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Role of shear stress on biofilm formation of Candida krusei in a rotating disk system

机译:剪切应力对转盘系统中库氏假丝酵母生物膜形成的作用

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摘要

In industrial conditions, biofilms formed on pipes, joints and heat exchangers are exposed to varying shear stress conditions caused by fluid flow. In this study we examined the effect of shear, created by the tangential liquid flow in a rotating disk system (RDS) on adhesion and biofilm formation of Candida krusei. C. krusei biofilms were formed on stainless steel (AISI 304 2B food grade) while being exposed to different shear stresses (from 0 to 91 N m~(-2)) generated by two rotational speeds (350 and 800 rpm). The coupons were examined by fluorescein diacetate (FDA) at 24-h interval for 4 days. The morphology of the biofilms and the disposition of C. krusei cells in laminar and transitional flow were markedly different. The morphology of biofilm features in the transitional flow revealed the influence of hydrodynamic drag. The early stage of biofilm development resulted practically unaffected by shear stress. However, in a mature biofilm, shear stress determined the disposition of biofilm cells onto the surface. Microcolonies began to appear approximately at 48 h, at all tested shear stresses, and biofilm formation continued throughout the entire experimental period. Moreover, shape of biofilms was probably governed by the continuous applied shear stress. Finally, biofilms formed under higher shear stress differs significantly in their arrangement, as compared with those formed under lower shear conditions.
机译:在工业条件下,在管道,接头和热交换器上形成的生物膜会暴露于由流体流动引起的变化的剪切应力条件下。在这项研究中,我们检查了旋转盘系统(RDS)中切向液流产生的剪切对克鲁斯假丝酵母粘附和生物膜形成的影响。在不锈钢(AISI 304 2B食品级)上形成克鲁氏梭菌生物膜,同时受到两种转速(350和800 rpm)产生的不同剪切应力(0至91 N m〜(-2))的影响。用荧光素二乙酸酯(FDA)每隔24小时检查一次试样,持续4天。层流和过渡流中生物膜的形态和克鲁氏梭菌细胞的分布明显不同。过渡流中生物膜特征的形态揭示了流体动力阻力的影响。生物膜发展的早期阶段几乎不受剪切应力的影响。然而,在成熟的生物膜中,剪切应力决定了生物膜细胞在表面上的分布。在所有测试的剪切应力下,大约在48小时开始出现小菌落,并且在整个实验期间都持续形成生物膜。此外,生物膜的形状可能受连续施加的剪切应力控制。最后,与在较低剪切条件下形成的生物膜相比,在较高剪切应力下形成的生物膜的排列方式有很大不同。

著录项

  • 来源
    《Journal of food engineering》 |2011年第3期|p.266-271|共6页
  • 作者单位

    Departamento de Biologia, Bioquimica y Farmacia de la, Universidad National del Sur, San Juan 670, 8000 Bahfa Blanca, Argentina,Planta Piloto de Ingenieria Quimica, Universidad National del Sur, Consejo National de Investigationes Cientificas y Tecnicas de la Argentina, Camino la Carrindanga Km 7, 8000 Bahia Blanca, Argentina;

    Departamento de Biologia, Bioquimica y Farmacia de la, Universidad National del Sur, San Juan 670, 8000 Bahfa Blanca, Argentina;

    Planta Piloto de Ingenieria Quimica, Universidad National del Sur, Consejo National de Investigationes Cientificas y Tecnicas de la Argentina, Camino la Carrindanga Km 7, 8000 Bahia Blanca, Argentina;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    biofilms; yeasts; rotating disk system; shear stress; transitional flow; laminar flow; drag force;

    机译:生物膜酵母转盘系统;剪应力过渡流层流拖曳力;

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