新型抗菌肽可培养海洋生物膜菌的生物勘探。

IF 23.7 Q1 MICROBIOLOGY
iMeta Pub Date : 2024-10-17 DOI:10.1002/imt2.244
Shen Fan, Peng Qin, Jie Lu, Shuaitao Wang, Jie Zhang, Yan Wang, Aifang Cheng, Yan Cao, Wei Ding, Weipeng Zhang
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引用次数: 0

摘要

抗菌肽(AMPs)已成为一种有效对抗人类致病菌的新型抗生素的可行来源。在这项研究中,我们构建了一个可培养的海洋生物膜细菌库,包括713株菌株及其几乎完整的基因组,并使用核糖体分析和深度学习预测amp。与以前的方法相比,核糖体分析改进了用于AMP预测的小开放阅读框(sorf)的识别和验证。在80430个表达的sorf中,341个被高概率鉴定为候选amp。与公共数据库中列出的amp相比,大多数潜在amp的氨基酸序列相似性小于40%。此外,这些抗菌肽与以前不知道产生抗菌肽的细菌群有关。因此,我们的深度学习模型获得了不熟悉的amp的特征。化学合成60个潜在的AMP序列产生54个具有抗菌活性的化合物,包括对各种耐药人类病原体的有效抑制作用。这项研究通过使用一种新的方法研究海洋生物膜微生物群,扩大了AMP化合物的范围,加速了AMP的发现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Bioprospecting of culturable marine biofilm bacteria for novel antimicrobial peptides

Bioprospecting of culturable marine biofilm bacteria for novel antimicrobial peptides

Antimicrobial peptides (AMPs) have become a viable source of novel antibiotics that are effective against human pathogenic bacteria. In this study, we construct a bank of culturable marine biofilm bacteria constituting 713 strains and their nearly complete genomes and predict AMPs using ribosome profiling and deep learning. Compared with previous approaches, ribosome profiling has improved the identification and validation of small open reading frames (sORFs) for AMP prediction. Among the 80,430 expressed sORFs, 341 are identified as candidate AMPs with high probability. Most potential AMPs have less than 40% similarity in their amino acid sequence compared to those listed in public databases. Furthermore, these AMPs are associated with bacterial groups that are not previously known to produce AMPs. Therefore, our deep learning model has acquired characteristics of unfamiliar AMPs. Chemical synthesis of 60 potential AMP sequences yields 54 compounds with antimicrobial activity, including potent inhibitory effects on various drug-resistant human pathogens. This study extends the range of AMP compounds by investigating marine biofilm microbiomes using a novel approach, accelerating AMP discovery.

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CiteScore
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