Terramide A:一种针对鲍曼不动杆菌的新型铁载体,具有细菌铁剥夺的机制见解。

IF 2.1 4区 医学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Hanxiang Jiang, Jiangfeng Qi, Jiwen Wang, Jiaqin Chen, Dong Feng, Junbiao Yang, Xinna Liu, Mengqun Liu, Xvzhe Zhou, Zhilong An, Yuanyuan Lu, Chun Ge, Ying Wang
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引用次数: 0

摘要

鲍曼醋酸杆菌由于其特殊的适应性,要求创新的抗微生物策略,使临床挑战不断升级。本研究首次研究了从地曲霉中分离的羟基酸铁载体Terramide A对臭名昭著的鲍曼不动杆菌的抑菌效果和分子机制。采用多学科方法,结合表型表征和机制调查,我们证明Terramide a对鲍曼假单胞菌和铜绿假单胞菌具有显著的抑制作用,这两种病原体严重依赖铁载体介导的铁获取来生存和毒力。结构表征强调Terramide A的羟肟酸部分可能支持其作为真菌铁元素的假设作用,涉及竞争性铁隔离和细菌稳态。随后,对易感菌株AB19606的多组学研究揭示了铁获取竞争导致的代谢崩溃级联反应:(1)通过氧化磷酸化(OXPHO)抑制中枢代谢和能量产生的损害;(2)逆境适应和细菌柔韧性受损;(3)铁载体生物合成和运输的代偿性过度激活,消耗代谢中间体,加剧应激;(4)协同抑制毒力决定因素,如分泌系统和生物膜的形成。这些分子紊乱转化为表型缺陷,包括群体感应、自诱导肽产生减少和形态/功能异常。在大鼠皮肤创面感染模型的体内评价进一步证明Terramide a促进创面愈合,减轻炎症,支持其抗菌作用。这些发现确立了Terramide A作为一种有前景的抗菌剂,并为利用微量营养素剥夺和代谢功能障碍的铁竞争抗菌策略提供了重要见解。然而,需要进一步的研究来优化基于铁载体的支架,阐明其机制,并评估其治疗潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Terramide A: a novel ironophore targeting Acinetobacter baumannii with mechanistic insights into bacterial iron deprivation.

Acetobacter baumannii poses escalating clinical challenges due to its exceptional adaptability, demanding innovative antimicrobial strategies. This study pioneers an investigation into the antibacterial efficacy and molecular mechanism of Terramide A, a hydroxamate siderophore isolated from Aspergillus terreus, against notorious A. baumannii. Employing a multidisciplinary approach integrating phenotypic characterization with mechanistic interrogation, we demonstrate that Terramide A exerts significant inhibitory effects against A. baumannii and P. aeruginosa, pathogens critically dependent on siderophore-mediated iron acquisition for survival and virulence. Structural characterization underlines the hydroxamate moieties of Terramide A presumably supports its hypothesized role as a fungal siderophore, involving competitive iron sequestration and bacterial homeostasis. Subsequently, multi-omics investigation of susceptible strain AB19606 delineated a metabolic collapse cascade due to iron acquisition competition: (1) impairment of central metabolism and energy production through oxidative phosphorylation (OXPHO) inhibitions; (2) compromised stress adaptation and bacterial flexibility; (3) compensatory overactivation of siderophores biosynthesis and transportation, depleting metabolic intermediates and exacerbating stress; (4) coordinated suppression of virulence determinants, such as secretory systems and biofilm formation. These molecular derangements translated into phenotypic deficits, including quorum sensing, diminished autoinducer peptides production, and morphological/functional abnormalities. In vivo evaluation in a rat skin wound infection model further demonstrated that Terramide A promotes wound healing and mitigates inflammation, supporting its antibacterial efficacy. These findings establish Terramide A as a promising antibacterial agent and provide critical insights into iron-competitive antimicrobial strategies to exploit micro-nutrient deprivation and metabolic dysfunction. However, further research is needed to optimize the siderophore-based scaffold, clarify its mechanisms, and assess therapeutic potential.

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来源期刊
Journal of Antibiotics
Journal of Antibiotics 医学-免疫学
CiteScore
6.60
自引率
3.00%
发文量
87
审稿时长
1 months
期刊介绍: The Journal of Antibiotics seeks to promote research on antibiotics and related types of biologically active substances and publishes Articles, Review Articles, Brief Communication, Correspondence and other specially commissioned reports. The Journal of Antibiotics accepts papers on biochemical, chemical, microbiological and pharmacological studies. However, studies regarding human therapy do not fall under the journal’s scope. Contributions regarding recently discovered antibiotics and biologically active microbial products are particularly encouraged. Topics of particular interest within the journal''s scope include, but are not limited to, those listed below: Discovery of new antibiotics and related types of biologically active substances Production, isolation, characterization, structural elucidation, chemical synthesis and derivatization, biological activities, mechanisms of action, and structure-activity relationships of antibiotics and related types of biologically active substances Biosynthesis, bioconversion, taxonomy and genetic studies on producing microorganisms, as well as improvement of production of antibiotics and related types of biologically active substances Novel physical, chemical, biochemical, microbiological or pharmacological methods for detection, assay, determination, structural elucidation and evaluation of antibiotics and related types of biologically active substances Newly found properties, mechanisms of action and resistance-development of antibiotics and related types of biologically active substances.
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