Department of Chemical Engineering and Materials Science, University of Minnesota - Twin Cities, Minneapolis, Minnesota 55455, United States.
ACS Synth Biol. 2021 Oct 15;10(10):2689-2704. doi: 10.1021/acssynbio.1c00314. Epub 2021 Sep 10.
Developing potent antimicrobials, and platforms for their study and engineering, is critical as antibiotic resistance grows. A high-throughput method to quantify antimicrobial peptide and protein (AMP) activity across a broad continuum would be powerful to elucidate sequence-activity landscapes and identify potent mutants. Yet the complexity of antimicrobial activity has largely constrained the scope and mechanistic bandwidth of AMP variant analysis. We developed a platform to efficiently perform sequence-activity mapping of AMPs depletion (SAMP-Dep): a bacterial host culture is transformed with an AMP mutant library, induced to intracellularly express AMPs, grown under selective pressure, and deep sequenced to quantify mutant depletion. The slope of mutant growth rate versus induction level indicates potency. Using SAMP-Dep, we mapped the sequence-activity landscape of 170 000 mutants of oncocin, a proline-rich AMP, for intracellular activity against . Clonal validation supported the platform's sensitivity and accuracy. The mapped landscape revealed an extended oncocin pharmacophore contrary to earlier structural studies, clarified the C-terminus role in internalization, identified functional epistasis, and guided focused, successful synthetic peptide library design, yielding a mutant with 2-fold enhancement in both intracellular and extracellular activity. The efficiency of SAMP-Dep poises the platform to transform AMP engineering, characterization, and discovery.
开发有效的抗菌药物,以及研究和工程化这些抗菌药物的平台,在抗生素耐药性不断增长的情况下至关重要。高通量方法可以全面量化抗菌肽和蛋白质 (AMP) 的活性,这对于阐明序列-活性图谱和识别有效突变体非常有用。然而,抗菌活性的复杂性在很大程度上限制了 AMP 变体分析的范围和机制带宽。我们开发了一种平台,可以有效地对 AMP 耗竭(SAMP-Dep)进行序列-活性作图:将 AMP 突变文库转化到细菌宿主培养物中,诱导其在细胞内表达 AMP,在选择压力下生长,并进行深度测序以定量突变体的耗竭。突变体生长速率与诱导水平的斜率表明其效力。使用 SAMP-Dep,我们针对 170000 个突变体的序列-活性图谱进行了作图,这些突变体是一种富含脯氨酸的 AMP,用于针对 的细胞内活性。克隆验证支持了该平台的灵敏度和准确性。所绘制的图谱揭示了一个扩展的 oncocin 药效基团,与早期的结构研究相反,阐明了 C 末端在内化中的作用,确定了功能上位性,并指导了有针对性的、成功的合成肽文库设计,产生了一种在细胞内和细胞外活性都提高了 2 倍的突变体。SAMP-Dep 的效率使该平台能够改变 AMP 工程、表征和发现。