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Recent advances in the biosynthetic pathway and structural modification of gentamicin
Xiaotang Chen1, Ruifen Zou1, Bao-Chen Qian1
1College of Medical Engineering, Jining Medical University, Jining, China.
Abstract:
As a member of the first-generation aminoglycoside antibiotics, gentamicin was once widely used in clinical practice. However, due to its drug resistance, toxicity, and side effects and the development of novel antibiotics, gentamicin has gradually faded from the spotlight. However, in recent years, aminoglycoside antibiotics have regained significant attention from the medical community as a critical therapeutic option for severe infections caused by multidrug-resistant bacteria. This review provides a detailed overview of the complete biosynthetic pathway of gentamicin and its recent advances, including the biosynthesis of the core structure 2-deoxystreptamine (2-DOS), the biosynthesis of the first pseudotrisaccharide intermediate gentamicin A2, the key branch point intermediate X2, and its parallel pathways. The methylation network, the transamination-epimerization network, and the di-deoxygenation processes within the gentamicin biosynthetic system are highlighted. Recent progress in the engineering of the gentamicin biosynthetic pathway and the development of novel gentamicin derivatives as new aminoglycoside antibiotics are also summarized. Finally, this review offers perspectives on the future research directions and uses of gentamicin. In summary, a detailed dissection of the complex biosynthetic network of gentamicin is provided to lay the groundwork for targeted and random structural modifications of gentamicin using combinatorial biosynthetic and high-throughput screening technologies to develop new aminoglycoside antibiotics with lower host toxicity and greater activity against resistant strains.
Insights
Gentamicin biosynthesis pathways are detailed, offering insights for engineering new derivatives. This research aims to develop improved aminoglycoside antibiotics against multidrug-resistant bacteria with reduced toxicity.
Area of Science:
- Microbiology
- Biochemistry
- Pharmacology
Background:
- Gentamicin, a first-generation aminoglycoside antibiotic, has seen renewed interest for treating multidrug-resistant bacterial infections.
- Despite previous decline due to resistance and toxicity, gentamicin's role in severe infections is re-emerging.
- Understanding gentamicin's complex biosynthesis is crucial for developing next-generation antibiotics.
Purpose of the Study:
- To provide a comprehensive review of the gentamicin biosynthetic pathway.
- To highlight recent advances in pathway engineering and the development of novel gentamicin derivatives.
- To explore future research directions for gentamicin and related aminoglycoside antibiotics.
Main Methods:
- Detailed overview of the complete gentamicin biosynthetic pathway.
- Focus on key intermediates like 2-deoxystreptamine (2-DOS) and gentamicin A2.
- Examination of methylation, transamination-epimerization, and di-deoxygenation networks.
Main Results:
- Elucidation of the core structure biosynthesis, intermediate pathways, and specific enzymatic processes.
- Summary of recent progress in engineering the gentamicin biosynthetic pathway.
- Overview of novel gentamicin derivatives developed as potential new antibiotics.
Conclusions:
- The detailed understanding of gentamicin biosynthesis provides a foundation for structural modifications.
- Combinatorial biosynthesis and high-throughput screening can yield new aminoglycoside antibiotics.
- Future efforts should focus on reducing host toxicity and enhancing activity against resistant strains.
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