Department of Structural Biology, Jacobs School of Medicine and Biomedical Sciences, University at Buffalo, SUNY, Buffalo, NY, 14203, USA.
Commun Biol. 2023 Sep 26;6(1):982. doi: 10.1038/s42003-023-05362-4.
Cationic homo-polyamino acid (CHPA) peptides containing isopeptide bonds of diamino acids have been identified from Actinomycetes strains. However, none has been reported from other bacteria. Here, we report a δ-poly-L-ornithine synthetase from Acinetobacter baumannii, which we name PosA. Surprisingly, structural analysis of the adenylation domain and biochemical assay shows L-ornithine as the substrate for PosA. The product from the enzymatic reaction was purified and identified as poly-L-ornithine composed of 7-12 amino acid units. Chemical labeling of the polymer confirmed the isopeptide linkage of δ-poly-L-ornithine. We examine the biological activity of chemically synthesized 12-mer δ-poly-L-ornithine, illustrating that the polymer may act as an anti-fungal agent. Structures of the isolated adenylation domain from PosA are presented with several diamino acids and biochemical assays identify important substrate binding residues. Structurally-guided genome-mining led to the identification of homologs with different substrate binding residues that could activate additional substrates. A homolog from Bdellovibrionales sp. shows modest activity with L-arginine but not with any diamino acids observed to be substrates for previously examined CHPA synthetases. Our study indicates the possibility that additional CHPAs may be produced by various microbes, supporting the further exploration of uncharacterized natural products.
阳离子同聚多氨基(CHPA)肽含有二氨基的肽键,已从放线菌菌株中鉴定出来。然而,在其他细菌中尚未有报道。在这里,我们报告了一种来自鲍曼不动杆菌的 δ-多聚-L-鸟氨酸合成酶,我们将其命名为 PosA。令人惊讶的是,结构分析和生化测定表明 L-鸟氨酸是 PosA 的底物。酶反应的产物被纯化并鉴定为由 7-12 个氨基酸单元组成的聚-L-鸟氨酸。聚合物的化学标记证实了 δ-聚-L-鸟氨酸的异肽键。我们研究了化学合成的 12 聚体 δ-聚-L-鸟氨酸的生物学活性,表明该聚合物可能具有抗真菌作用。我们提出了来自 PosA 的分离的腺苷酸化结构域的结构,并进行了生化测定,确定了重要的底物结合残基。基于结构的基因组挖掘导致鉴定出具有不同底物结合残基的同源物,这些残基可以激活其他底物。一种来自蛭弧菌科的同源物对 L-精氨酸表现出适度的活性,但对之前研究过的 CHPA 合成酶的任何二氨基化合物都没有活性。我们的研究表明,各种微生物可能会产生其他的 CHPA,这支持对未表征的天然产物进行进一步探索。