biofilm

生物膜
  • 文章类型: Journal Article
    Given the significant impact of biofilms on human health and material corrosion, research in this field urgently needs more accessible techniques to facilitate the testing of new control agents and general understanding of biofilm biology. Microtiter plates offer a convenient format for standardized evaluations, including high-throughput assays of alternative treatments and molecular modulators. This study introduces a novel Biofilm Analysis Software (BAS) for quantifying biofilms from microtiter plate images. We focused on early biofilm growth stages and compared BAS quantification to common techniques: direct turbidity measurement, intrinsic fluorescence detection linked to pyoverdine production, and standard crystal violet staining which enables image analysis and optical density measurement. We also assessed their sensitivity for detecting subtle growth effects caused by cyclic AMP and gentamicin. Our results show that BAS image analysis is at least as sensitive as the standard method of spectrophotometrically quantifying the crystal violet retained by biofilms. Furthermore, we demonstrated that bacteria adhered after short incubations (from 10 min to 4 h), isolated from planktonic populations by a simple rinse, can be monitored until their growth is detectable by intrinsic fluorescence, BAS analysis, or resolubilized crystal violet. These procedures are widely accessible for many laboratories, including those with limited resources, as they do not require a spectrophotometer or other specialized equipment.
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  • 文章类型: Journal Article
    The biofilm-mediated implant infections pose a huge threat to human health. It is urgent to explore strategies to reverse this situation. Herein, we design 3-amino-1,2,4-triazole-5-thiol (ATT)-modified gold nanoclusters (AGNCs) to realize biofilm-targeting and near-infrared (NIR)-II light-responsive antibiofilm therapy. The AGNCs can interact with the bacterial extracellular DNA through the formation of hydrogen bonds between the amine groups on the ATT and the hydroxyl groups on the DNA. The AGNCs show photothermal properties even at a low power density (0.5 W/cm2) for a short-time (5 min) irradiation, making them highly effective in eradicating the biofilm with a dispersion rate up to 90 %. In vivo infected catheter implantation model demonstrates an exceptional high ability of the AGNCs to eradicate approximately 90 % of the bacteria encased within the biofilms. Moreover, the AGNCs show no detectable toxicity or systemic effects in mice. Our study suggests the great potential of the AGNCs for long-term prevention and elimination of the biofilm-mediated infections.
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  • 文章类型: Journal Article
    Biofilm-associated infections remain a tremendous obstacle to the treatment of microbial infections globally. However, the poor penetrability to a dense extracellular polymeric substance matrix of traditional antibacterial agents limits their antibiofilm activity. Here, we show that nanoaggregates formed by self-assembly of amphiphilic borneol-guanidine-based cationic polymers (BGNx-n) possess strong antibacterial activity and can eliminate mature Staphylococcus aureus (S. aureus) biofilms. The introduction of the guanidine moiety improves the hydrophilicity and membrane penetrability of BGNx-n. The self-assembled nanoaggregates with highly localized positive charges are expected to enhance their interaction with negatively charged bacteria and biofilms. Furthermore, nanoaggregates dissociate on the surface of biofilms into smaller BGNx-n polymers, which enhances their ability to penetrate biofilms. BGNx-n nanoaggregates that exhibit superior antibacterial activity have the minimum inhibitory concentration (MIC) of 62.5 μg·mL-1 against S. aureus and eradicate mature biofilms at 4 × MIC with negligible hemolysis. Taken together, this size-variable self-assembly system offers a promising strategy for the development of effective antibiofilm agents.
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  • 文章类型: Journal Article
    UNASSIGNED: The formation of biofilms, characterized by cell aggregation and extracellular polymeric substance (EPS) production, is a common feature of periprosthetic joint infections (PJI).
    UNASSIGNED: The current study aimed to investigate the development of biofilm features in vitro within less than 3 weeks by Staphylococcus aureus isolated from PJIs.
