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Viscoelasticity of biofilms and their recalcitrance to mechanical and chemical challenges

机译:生物膜的粘弹性及其对机械和化学挑战的抵抗力

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摘要

We summarize different studies describing mechanisms through which bacteria in a biofilm mode of growth resist mechanical and chemical challenges. Acknowledging previous microscopic work describing voids and channels in biofilms that govern a biofilms response to such challenges, we advocate a more quantitative approach that builds on the relation between structure and composition of materials with their viscoelastic properties. Biofilms possess features of both viscoelastic solids and liquids, like skin or blood, and stress relaxation of biofilms has been found to be a corollary of their structure and composition, including the EPS matrix and bacterial interactions. Review of the literature on viscoelastic properties of biofilms in ancient and modern environments as well as of infectious biofilms reveals that the viscoelastic properties of a biofilm relate with antimicrobial penetration in a biofilm. In addition, also the removal of biofilm from surfaces appears governed by the viscoelasticity of a biofilm. Herewith, it is established that the viscoelasticity of biofilms, as a corollary of structure and composition, performs a role in their protection against mechanical and chemical challenges. Pathways are discussed to make biofilms more susceptible to antimicrobials by intervening with their viscoelasticity, as a quantifiable expression of their structure and composition.
机译:我们总结了不同的研究,描述了细菌在生物膜生长模式下抵抗机械和化学挑战的机制。认识到以前的微观工作描述了控制生物膜对此类挑战的反应的生物膜中的空隙和通道,我们提倡一种更加定量的方法,该方法建立在材料的结构和组成与其粘弹性之间的关系上。生物膜具有粘弹性固体和液体(如皮肤或血液)的特征,并且发现生物膜的应力松弛是其结构和组成(包括EPS基质和细菌相互作用)的必然结果。对古代和现代环境中生物膜的粘弹性质以及传染性生物膜的文献的回顾表明,生物膜的粘弹性质与抗菌剂在生物膜中的渗透有关。另外,从表面去除生物膜似乎也受生物膜的粘弹性控制。因此,可以确定的是,生物膜的粘弹性作为结构和组成的必然结果,在其抵抗机械和化学挑战方面起着保护作用。讨论了通过干预其粘弹性来使生物膜对抗菌剂更敏感的途径,以此作为其结构和组成的定量表达。

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