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最大似然估计菌落形成单位。

Maximum likelihood estimators for colony-forming units.

机构信息

Department of Physics, Emory University, Atlanta, Georgia, USA.

Initiative in Theory and Modeling of Living Systems, Emory University, Atlanta, Georgia, USA.

出版信息

Microbiol Spectr. 2024 Sep 3;12(9):e0394623. doi: 10.1128/spectrum.03946-23. Epub 2024 Jul 23.

Abstract

Measuring the abundance of microbes in a sample is a common procedure with a long history, but best practices are not well-conserved across microbiological fields. Serial dilution methods are commonly used to dilute bacterial cultures to produce countable numbers of colonies, and from these counts, to infer bacterial concentrations measured in colony-forming units (CFUs). The most common methods to generate data for CFU point estimates involve plating bacteria on (or in) a solid growth medium and counting their resulting colonies or counting the number of tubes at a given dilution that have growth. Traditionally, these types of data have been analyzed separately using different analytic methods. Here, we build a direct correspondence between these approaches, which allows one to extend the use of the most probable number method from the liquid tubes experiments, for which it was developed, to the growth plates by viewing colony-sized patches of a plate as equivalent to individual tubes. We also discuss how to combine measurements taken at different dilutions, and we review several ways of analyzing colony counts, including the Poisson and truncated Poisson methods. We test all point estimate methods computationally using simulated data. For all methods, we discuss their relevant error bounds, assumptions, strengths, and weaknesses. We provide an online calculator for these estimators.Estimation of the number of microbes in a sample is an important problem with a long history. Yet common practices, such as combining results from different measurements, remain sub-optimal. We provide a comparison of methods for estimating abundance of microbes and detail a mapping between different methods, which allows to extend their range of applicability. This mapping enables higher precision estimates of colony-forming units (CFUs) using the same data already collected for traditional CFU estimation methods. Furthermore, we provide recommendations for how to combine measurements of colony counts taken across dilutions, correcting several misconceptions in the literature.

摘要

测量样本中微生物的丰度是一种常见的、历史悠久的操作,但在微生物学领域,最佳实践并没有得到很好的保存。系列稀释法常用于稀释细菌培养物,以产生可计数的菌落,然后根据这些菌落计数推断出以菌落形成单位(CFU)测量的细菌浓度。生成 CFU 点估计数据的最常见方法涉及将细菌涂在(或在)固体生长培养基上并计数其产生的菌落,或计数给定稀释度下有生长的管数。传统上,这些类型的数据使用不同的分析方法分别进行分析。在这里,我们建立了这些方法之间的直接对应关系,这使得可以将最可能数法从最初为液体管实验开发的方法扩展到生长板,将板上的菌落大小斑块视为与单个管等效。我们还讨论了如何组合在不同稀释度下进行的测量,并且我们回顾了几种分析菌落计数的方法,包括泊松和截断泊松方法。我们使用模拟数据计算所有点估计方法的性能。对于所有方法,我们讨论了它们的相关误差界限、假设、优势和劣势。我们为这些估计器提供了在线计算器。

估计样本中微生物的数量是一个具有悠久历史的重要问题。然而,常见的做法,例如结合来自不同测量结果的信息,仍然不是最优的。我们提供了一种用于估计微生物丰度的方法比较,并详细说明了不同方法之间的映射关系,这使得可以扩展它们的适用范围。这种映射关系使得可以使用已经为传统 CFU 估计方法收集的数据来更精确地估计菌落形成单位(CFU)。此外,我们还提供了如何组合跨稀释度进行的菌落计数测量的建议,纠正了文献中的几个误解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8bbb/11371269/3abe0be4b20d/spectrum.03946-23.f001.jpg

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