    UNASSIGNED: Biofilms were grown on sandblasted titanium discs, and fluorescence spectroscopy and microscopy were used to observe biofilm maturation for 21 days.
    UNASSIGNED: DNA mass decreased initially, then increased from day 5 onwards, and decreased again after day 7. The proportion of living to dead bacteria oscillated until day 7 and increased at day 10 for strain A and day 14 for strain B. EPS mass decreased initially and then continuously increased. Multilayer bacterial organization was observed at day 7.
    UNASSIGNED: Cell aggregation occurred during the first week, followed by EPS production in the second week, and characteristic biofilm features were observed within 1 to 2 weeks.
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  • 文章类型: Journal Article
    口腔微生物组的多样性和微妙的平衡有助于口腔健康,其破坏导致口腔和全身性疾病。牙膏包括传统添加剂,如十二烷基硫酸钠(SLS)以及源自益生菌的新型postbiotics,它们通常用于保持口腔卫生和健康的口腔。然而,口腔微生物群对这些治疗的反应仍然知之甚少。在这项研究中,我们系统地研究了SLS的影响,和含有postbiotics的牙膏(此后,后生物牙膏)跨越三个系统:生物膜,动物模型,和临床人群。发现SLS可以杀死预制生物膜(成熟生物膜)和发育中的生物膜(未成熟生物膜)中的细菌,并通过增加病原菌的数量来扰乱微生物群落结构。SLS还破坏了牙周组织,促进牙槽骨吸收,并增强炎症反应水平的程度。后生物牙膏有利于细菌稳态和两种生物膜在体外的正常发育,并通过调节口腔微生态减轻体内牙周炎和牙龈炎。重要的是,当组合使用时,后生物牙膏减轻了SLS的不利影响,在体外和体内。总的来说,这项研究的发现描述了牙膏成分对口腔微生物区系的影响,并强调了通过考虑多个方面来全面了解口腔微生物生态学的必要性。
    The diversity and delicate balance of the oral microbiome contribute to oral health, with its disruption leading to oral and systemic diseases. Toothpaste includes elements like traditional additives such as sodium lauryl sulfate (SLS) as well as novel postbiotics derived from probiotics, which are commonly employed for maintaining oral hygiene and a healthy oral cavity. However, the response of the oral microbiota to these treatments remains poorly understood. In this study, we systematically investigated the impact of SLS, and toothpaste containing postbiotics (hereafter, postbiotic toothpaste) across three systems: biofilms, animal models, and clinical populations. SLS was found to kill bacteria in both preformed biofilms (mature biofilms) and developing biofilms (immature biofilms), and disturbed the microbial community structure by increasing the number of pathogenic bacteria. SLS also destroyed periodontal tissue, promoted alveolar bone resorption, and enhanced the extent of inflammatory response level. The postbiotic toothpaste favored bacterial homeostasis and the normal development of the two types of biofilms in vitro, and attenuated periodontitis and gingivitis in vivo via modulation of oral microecology. Importantly, the postbiotic toothpaste mitigated the adverse effects of SLS when used in combination, both in vitro and in vivo. Overall, the findings of this study describe the impact of toothpaste components on oral microflora and stress the necessity for obtaining a comprehensive understanding of oral microbial ecology by considering multiple aspects.
