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Updated: Feb 14, 2026

Isolation and Identification of Waterborne Antibiotic-Resistant Bacteria and Molecular Characterization of their Antibiotic Resistance Genes
Published on: March 3, 2023
Pangenomic Approach for the Identification and Functional Characterization of Active GASA Antimicrobial Genes in
Florencia Nicole Bekier1,2, Mariana Conte1, Rodrigo Machado1,2
1Instituto de Agrobiotecnología y Biología Molecular (IABIMO), Unidad Ejecutora de Doble Dependencia, Consejo Nacional de investigaciones Científicas y Técnicas, Instituto Nacional de Tecnología Agropecuaria (UEDDCONICET-INTA) and Instituto de Biotecnología, Centro de Investigaciones de Ciencias Veterinarias y Agronómicas, Instituto Nacional de Tecnología Agropecuaria (INTA), Hurlingham B1686, Argentina.
Abstract:
The SNAKIN/GASA family comprises antimicrobial peptides with proven activity against bacteria and fungi, making them promising candidates for improving disease resistance in citrus rootstocks. In sixty-seven new GASA variants from a citrus germplasm collection, the presence of the characteristic 12-cysteine domain was confirmed and were classified into three subfamilies. The absolute expression levels of ten representative genes were analyzed in floral tissues, young leaves, and mature leaves from five citrus accessions with contrasting susceptibility to Xanthomonas citri. Expression profiling revealed tissue-specific patterns, with higher transcript abundance in juvenile and floral tissues of tolerant accessions. Meta-analysis of HLB-related RNA-seq datasets revealed the upregulation of specific GASA genes. Three genes from Poncirus trifoliata-PtGASA6, PtGASA8, and PtGASA10-were then selected for functional validation in Nicotiana benthamiana. Transient overexpression of PtGASA6 and PtGASA10 significantly reduced disease symptoms caused by Pseudomonas syringae and heightened the hypersensitive response to X. citri, whereas PtGASA8 showed no detectable effect. Notably, PtGASA6 enhanced the hypersensitive response by 30% more than PtGASA10, while PtGASA10 delayed necrosis by 40% more than PtGASA6, indicating distinct antimicrobial mechanisms. Together, these results identify PtGASA6 and PtGASA10 as strong candidates for breeding and biotechnological strategies aimed at improving broad-spectrum bacterial disease resistance in citrus.
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