Scott Louis H, Mathews James C, Flematti Gavin R, Filipovska Aleksandra, Rackham Oliver
Harry Perkins Institute of Medical Research and Centre for Medical Research , The University of Western Australia , Nedlands 6009 , Australia.
School of Molecular Sciences , The University of Western Australia , Crawley 6009 , Australia.
ACS Synth Biol. 2018 Aug 17;7(8):1907-1917. doi: 10.1021/acssynbio.8b00121. Epub 2018 Jul 17.
Understanding the molecular mechanisms underlying antibiotic resistance requires concerted efforts in enzymology and medicinal chemistry. Here we describe a new synthetic biology approach to antibiotic development, where the presence of tetracycline antibiotics is linked to a life-death selection in Saccharomyces cerevisiae. This artificial genetic circuit allowed the deep mutational scanning of the tetracycline inactivating enzyme TetX, revealing key functional residues. We used both positive and negative selections to confirm the importance of different residues for TetX activity, and profiled activity hotspots for different tetracyclines to reveal substrate-specific activity determinants. We found that precise positioning of FAD and hydrophobic shielding of the tetracycline are critical for enzymatic inactivation of doxycycline. However, positioning of FAD is suboptimal in the case of anhydrotetracycline, potentially explaining its comparatively poor degradation and potential as an inhibitor for this family of enzymes. By combining artificial genetic circuits whose function can be modulated by antimicrobial resistance determinants, we establish a framework to select for the next generation of antibiotics.
了解抗生素耐药性背后的分子机制需要酶学和药物化学领域的共同努力。在此,我们描述了一种用于抗生素开发的新合成生物学方法,其中四环素类抗生素的存在与酿酒酵母中的生死选择相关联。这种人工遗传回路允许对四环素失活酶TetX进行深度突变扫描,从而揭示关键功能残基。我们使用正向和负向选择来确认不同残基对TetX活性的重要性,并分析不同四环素的活性热点以揭示底物特异性活性决定因素。我们发现FAD的精确定位和四环素的疏水屏蔽对于强力霉素的酶促失活至关重要。然而,在脱水四环素的情况下,FAD的定位并不理想,这可能解释了其相对较差的降解以及作为该酶家族抑制剂的潜力。通过组合其功能可由抗菌抗性决定因素调节的人工遗传回路,我们建立了一个筛选下一代抗生素的框架。