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Updated: Jul 16, 2025

Visual and Microscopic Evaluation of Streptomyces Developmental Mutants
Published on: September 12, 2018
Three genes controlling streptomycin susceptibility in Agrobacterium fabrum
Robyn E Howarth1, Curtis M Pattillo1, Joel S Griffitts1
1Department of Microbiology and Molecular Biology, Brigham Young University , Provo, Utah, USA.
Abstract:
Streptomycin (Sm) is a commonly used antibiotic for its efficacy against diverse bacteria. The plant pathogen Agrobacterium fabrum is a model for studying pathogenesis and interkingdom gene transfer. Streptomycin-resistant variants of A. fabrum are commonly employed in genetic analyses, yet mechanisms of resistance and susceptibility to streptomycin in this organism have not previously been investigated. We observe that resistance to a high concentration of streptomycin arises at high frequency in A. fabrum, and we attribute this trait to the presence of a chromosomal gene (strB) encoding a putative aminoglycoside phosphotransferase. We show how strB, along with rpsL (encoding ribosomal protein S12) and rsmG (encoding a 16S rRNA methyltransferase), modulates streptomycin sensitivity in A. fabrum. IMPORTANCE The plant pathogen Agrobacterium fabrum is a widely used model bacterium for studying biofilms, bacterial motility, pathogenesis, and gene transfer from bacteria to plants. Streptomycin (Sm) is an aminoglycoside antibiotic known for its broad efficacy against gram-negative bacteria. A. fabrum exhibits endogenous resistance to somewhat high levels of streptomycin, but the mechanism underlying this resistance has not been elucidated. Here, we demonstrate that this resistance is caused by a chromosomally encoded streptomycin-inactivating enzyme, StrB, that has not been previously characterized in A. fabrum. Furthermore, we show how the genes rsmG, rpsL, and strB jointly modulate streptomycin susceptibility in A. fabrum.
Insights
High-frequency streptomycin resistance in Agrobacterium fabrum is linked to the strB gene, encoding an aminoglycoside phosphotransferase. This study elucidates the mechanisms of streptomycin resistance and susceptibility in this important plant pathogen.
Area of Science:
- Microbiology
- Molecular Biology
- Plant Pathology
Background:
- Streptomycin (Sm) is a critical antibiotic for treating bacterial infections.
- Agrobacterium fabrum is a model organism for studying bacterial pathogenesis and gene transfer.
- Mechanisms of streptomycin resistance and susceptibility in A. fabrum were previously uncharacterized.
Purpose of the Study:
- To investigate the genetic basis of streptomycin resistance in Agrobacterium fabrum.
- To identify the genes modulating streptomycin sensitivity in A. fabrum.
- To understand the role of specific genes in streptomycin resistance mechanisms.
Main Methods:
- Isolation and characterization of streptomycin-resistant A. fabrum variants.
- Identification of the chromosomal gene strB encoding a putative aminoglycoside phosphotransferase.
- Analysis of the roles of strB, rpsL, and rsmG in modulating streptomycin sensitivity.
Main Results:
- High-frequency streptomycin resistance in A. fabrum is attributed to the chromosomal gene strB.
- The strB gene encodes a streptomycin-inactivating enzyme, StrB.
- Genes strB, rpsL, and rsmG collectively modulate streptomycin susceptibility in A. fabrum.
Conclusions:
- A novel streptomycin-inactivating enzyme, StrB, contributes to endogenous streptomycin resistance in A. fabrum.
- The interplay between strB, rpsL, and rsmG is crucial for streptomycin sensitivity regulation.
- This research provides insights into antibiotic resistance mechanisms in a key plant pathogen.
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