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High-resolution microcontact printing and transfer of massive arrays of microorganisms on planar and compartmentalized nanoporous aluminium oxide

机译:在平面和分隔的纳米多孔氧化铝上进行高分辨率微接触印刷和大量微生物的转移

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摘要

Handling microorganisms in high throughput and their deployment into miniaturized platforms presents significant challenges. Contact printing can be used to create dense arrays of viable microorganisms. Such "living arrays", potentially with multiple identical replicates, are useful in the selection of improved industrial microorganisms, screening antimicrobials, clinical diagnostics, strain storage, and for research into microbial genetics. A high throughput method to print microorganisms at high density was devised, employing a microscope and a stamp with a massive array of PDMS pins. Viable bacteria (Lactobacillus plantarum, Esherichia coli), yeast (Candida albicans) and fungal spores (Aspergillus fumigatus) were deposited onto porous aluminium oxide (PAO) using arrays of pins with areas from 5 x 5 to 20 x 20 μm. Printing onto PAO with up to 8100 pins of 20 x 20 μm area with 3 replicates was achieved. Printing with up to 200 pins onto PAO culture chips (divided into 40 x 40 μm culture areas) allowed inoculation followed by effective segregation of microcolonies during outgrowth. Additionally, it was possible to print mixtures of C. albicans and spores of A. fumigatus with a degree of selectivity by capture onto a chemically modified PAO surface. High resolution printing of microorganisms within segregated compartments and on functionalized PAO surfaces has significant advantages over what is possible on semi-solid surfaces such as agar.
机译:以高通量处理微生物并将其部署到小型平台中提出了严峻的挑战。接触印刷可用于产生致密的活微生物阵列。可能具有多个相同重复的此类“活体阵列”可用于选择改良的工业微生物,筛选抗菌剂,临床诊断,菌株存储以及用于微生物遗传学研究。设计了一种高通量方法,以高密度打印微生物,方法是使用显微镜和带有大量PDMS针的压模。使用面积为5 x 5至20 x 20μm的针阵列,将活细菌(植物乳杆菌,大肠杆菌),酵母菌(白色念珠菌)和真菌孢子(烟曲霉)沉积到多孔氧化铝(PAO)上。使用多达8100个20 x 20μm面积的引脚进行3次重复打印到PAO上。用多达200个针脚打印到PAO培养芯片(分为40 x 40μm培养区域)上,可以接种,然后在生长期间有效分离微菌落。另外,可以通过捕获到化学修饰的PAO表面上,以一定程度的选择性印刷白色念珠菌和烟曲霉孢子的混合物。与在琼脂等半固体表面上相比,在分离的隔室内和功能化的PAO表面上进行高分辨率的微生物打印具有明显的优势。

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