Future Industries Institute, University of South Australia, Adelaide, Australia.
School of Biomedical Engineering, University of Technology Sydney, Australia.
Lab Chip. 2019 Jun 7;19(11):1961-1970. doi: 10.1039/c9lc00152b. Epub 2019 May 17.
Matrix-assisted laser desorption/ionisation time-of-flight mass spectrometry (MALDI-TOF MS), in combination with Biotyper software, is a rapid, high-throughput, and accurate method for the identification of microbes. Microbial outbreaks in a brewery present a major risk for companies as it can lead to cost-intensive recalls and damage to the brand reputation. MALDI-TOF MS has been implemented into a brewery setting for quality control practices and the identification of beer spoilage microorganisms. However, the applicability of this approach is hindered by compatibility issues associated with mixed cultures, requiring the use of time-consuming selective cultivation techniques prior to identification. We propose a novel, low-cost approach based on the combination of inertial microfluidics and secondary flows in a spiral microchannel for high-throughput and efficient separation of yeasts (Saccharomyces pastorianus and Saccharomyces cerevisiae) from beer spoilage microorganisms (Lactobacillus brevis and Pediococcus damnosus). Flow rates were optimised using S. pastorianus and L. brevis, leading to separation of more than 90% of the L. brevis cells from yeast. The microorganisms were then identified to the species level using the MALDI-TOF MS platform using standard sample preparation protocols. This study shows the high-throughput and rapid separation of spoilage microorganisms (0.3-3 μm) from background yeast (5 μm) from beer, subsequent identification using MALDI Biotyper, and the potential applicability of the approach for biological control in the brewing industry.
基质辅助激光解吸电离飞行时间质谱(MALDI-TOF MS)结合 Biotyper 软件,是一种快速、高通量、准确的微生物鉴定方法。啤酒厂的微生物爆发对公司来说是一个重大风险,因为它可能导致成本高昂的召回和品牌声誉受损。MALDI-TOF MS 已被引入啤酒厂的质量控制实践和啤酒变质微生物的鉴定中。然而,这种方法的适用性受到与混合培养物相关的兼容性问题的阻碍,在鉴定之前需要使用耗时的选择性培养技术。我们提出了一种新颖的、低成本的方法,该方法基于惯性微流控和螺旋微通道中的二次流的结合,用于从啤酒变质微生物(短乳杆菌和多形汉逊酵母)中高通量和高效地分离酵母(巴氏酵母和酿酒酵母)。使用 S. pastorianus 和 L. brevis 优化了流速,导致超过 90%的 L. brevis 细胞从酵母中分离出来。然后,使用 MALDI-TOF MS 平台和标准样品制备方案,将微生物鉴定到种水平。这项研究展示了从啤酒中快速高通量地分离变质微生物(0.3-3 μm)和背景酵母(5 μm)的方法,随后使用 MALDI Biotyper 进行鉴定,以及该方法在酿造行业中进行生物控制的潜在适用性。