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首页> 外文期刊>Journal of Applied Phycology >Machine learning processing of microalgae flow cytometry readings: illustrated withChlorella vulgarisviability assays
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Machine learning processing of microalgae flow cytometry readings: illustrated withChlorella vulgarisviability assays

机译:微藻流量细胞仪读数的机器学习处理:用秃头概念测定说明

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摘要

A flow cytometry viability assay protocol is proposed and applied to model microalgaeChlorella vulgaris. The protocol relies on concomitant dual staining of the cells (fluorescein diacetate (FDA), propidium iodide (PI)) and machine learning processing of the results. Protocol development highlighted that working at 4 degrees C allows to preserve the stained sample for 15 min before analysis. Furthermore, the inclusion of an extracellular FDA washing step in the protocol improves the signal-to-noise ratio, allowing better detection of active cells. Once established, this protocol was validated against 7 test cases (controlled mixtures of active and non-viable cells). Its performances on the test cases are good: - 0.19%abs deviation on active cell quantification (processed by humans). Furthermore, a machine learning workflow, based on DBSCAN algorithm, was introduced. After a calibration procedure, the algorithm provided very satisfactorily results with - 0.10%abs deviation compared to human processing. This approach permitted to automate and speed up (15 folds) cytometry readings processing. Finally, the proposed workflow was used to assessChlorella vulgariscryostorage procedure efficiency. The impact of freezing protocol on cell viability was first investigated over 48-h storage (- 20 degrees C). Then, the most promising procedure (pelleted, - 20 degrees C) was tested over 1 month. The observed trends and values in viability loss correlate well with literature. This shows that flow cytometry is a valid tool to assess for microalgae cryopreservation protocol efficiency.
机译:提出了一种流式细胞术可存活率测定方案并应用于模型微型蛋白酶。该方案依赖于细胞的伴随双染色(荧光素二乙酸酯(FDA),碘化丙啶(PI))和结果的机器学习处理。协议开发突出显示,在4摄氏度下工作允许在分析之前保持染色样品15分钟。此外,在方案中包含细胞外FDA洗涤步骤改善了信噪比,允许更好地检测活性细胞。一旦建立,该方案验证了7个测试病例(可控活性和不活细胞的控制混合物)。其对测试病例的性能很好: - 0.19%对活性细胞定量的偏差(由人类处理)。此外,介绍了一种基于DBSCAN算法的机器学习工作流程。在校准过程之后,算法提供了非常令人满意的导致 - 与人类加工相比的0.10%的ABS偏差。这种方法允许自动化和加速(15倍)细胞读数处理。最后,拟议的工作流程用于评估vrugarla vulgariscryostorage程序效率。首先在48小时内( - 20摄氏度)研究冷冻协议对细胞活力的影响。然后,最有前途的程序(颗粒状 - 20摄氏度)在1个月内测试。活力损失中观察到的趋势和价值与文献良好相关。这表明流式细胞术是评估微藻冷冻保存方案效率的有效工具。

著录项

  • 来源
    《Journal of Applied Phycology》 |2020年第5期|共10页
  • 作者单位

    Univ Paris Saclay Ctr Europeen Biotechnol &

    Bioecon CEBB CentraleSupelec LGPM SFR Condorcet FR CNRS 3417 3 Rue Rouges Terres F-51110 Pomacle France;

    Univ Paris Saclay Ctr Europeen Biotechnol &

    Bioecon CEBB CentraleSupelec LGPM SFR Condorcet FR CNRS 3417 3 Rue Rouges Terres F-51110 Pomacle France;

    Univ Paris Saclay Ctr Europeen Biotechnol &

    Bioecon CEBB CentraleSupelec LGPM SFR Condorcet FR CNRS 3417 3 Rue Rouges Terres F-51110 Pomacle France;

    Univ Paris Saclay Ctr Europeen Biotechnol &

    Bioecon CEBB CentraleSupelec LGPM SFR Condorcet FR CNRS 3417 3 Rue Rouges Terres F-51110 Pomacle France;

    AgroParisTech URD Agro Biotechnol Ind ABI 3 Rue Rouges Terres F-51110 Pomacle France;

    Univ Paris Saclay Ctr Europeen Biotechnol &

    Bioecon CEBB CentraleSupelec LGPM SFR Condorcet FR CNRS 3417 3 Rue Rouges Terres F-51110 Pomacle France;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 植物学;
  • 关键词

    Flow cytometry; Dual staining; Machine learning; DBSCAN; Cryopreservation;

    机译:流式细胞术;双染色;机器学习;DBSCAN;冷冻保存;

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