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用于增强生物膜培养的3D打印温度和剪切应力可控摇杆平台。

3D-printed temperature and shear stress-controlled rocker platform for enhanced biofilm incubation.

作者信息

Nilsson Daniel P G, Wiklund Krister, Malyshev Dmitry, Andersson Magnus

机构信息

Department of Physics, Umeå University, Linnaeus väg 24, 901 87, Umeå, Sweden.

Umeå Centre for Microbial Research (UCMR), Umeå University, 901 87, Umeå, Sweden.

出版信息

Sci Rep. 2025 Jun 4;15(1):19575. doi: 10.1038/s41598-025-04575-3.

Abstract

Growing biofilms of thermophilic (heat-loving) and psychrotrophic (cold-tolerant) bacteria pose several challenges due to specific environmental requirements. Thermophilic bacteria typically grow between 45 and 80 [Formula: see text]C, while psychrotrophic bacteria thrive between 0 and 15 [Formula: see text]C. Maintaining the precise temperature and fluid conditions required for biofilm growth can be technically challenging. To overcome these challenges, we designed the Bio-Rocker, a temperature- and shear stress-controlled rocker platform for biofilm incubation. The platform supports temperatures between - 9 and 99 [Formula: see text]C, while its digital controller can adjust the rocking speed from 1 to 99[Formula: see text]/s and set rocking angles up to ±19[Formula: see text]. This ability, together with data from analytical models and multi-physics simulations, provides control over the shear stress distribution at the growth surfaces, peaking at 2.4 N/m[Formula: see text]. Finally, we evaluated the system's ability to grow bacteria at different temperatures, shear stress, and materials by looking at the coverage and thickness of the biofilm, as well as the total biomass. A step-by-step guide, 3D CAD files, and controller software is provided for easy replication of the Bio-Rocker, using mostly 3D-printed and off-the-shelf components. We conclude that the Bio-Rocker's performance is comparable to high-end commercial systems like the Enviro-Genie (Scientific Industries) yet costs less than $350 dollars to produce.

摘要

嗜热(喜热)和嗜冷(耐寒)细菌不断生长的生物膜由于特定的环境要求而带来了诸多挑战。嗜热细菌通常在45至80摄氏度之间生长,而嗜冷细菌在0至15摄氏度之间茁壮成长。维持生物膜生长所需的精确温度和流体条件在技术上具有挑战性。为了克服这些挑战,我们设计了Bio-Rocker,这是一种用于生物膜培养的温度和剪切应力可控的摇床平台。该平台支持-9至99摄氏度的温度,其数字控制器可将摇摆速度从1调整至99转/秒,并设置高达±19度的摇摆角度。这种能力,再加上来自分析模型和多物理场模拟的数据,可对生长表面的剪切应力分布进行控制,峰值为2.4牛/平方米。最后,我们通过观察生物膜的覆盖率、厚度以及总生物量,评估了该系统在不同温度、剪切应力和材料条件下培养细菌的能力。还提供了一份分步指南、3D CAD文件和控制器软件,以便使用主要是3D打印和现成的组件轻松复制Bio-Rocker。我们得出结论,Bio-Rocker的性能与Enviro-Genie(科学工业公司)等高端商业系统相当,但生产成本不到350美元。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/74b9/12137683/68d6f8a55c6e/41598_2025_4575_Fig1_HTML.jpg

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