Lichstrahl Michael S, Kahlert Lukas, Li Rongfeng, Zandi Trevor A, Yang Jerry, Townsend Craig A
Department of Chemistry, The Johns Hopkins University 3400 N Charles St Baltimore MD USA
Novartis Institutes for Biomedical Research Cambridge MA USA.
Chem Sci. 2023 Mar 20;14(14):3923-3931. doi: 10.1039/d2sc06893a. eCollection 2023 Apr 5.
The -sulfonated monobactams harbor considerable potential to combat emerging bacterial infections that are problematic to treat due to their metallo-β-lactamase mediated resistance against conventional β-lactam antibiotics. Herein, we report a divergent synthesis of C3-substituted 2,3-diaminopropionates featuring an array of small functional groups and examine their potential as alternative precursors during monobactam biosynthesis in a mutant strain () of that is deficient in the supply of this native precursor. assays revealed high diastereoselectivity, as well as a substrate tolerance by the terminal adenylation domain of the non-ribosomal peptide synthetase (NRPS) SulM toward the majority of synthetic analogs. Chemical complementation of this mutant yielded a fluorinated, bioactive monobactam through fermentation as confirmed by a combination of spectrometric data and microbiological assays. This study demonstrates site-specific functionalization of a clinically important natural product and sets in place a platform for further strain improvements and engineered NRPS-biosynthesis of non-native congeners.
磺化单环β-内酰胺类药物在对抗新出现的细菌感染方面具有巨大潜力,这些感染由于金属β-内酰胺酶介导的对传统β-内酰胺抗生素的耐药性而难以治疗。在此,我们报道了一种具有一系列小官能团的C3取代2,3-二氨基丙酸酯的发散合成方法,并研究了它们作为天然前体供应不足的突变菌株()单环β-内酰胺生物合成过程中替代前体的潜力。检测显示出高非对映选择性,以及非核糖体肽合成酶(NRPS)SulM的末端腺苷化结构域对大多数合成类似物的底物耐受性。通过光谱数据和微生物检测相结合证实,该突变体的化学互补通过发酵产生了一种氟化的生物活性单环β-内酰胺。这项研究展示了一种临床重要天然产物的位点特异性功能化,并为进一步的菌株改良和非天然同系物的工程化NRPS生物合成奠定了平台。