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Differential Effects of Heated Perfusate on Morphology, Viability, and Dissemination of Staphylococcus epidermidis Biofilms

机译:加热灌注产物对形态,生存能力和传播葡萄球菌癫痫的差异影响

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The biofilm phenotype offers bacterial communities protection from environmental factors, as evidenced by its role in the viability, persistence, and virulence of cells under conditions in which flow is present, such as in riverbeds, industrial piping networks, and the human circulatory system. Here, we examined the hypothesis that temperature—an environmental factor that affects the growth of the Gram-positive bacterium Staphylococcus epidermidis —controls, through dual mechanisms, persistence of this bacterial strain in a shear environment characteristic of the human circulatory system. We demonstrated that temperature and antibiotics impact the surface-adhered biofilm and material disseminated downstream in different ways. Specifically, by means of three-dimensional (3D) confocal and scanning electron microscopy, an increase in surface-adhered biofilm heterogeneity was observed with increasing temperature. Additionally, we found a 4-log decrease in cell viability at the biofilm surface as the perfusate temperature was increased from 37°C to 50°C. Finally, the viability of cell-containing fragments that were disseminated from the substrate was assessed by downstream sampling, culture, and optical density measurement. We found that although temperature decreased the viability of the surface-adhered biofilm, the downstream material remained viable. And yet, in the presence of antibiotics, the growth of disseminated material was nearly completely inhibited, even though the addition of antibiotics had no significant impact on the viability of the surface-adhered biofilm. The mechanism involves both biofilm structural damage, as quantified by morphology of debrided material, and reduced cell viability, as quantified by assay of bacterial cells present in the surface-adherent biofilm and in the downstream effluent. The results potentially identify parameter ranges in which elevated temperature could augment current antibiotic treatment regimens.IMPORTANCE Bacterial biofilms are a leading cause of medical device infections. Staphylococcus epidermidis is commonly responsible for these types of infections. With increasing occurrences of antibacterial resistance, there has been a new push to explore treatment options that augment traditional antibiotic therapies. Here, we show how thermal treatment can be applied to both degrade bacterial biofilms on substrates and impede the proliferation of cells that detach from them. Understanding the response of both surface-adhered and dispersed bacterial cells under thermal stress conditions is a foundational step toward the development of an in situ treatment/remediation method for biofilm growth in medical devices; such an application could use oscillatory flow of heated fluid in a catheter as an adjuvant to antibiotic treatment. The work furthermore provides new insight into the viability of disseminated biofilm material.
机译:生物膜表型提供从环境因素的细菌社区保护,这在其在存在流动的条件下的可行性,持续性和毒力中的作用,例如在河床,工业管道网络和人的循环系统中的作用。在这里,我们研究了温度 - 一种环境因素,其通过双重机制,通过双重机制,在人循环系统的剪切环境中持续这种细菌菌株持续存在这种细菌菌株的生长的假设。我们证明,温度和抗生素会以不同方式施加表面粘附的生物膜和物质在下游散发。具体地,借助于三维(3D)共焦和扫描电子显微镜,随着温度的增加,观察到表面粘附的生物膜异质性的增加。另外,由于将灌注液温度从37℃升高至50℃,我们发现在生物膜表面的细胞活力的4次目录降低。最后,通过下游取样,培养物和光学密度测量评估从基材上脱散的细胞片段的活力。我们发现,尽管温度降低了表面粘附的生物膜的活力,但下游材料保持可行。然而,在存在抗生素的情况下,即使添加抗生素对表面粘附的生物膜的活力没有显着影响,散发材料的生长几乎完全抑制。该机制涉及Biofilm结构损伤,通过脱击材料的形态量化,并且通过测定的表面粘附生物膜和下游流出物中的细菌细胞来量化。结果潜在地识别参数范围,其中升高的温度可以增强电流抗生素治疗方案。分析细菌生物膜是医疗器械感染的主要原因。葡萄球菌椎板病通常对这些类型的感染负担。随着抗菌性抗性的增加,探索了增强传统抗生素疗法的治疗选择的新推动。在这里,我们展示了热处理如何应用于底物上的降解细菌生物膜,并阻碍脱离它们的细胞的增殖。理解热应激条件下表面粘附和分散的细菌细胞的响应是促进用于在医疗器械中生物膜生长的原位处理/修复方法的基础上的基础步骤;这种应用可以使用导管中的加热流体的振荡流作为辅助治疗的佐剂。该工作还提供了新的洞察播散的生物膜材料的可行性。

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