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  • 文章类型: Journal Article
    肠聚集性大肠杆菌(EAEC)是世界范围内腹泻的主要原因。EAEC高度粘附于培养的上皮细胞并产生生物膜。粘附和生物膜形成都依赖于聚集粘附菌毛(AAF)的存在。我们比较了五种AAF类型中每一种的两种EAEC菌株的生物膜形成。我们发现AAF类型与产生的生物膜水平无关。由于EAEC生物膜的组成尚未完全描述,我们对EAEC生物膜进行染色以确定它们是否含有蛋白质,碳水化合物糖蛋白,和/或eDNA,发现EAEC生物膜包含所有三种细胞外成分。接下来,我们评估了蛋白酶K处理介导的生长或成熟的EAEC生物膜的变化,DNase,或碳水化合物裂解剂靶向基质的不同组分。对于超过一半的测试菌株,用蛋白酶K处理的生长生物膜降低了生物膜染色。相比之下,尽管偏高碘酸钠仅以定量方式改变了两个菌株的生物膜,用偏高碘酸钠处理的生物膜图像显示EAEC更分散。总的来说,我们发现EAEC菌株对治疗反应的变异性,没有一种治疗方法对所有菌株产生生物膜变化。最后,一旦形成,成熟的EAEC生物膜比在那些相同处理存在下生长的生物膜对处理更具抗性。
    Enteroaggregative E. coli (EAEC) is a major cause of diarrhea worldwide. EAEC are highly adherent to cultured epithelial cells and make biofilms. Both adherence and biofilm formation rely on the presence of aggregative adherence fimbriae (AAF). We compared biofilm formation from two EAEC strains of each of the five AAF types. We found that AAF type did not correlate with the level of biofilm produced. Because the composition of the EAEC biofilm has not been fully described, we stained EAEC biofilms to determine if they contained protein, carbohydrate glycoproteins, and/or eDNA and found that EAEC biofilms contained all three extracellular components. Next, we assessed the changes to the growing or mature EAEC biofilm mediated by treatment with proteinase K, DNase, or a carbohydrate cleavage agent to target the different components of the matrix. Growing biofilms treated with proteinase K had decreased biofilm staining for more than half of the strains tested. In contrast, although sodium metaperiodate only altered the biofilm in a quantitative way for two strains, images of biofilms treated with sodium metaperiodate showed that the EAEC were more spread out. Overall, we found variability in the response of the EAEC strains to the treatments, with no one treatment producing a biofilm change for all strains. Finally, once formed, mature EAEC biofilms were more resistant to treatment than biofilms grown in the presence of those same treatments.
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  • 文章类型: Journal Article
    水传播病原体总是对公众健康构成相当大的威胁。群体感应(QS)系统有助于协调细菌的生长和代谢。然而,细菌通过群体感应对各种消毒技术的反应和调节机制尚不清楚。这项研究研究了氯化和臭氧化对铜绿假单胞菌QS信号缺乏突变体的生物膜和浮游细胞的灭活作用。细胞计数和活力评估表明,氯和臭氧的联合消毒对于在暴露后10分钟内灭活浮游铜绿假单胞菌最有效。此外,微流控芯片培养表明,喹诺酮类药物信号的分泌增强了生物膜的消毒抗性。消毒暴露显着改变了野生型菌株和QS信号缺乏突变体的基因表达。此外,QS系统触发了多层基因表达程序,作为对消毒剂暴露的响应性保护,包括氧化应激,核糖体合成,和细菌的营养吸收。这些见解扩大了我们对细菌QS对消毒的反应的理解,有希望的潜在策略,以实现有效的消毒过程。
    Waterborne pathogens invariably present considerable threats to public health. The quorum sensing (QS) system is instrumental in coordinating bacterial growth and metabolisms. However, the responses and regulatory mechanisms of bacteria to various disinfection technologies through quorum sensing are still unclear. This study examines the inactivation effect of chlorination and ozonation on biofilms and planktonic cells of QS signaling-deficient mutants of Pseudomonas aeruginosa. Cell counting and viability assessment revealed that the combined disinfection of chlorine and ozone was the most effective for inactivating planktonic P. aeruginosa within 10 min of exposure. Additionally, microfluidic chip culture demonstrated that the secretion of quinolone signals escalated biofilms\' disinfection resistance. Disinfection exposure significantly altered the gene expression of wild-type strains and QS signaling-deficient mutants. Moreover, the QS system triggered multilayered gene expression programs as a responsive protection to disinfectant exposure, including oxidative stress, ribosome synthesis, and the nutrient absorption of bacteria. These insights broaden our understanding of bacterial QS in response to disinfection, promising potential strategies toward efficient disinfection processes.
