic Insights and Adsorption Dynamics
Kleyson Willames da Silva,Emilly Cruz da Silva,Giulian César da Silva Sá,Joane de Almeida Alves,Darlisson de Alexandria Santos,Alexandre Orsato,Karoline Leite,Dante Santos da Silva,Adriano Richard Santos da Silva,Zanderluce Gomes Luis,Flavia Karoliny Araujo Dos Santos,José Augusto Pires Bitencourt,Cristina Maria Quintella,Pamela Dias Rodrigues,Doumit Camilios-Neto,Paul R Race,James E M Stach,Sidnei Cerqueira Dos Santos
Journal of xenobiotics(2026)
Univ Fed Sul & Sudeste Para Unifesspa
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摘要
The pervasive environmental dispersal of glyphosate has established this herbicide as a dominant anthropogenic xenobiotic, necessitating advanced bioremediation strategies to restore soil integrity. This study assessed the bioremediation efficacy of biosurfactants produced by Serratia ureilytica BM01-BS in glyphosate-contaminated soils, establishing their adsorption dynamics and ecotoxicological safety. The strain S. ureilytica BM01-BS gave a biosurfactant yield of 3.7 g·L−1 with promising surface properties, utilizing babassu (Attalea speciosa) waste as the sole nutrient source. Whole-Genome Sequencing and Biosynthetic Gene Cluster mining identified a Nonribosomal Peptide Synthetase cluster homologous to rhizomide-type lipopeptides responsible for biosurfactant production. Bioremediation assays in glyphosate-contaminated soils demonstrated a removal efficiency exceeding 95% in approximately 60 min, outperforming the synthetic surfactant SDS (20–30% efficiency). Kinetic and isothermal modeling suggest that the bioremediation process is governed by chemisorption, adhering to a pseudo-second-order model (R2 = 0.998) with a maximum adsorption capacity of 845 µg·kg−1. Fourier-Transform Infrared spectroscopy confirmed that the biosurfactant effectively removes glyphosate and restores the soil’s mineral integrity, as evidenced by the complete disappearance of glyphosate-associated phosphonic and carboxylic bands. Ecotoxicological assessments verified the environmental safety of the bioremediation process. These findings position the BM01-BS biosurfactant as a sustainable, biodiversity-based adjuvant for enhancing ecological resilience in glyphosate-impacted landscapes.