Dencichine attenuates the virulence of Fusobacterium nucleatum by targeting hydrogen sulfide-producing enzyme.

IF 2.3 4区 生物学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
International Microbiology Pub Date : 2025-02-01 Epub Date: 2024-05-25 DOI:10.1007/s10123-024-00539-1
Minyu Wang, Weihua Chu
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Abstract

Oral opportunistic pathogen Fusobacterium nucleatum can participate in various disease processes through the metabolite hydrogen sulfide, such as halitosis and colorectal cancer. The object of this study is to identify inhibitor capable of suppressing Fn1220, which is the principal hydrogen sulfide-producing enzyme in F. nucleatum. Through this inhibition, we aim to reduce the hydrogen sulfide production of F. nucleatum, consequently diminishing its virulence. Employing molecular docking techniques for inhibitor screening, we identified dencichine as the monomeric compound from Chinese medicine exhibiting the lowest binding energy to Fn1220 among a set of 27,045 candidates, and evaluated in vitro the ability of dencichine to inhibit hydrogen sulfide production using bismuth chloride method. Additionally, we investigated its impact on key virulence factors, including biofilm formation, hemolysis, and adhesion factors of F. nucleatum, using the crystalline violet method, sheep blood method, and RT-qPCR, respectively. Furthermore, we assessed the influence of dencichine on the lifespan of Caenorhabditis elegans. Results showed that dencichine was a suitable inhibitor of the Fn1220 of F. nucleatum, which significantly inhibited the production of virulence factors, e.g., biofilm, hemolysin, FadA, and Fap2 of F. nucleatum and improved the survival of C. elegans. We successfully identified the inhibitor of the enzyme Fn1220, dencichine, which inhibited the production of hydrogen sulfide and attenuated the virulence of F. nucleatum and holds promise as a potential therapeutic avenue for addressing oral diseases, e.g., halitosis in the future.

Abstract Image

Dencichine 通过靶向硫化氢产生酶来减弱核酸镰刀菌的毒力。
口腔机会性致病菌核酸镰刀菌可通过代谢产物硫化氢参与多种疾病过程,如口臭和大肠癌。本研究的目的是找出能够抑制 Fn1220 的抑制剂。通过这种抑制,我们旨在减少核酸痢疾杆菌硫化氢的产生,从而降低其毒性。利用分子对接技术进行抑制剂筛选,我们从 27,045 个候选化合物中发现了与 Fn1220 结合能最低的中药单体化合物--灯盏花碱,并利用氯化铋法在体外评估了灯盏花碱抑制硫化氢产生的能力。此外,我们还分别采用结晶紫法、绵羊血法和 RT-qPCR 法研究了其对核酸痢疾杆菌生物膜形成、溶血和粘附因子等关键毒力因子的影响。此外,我们还评估了丹参碱对秀丽隐杆线虫寿命的影响。结果表明,丹参碱是一种合适的核酸酵母菌 Fn1220 抑制剂,能显著抑制核酸酵母菌生物膜、溶血素、FadA 和 Fap2 等毒力因子的产生,提高秀丽隐杆线虫的存活率。我们成功鉴定出了 Fn1220 酶的抑制剂--dencichine,它可抑制硫化氢的产生并减弱 F. nucleatum 的毒力,有望成为未来解决口腔疾病(如口臭)的潜在治疗途径。
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来源期刊
International Microbiology
International Microbiology 生物-生物工程与应用微生物
CiteScore
5.50
自引率
3.20%
发文量
67
审稿时长
3 months
期刊介绍: International Microbiology publishes information on basic and applied microbiology for a worldwide readership. The journal publishes articles and short reviews based on original research, articles about microbiologists and their work and questions related to the history and sociology of this science. Also offered are perspectives, opinion, book reviews and editorials. A distinguishing feature of International Microbiology is its broadening of the term microbiology to include eukaryotic microorganisms.
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