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使用 FeatureCounter 对 Apc 小鼠中的腺瘤进行半自动定量分析。

A semi-automated technique for adenoma quantification in the Apc mouse using FeatureCounter.

机构信息

Malaghan Institute of Medical Research, Wellington, New Zealand.

出版信息

Sci Rep. 2020 Feb 20;10(1):3064. doi: 10.1038/s41598-020-60020-7.

Abstract

Colorectal cancer is a major contributor to death and disease worldwide. The Apc mouse is a widely used model of intestinal neoplasia, as it carries a mutation also found in human colorectal cancers. However, the method most commonly used to quantify tumour burden in these mice is manual adenoma counting, which is time consuming and poorly suited to standardization across different laboratories. We describe a method to produce suitable photographs of the small intestine of Apc mice, process them with an ImageJ macro, FeatureCounter, which automatically locates image features potentially corresponding to adenomas, and a machine learning pipeline to identify and quantify them. Compared to a manual method, the specificity (or True Negative Rate, TNR) and sensitivity (or True Positive Rate, TPR) of this method in detecting adenomas are similarly high at about 80% and 87%, respectively. Importantly, total adenoma area measures derived from the automatically-called tumours were just as capable of distinguishing high-burden from low-burden mice as those established manually. Overall, our strategy is quicker, helps control experimenter bias, and yields a greater wealth of information about each tumour, thus providing a convenient route to getting consistent and reliable results from a study.

摘要

结直肠癌是全球范围内导致死亡和疾病的主要原因之一。Apc 小鼠是一种广泛应用于肠道肿瘤模型的动物,因为它携带了一种在人类结直肠癌中也发现的突变。然而,目前最常用于量化这些小鼠肿瘤负担的方法是手动腺瘤计数,这种方法既耗时又不适合不同实验室之间的标准化。我们描述了一种方法,可以对 Apc 小鼠的小肠进行适当的拍照,然后使用 ImageJ 宏 FeatureCounter 对其进行处理,该宏可以自动定位可能对应于腺瘤的图像特征,以及一个机器学习管道来识别和量化这些特征。与手动方法相比,这种方法在检测腺瘤方面的特异性(即真阴性率,TNR)和敏感性(即真阳性率,TPR)都相似,分别约为 80%和 87%。重要的是,从自动检测到的肿瘤中得出的总腺瘤面积测量值与手动确定的肿瘤一样能够区分高负担和低负担的小鼠。总的来说,我们的策略更快,有助于控制实验者的偏见,并为每个肿瘤提供更多的信息,从而为从研究中获得一致和可靠的结果提供了一种便捷的途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4a5f/7033248/74ca13688f57/41598_2020_60020_Fig1_HTML.jpg

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