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  • 文章类型: Journal Article
    细菌生物膜与抗生素抗性相关并且占所有细菌感染的约80%。在这项研究中,我们探索了用于对抗细菌及其生物膜的新型纳米材料。采用绿色合成策略合成了青蒿素纳米铜(ANC),和它的形状,尺寸,结构,元素组成,化学价,zeta电位,使用透射电子显微镜对电导率进行表征,X射线衍射仪,X射线光电子能谱,zeta电位,和动态光散射(DLS)。结果表明,以壳聚糖为改性保护剂,L-抗坏血酸为绿色还原剂,利用液相化学还原法成功合成了ANC。使用DLS评价ANC的稳定性。结果表明,不同浓度的ANC在储存7天后的粒径与原始溶液相当,PDI无明显变化(P>0.05)。ANC对大肠杆菌(E.大肠杆菌)和金黄色葡萄球菌(S.金黄色葡萄球菌)通过圆盘扩散和肉汤稀释方法测定。结果表明,ANC抑制并杀死大肠杆菌和金黄色葡萄球菌。使用结晶紫染色研究了ANC对细菌生物膜的影响,扫描电子显微镜,激光共聚焦显微镜,和定量PCR。结果表明,ANC处理能够破坏细菌生物膜并下调大肠杆菌中生物膜和毒力相关基因(HlyA,gyra,和F17)和金黄色葡萄球菌(cna,PVL,ClfA,和femB)。绿色合成的ANC具有优异的抗生物膜性质,并且预期表现出抗菌和抗生物膜性质。
    Bacterial biofilms are associated with antibiotic resistance and account for approximately 80% of all bacterial infections. In this study, we explored novel nanomaterials for combating bacteria and their biofilms. Artemisinin nano-copper (ANC) was synthesised using a green synthesis strategy, and its shape, size, structure, elemental composition, chemical valence, zeta potential, and conductivity were characterised using transmission electron microscopy, X-ray diffractometer, X-ray photoelectron spectroscopy, zeta potential, and dynamic light scattering (DLS). The results showed that ANC was successfully synthesised utilizing a liquid-phase chemical reduction method using chitosan as a modified protectant and l-ascorbic acid as a green reducing agent. The stability of ANC was evaluated using DLS. The results showed that the particle size of the ANC at different concentrations was comparable to that of the original solution after 7 days of storage, and there was no significant change in PDI (P > 0.05). The antibacterial effects of ANC on Escherichia coli (E. coli) and Staphylococcus aureus (S. aureus) were determined by Disk diffusion and broth dilution methods. The results demonstrated that ANC inhibited and killed E. coli and S. aureus. The effect of ANC on bacterial biofilms was investigated using Crystal Violet staining, scanning electron microscopy, laser confocal microscope, and quantitative PCR. The results showed that ANC treatment was able to destroy bacterial biofilms and downregulate biofilm- and virulence-related genes in E. coli (HlyA, gyrA, and F17) and S. aureus (cna, PVL, ClfA, and femB). Green-synthesised ANC possesses excellent anti-biofilm properties and is expected to exhibit antibacterial and anti-biofilm properties.
