乳酸菌生物膜的形态和扩散变化

Biofilms Pub Date : 2020-07-01 DOI:10.5194/biofilms9-31
J. Chodorski, J. Hauth, A. Wirsen, R. Ulber
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引用次数: 0

摘要

通过其特殊的生活方式,生物膜在浮游生物生长方面比生物体有几个优势。通过表面附着并产生大量胞外聚合物(EPS),微生物具有固有的自固定性,这减少了工业应用中下游加工的支出。此外,它们对环境压力和抗生素等有毒物质更有抵抗力。这里的一个重要因素是基质扩散到生物膜中,代谢产物通过和离开生物膜;然而,人们对这些机制仍知之甚少。通过利用专门开发的扩散模型和CLSM-FRAP显微镜,可以评估乳双歧杆菌在发育过程中在活的、完全水合的生物膜中的扩散常数。有了它,可以生成扩散常数的热图,并最终生成包含生长中的生物膜的真实3D空间的扩散剖面。有了这些,就可以确定生物膜结构内与培养条件和基质变化有关的可能的扩散热点和变化,从而进一步加深我们对生物膜中的扩散及其对环境的反应的理解。该项目由DFG(UL 170/14-1)和合作研究中心(SFB)926资助;部件表面的微观尺度形态;(米科斯)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Morphological and diffusional changes in L. lactis biofilms

Through their special way of life, biofilms have several advantages over organisms in planktonic growth. By being surface-attached and producing a mass of extracellular polymeric substances (EPS), microorganisms possess inherent self-immobilization, which decreases the expenditure of downstream processing in industrial applications. Furthermore, they are more resilient against environmental stress and toxic substances, such as antibiotics. An important factor here is diffusion, of substrate into the biofilm and metabolites through and out of the biofilm; however, these mechanisms are still poorly understood. By utilizing a specially developed diffusion model and CLSM FRAP microscopy, diffusion constants in the living, fully hydrated biofilm of L. lactis during development can be assessed. With it, heatmaps of diffusional constants and finally a diffusion profile encompassing a true 3D space of the living biofilm in growth can be generated. With those, possible hotspots and changes of diffusion inside the biofilm structure with regard to changing cultivation conditions and the substratum can be identified, thus furthering our understanding of diffusion in biofilms and how they react to their environment.

The project is funded by the DFG (UL 170/14-1) and the collaborative research center (SFB) 926 on “microscale morphology of component surfaces” (MICOS).

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