A Topological Gaussian Mixture Model for Bone Marrow Morphology in Leukaemia

Qiquan Wang, Anna Song, Antoniana Batsivari, Dominique Bonnet, Anthea Monod
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Abstract

Acute myeloid leukaemia (AML) is a type of blood and bone marrow cancer characterized by the proliferation of abnormal clonal haematopoietic cells in the bone marrow leading to bone marrow failure. Over the course of the disease, angiogenic factors released by leukaemic cells drastically alter the bone marrow vascular niches resulting in observable structural abnormalities. We use a technique from topological data analysis - persistent homology - to quantify the images and infer on the disease through the imaged morphological features. We find that persistent homology uncovers succinct dissimilarities between the control, early, and late stages of AML development. We then integrate persistent homology into stage-dependent Gaussian mixture models for the first time, proposing a new class of models which are applicable to persistent homology summaries and able to both infer patterns in morphological changes between different stages of progression as well as provide a basis for prediction.
白血病骨髓形态学拓扑高斯混杂模型
急性髓性白血病(AML)是一种血液和骨髓癌,其特征是骨髓中异常克隆造血细胞的增殖导致骨髓衰竭。在发病过程中,白血病细胞释放的血管生成因子会极大地改变骨髓血管壁龛,从而导致可观察到的结构异常。我们利用拓扑数据分析技术--持久同源性--对图像进行量化,并通过图像形态特征推断疾病。然后,我们首次将持久同源性整合到与阶段相关的高斯混合模型中,提出了一类适用于持久同源性总结的新模型,既能推断不同进展阶段之间的形态变化模式,又能为预测提供依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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