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  • 文章类型: Journal Article
    粪肠球菌是一种革兰氏阳性细菌,常见于根尖周炎患者的根尖病变中。它在根管中的生物膜形成与难治性根尖周炎的发展密切相关,因为它增加了对牙髓治疗的抵抗力。噬菌体疗法最近被认为是控制各种牙周病原体的有效治疗策略。我们先前证明了肠球菌噬菌体vB_EfaS_HEf13(噬菌体HEf13)对临床分离的粪肠球菌菌株的杀菌能力。这里,我们调查了噬菌体HEf13是否影响临床分离的粪肠球菌的生物膜形成和预先形成的生物膜,以及它与牙髓治疗的联合作用,包括氯己定(CHX)和青霉素。噬菌体HEf13以剂量和时间依赖性方式抑制粪肠球菌的生物膜形成和破坏预先形成的生物膜。有趣的是,噬菌体HEf13破坏粪肠球菌生物膜胞外多糖(EPS),已知是细菌生物膜的主要组成部分。此外,噬菌体HEf13与CHX或青霉素联合治疗比单独治疗更有效地抑制生物膜形成和破坏预先形成的生物膜。共聚焦激光扫描显微镜检查表明,组合处理对预形成的生物膜破坏的这些加性效应是由生物膜的厚度分布和生物量的相对增强的减少介导的。总的来说,我们的结果表明,噬菌体HEf13对粪肠球菌生物膜的作用是由其EPS降解特性介导的,并且其与牙髓治疗的组合更有效地抑制粪肠球菌生物膜,这意味着噬菌体HEf13有潜力用作针对粪肠球菌感染的联合疗法。
    Enterococcus faecalis is a Gram-positive bacterium that is frequently found in the periapical lesion of patients with apical periodontitis. Its biofilm formation in root canal is closely related to the development of refractory apical periodontitis by providing increased resistance to endodontic treatments. Phage therapy has recently been considered as an efficient therapeutic strategy in controlling various periodontal pathogens. We previously demonstrated the bactericidal capacities of Enterococcus phage vB_EfaS_HEf13 (phage HEf13) against clinically-isolated E. faecalis strains. Here, we investigated whether phage HEf13 affects biofilm formation and pre-formed biofilm of clinically-isolated E. faecalis, and its combinatory effect with endodontic treatments, including chlorhexidine (CHX) and penicillin. The phage HEf13 inhibited biofilm formation and disrupted pre-formed biofilms of E. faecalis in a dose- and time-dependent manner. Interestingly, phage HEf13 destroyed E. faecalis biofilm exopolysaccharide (EPS), which is known to be a major component of bacterial biofilm. Furthermore, combined treatment of phage HEf13 with CHX or penicillin more potently inhibited biofilm formation and disrupted pre-formed biofilm than either treatment alone. Confocal laser scanning microscopic examination demonstrated that these additive effects of the combination treatments on disruption of pre-formed biofilm are mediated by relatively enhanced reduction in thickness distribution and biomass of biofilm. Collectively, our results suggest that the effect of phage HEf13 on E. faecalis biofilm is mediated by its EPS-degrading property, and its combination with endodontic treatments more potently suppresses E. faecalis biofilm, implying that phage HEf13 has potential to be used as a combination therapy against E. faecalis infections.
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  • 文章类型: Journal Article
    一些天然存在的化合物,以其抗菌活性而闻名,已被用作食品添加剂。然而,它们在治疗由抗生素耐药性细菌引起的感染方面的功效尚未得到充分探索。快速增长的分枝杆菌(RGM),非结核分枝杆菌(NTM)中的一类,在各种环境中普遍存在,并可能导致人类感染。RGM中抗菌素耐药性的上升是一个记录在案的问题。在这项研究中,我们报道了四种特定的天然化合物有效地抑制了三种关键的RGM病原体的生长和生物膜的形成。M.偶然性,和M.chelonae。我们筛选了12种天然化合物对RGM的抗生素抗性临床菌株的有效性。从最有效到最不有效的四种化合物显示出显着的抑制作用:反式肉桂醛,香芹酚,龙胆乙醛,和间苯三酚醛.在计时动力学分析中,龙胆醛和间苯三酚醛具有杀菌活性,而反式肉桂醛和香芹酚具有抑菌作用。在1×最小抑制浓度下,相对于对照,这些化合物显著降低了所有三种RGM物种的生物膜形成至2.9%至20.5%的水平.棋盘分析表明这四种化合物与抗生素如阿米卡星之间的协同相互作用,克拉霉素,和利奈唑胺.在这12种复合抗生素组合中,香芹酚-利奈唑胺成对,香芹酚-阿米卡星,和龙胆醛-克拉霉素对多种RGM菌株表现出最大的协同作用。此外,另外两种化合物柠檬醛和香叶醇显示出与所有三种测试抗生素的协同作用。时间消逝测定进一步证实了棋盘测试中鉴定的大多数协同组合。我们的研究表明这些精油和酚醛的潜力,无论是单独还是与抗生素联合使用,治疗RGM感染。此外,这项工作阐明了这些天然化合物在环境修复中的应用,以减轻细菌的持久性,从而控制传染病。
