Department of Medical Biochemistry, Faculty of Medicine, Near East University, Nicosia 99138, Cyprus.
Avram and Stella Goldstein-Goren Department of Biotechnology Engineering, Ben-Gurion University of the Negev, Be'er Sheva 84105, Israel.
Molecules. 2021 Mar 15;26(6):1620. doi: 10.3390/molecules26061620.
Quorum sensing (QS), a sophisticated system of bacterial communication that depends on population density, is employed by many pathogenic bacteria to regulate virulence. In view of the current reality of antibiotic resistance, it is expected that interfering with QS can address bacterial pathogenicity without stimulating the incidence of resistance. Thus, harnessing QS inhibitors has been considered a promising approach to overriding bacterial infections and combating antibiotic resistance that has become a major threat to public healthcare around the globe. is one of the most frequent multidrug-resistant bacteria that utilize QS to control virulence. Many natural compounds, including furanones, have demonstrated strong inhibitory effects on several pathogens via blocking or attenuating QS. While the natural furanones show no activity against , furanone C-30, a brominated derivative of natural furanone compounds, has been reported to be a potent inhibitor of the QS system of the notorious opportunistic pathogen. In the present study, we assess the molecular targets and mode of action of furanone C-30 on QS system. Our results suggest that furanone C-30 binds to LasR at the ligand-binding site but fails to establish interactions with the residues crucial for the protein's productive conformational changes and folding, thus rendering the protein dysfunctional. We also show that furanone C-30 inhibits RhlR, independent of LasR, suggesting a complex mechanism for the agent beyond what is known to date.
群体感应 (QS) 是一种依赖于种群密度的细菌通讯的复杂系统,被许多病原菌用来调节毒力。鉴于目前抗生素耐药性的现实情况,预计干扰 QS 可以解决细菌的致病性,而不会刺激耐药性的发生。因此,利用 QS 抑制剂被认为是一种有前途的方法,可以克服细菌感染和对抗抗生素耐药性,抗生素耐药性已成为全球公共卫生的主要威胁。铜绿假单胞菌是最常见的多药耐药菌之一,它利用 QS 来控制毒力。许多天然化合物,包括呋喃酮,已被证明通过阻断或削弱 QS 对几种病原体具有强烈的抑制作用。虽然天然呋喃酮对 没有活性,但天然呋喃酮化合物的溴代衍生物呋喃酮 C-30 已被报道是臭名昭著的机会性病原体 QS 系统的有效抑制剂。在本研究中,我们评估了呋喃酮 C-30 对 QS 系统的分子靶标和作用机制。我们的结果表明,呋喃酮 C-30 结合到 LasR 的配体结合位点,但未能与对蛋白质的有效构象变化和折叠至关重要的残基建立相互作用,从而使蛋白质功能失调。我们还表明,呋喃酮 C-30 独立于 LasR 抑制 RhlR,表明该药物的作用机制比目前已知的更为复杂。