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优化用于检测、定量和定性胡萝卜汁中微生物的流式细胞术方法。

Optimization of the flow cytometry method of detection, quantification and qualification of microorganisms in carrot juice.

机构信息

Department of Food Technology of Plant Origin, Poznan University of Life Sciences, Wojska Polskiego 31, 60-624 Poznań, Poland.

Department of Biotechnology and Food Microbiology, Poznan University of Life Sciences, Wojska Polskiego 48, 60-627 Poznań, Poland.

出版信息

Food Chem. 2024 Dec 1;460(Pt 2):140606. doi: 10.1016/j.foodchem.2024.140606. Epub 2024 Jul 24.

Abstract

Fresh, unpasteurized carrot juice is a popular element of the everyday diet of many consumers, and as such the matter of the juice's microbial safety remains an important one. Imaging flow cytometry (FCM) allows a fast enumeration and determination of cells, as well as their further differentiation. However, carrot juice is a difficult food product to analyze with the use of FCM due to interference from autofluorescence and the presence of plant debris. In this research, we aimed to obtain an effective and repeatable protocol for the preparation of carrot juice samples for FCM analysis. Through experimental and software-based means we successfully determined a reliable protocol for the preparation of fresh, unpasteurized carrot juice, which consisted of a sequence of filtering, centrifugation, enzyme treatment, and finally the implementation of the Machine Learning protocol for the best result.

摘要

新鲜、未经巴氏消毒的胡萝卜汁是许多消费者日常饮食中很受欢迎的元素,因此,果汁的微生物安全性仍然是一个重要问题。成像流式细胞术(FCM)可以快速计数和确定细胞,以及进一步对其进行分化。然而,由于胡萝卜汁存在自发荧光和植物残渣的干扰,因此使用 FCM 分析胡萝卜汁是一项具有挑战性的工作。在这项研究中,我们旨在获得一种用于 FCM 分析的有效且可重复的制备胡萝卜汁样品的方案。通过实验和基于软件的方法,我们成功地确定了一种可靠的制备新鲜、未经巴氏消毒的胡萝卜汁的方案,该方案包括一系列过滤、离心、酶处理,最后实施机器学习方案以获得最佳结果。

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