    目的:快速生长的分枝杆菌(RGM)中抗菌药物耐药性的出现对公众健康构成了重大威胁。这项研究调查了天然化合物对抗抗生素耐药性RGM引起的感染的潜力,包括脓肿分枝杆菌,M.偶然性,和M.chelonae。我们确定了四种特定的天然化合物,它们对抗生素抗性临床菌株具有令人印象深刻的抑制作用。这些化合物不仅抑制生长和生物膜形成,而且还表现出与抗生素对抗关键RGM病原体的协同相互作用。我们的发现强调了RGM感染的替代治疗策略以及这些天然化合物在减轻微生物持久性和控制传染病方面的潜在环境应用。
    Some naturally occurring compounds, known for their antimicrobial activities, have been employed as food additives. However, their efficacy in treating infections caused by antibiotic-resistant bacteria is yet to be fully explored. Rapidly growing mycobacteria (RGM), a category within nontuberculous mycobacteria (NTM), are prevalent in various environments and can lead to infections in humans. The rise of antimicrobial resistance within RGM is a documented concern. In this study, we reported that four specific natural compounds effectively inhibited the growth and biofilm formation of three key RGM pathogens M. abscessus, M. fortuitum, and M. chelonae. We screened 12 natural compounds for their effectiveness against antibiotic-resistant clinical strains of RGM. Four compounds showed significant inhibitory effects from the most effective to least: trans-cinnamaldehyde, carvacrol, gentisaldehyde, and phloroglucinaldehyde. In the analysis of time-killing kinetics, gentisaldehyde and phloroglucinaldehyde displayed bactericidal activity while trans-cinnamaldehyde and carvacrol exhibited bacteriostatic effects. At 1× minimal inhibition concentrations, these compounds significantly reduced biofilm formation in all three RGM species to levels between 2.9% and 20.5% relative to controls. Checkerboard assays indicated synergistic interactions between these four compounds and antibiotics such as amikacin, clarithromycin, and linezolid. Of these 12 compound-antibiotic combinations, the pairs of carvacrol-linezolid, carvacrol-amikacin, and gentisaldehyde-clarithromycin demonstrated the most synergy against multiple RGM strains. Moreover, two other compounds citral and geraniol showed synergism with all three test antibiotics. Time-killing assays further confirmed most of synergistic combinations identified in the checkerboard tests. Our research suggests the potential of these essential oils and phenolic aldehydes, both individually and in combination with antibiotics, in treating RGM infections. In addition, this work illuminates applications of these natural compounds in environmental remediation to mitigate bacterial persistence for the control of infectious diseases.
    OBJECTIVE: The emergence of antimicrobial resistance within rapidly growing mycobacteria (RGM) poses a significant threat to public health. This study investigates the potential of naturally occurring compounds to combat infections caused by antibiotic-resistant RGM including M. abscessus, M. fortuitum, and M. chelonae. We identified four specific natural compounds showing impressive inhibitory effects against antibiotic-resistant clinical strains. These compounds not only inhibited the growth and biofilm formation but also exhibited synergistic interactions with antibiotics against key RGM pathogens. Our findings highlight the alternative treatment strategies for RGM infections and potential environmental applications of these natural compounds in mitigating microbial persistence and controlling infectious diseases.
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