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Computational analysis of the structural progression of human glomeruli in diabetic nephropathy

机译:糖尿病肾病中人肾小球结构进程的计算分析

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The glomerulus is the primary compartment of blood filtration in the kidney. It is a sphere of bundled, fenestrated capillaries that selectively allows solute loss. Structural damages to glomerular micro-compartments lead to physiological failures which influence filtration efficacy. The sole way to confirm glomerular structural damage in renal pathology is by examining histopathological or immunofluorescence stained needle biopsies under a light microscope. However, this method is extremely tedious and time consuming, and requires manual scoring on the number and volume of structures. Computational image analysis is the perfect tool to ease this burden. The major obstacle to development of digital histopathological quantification protocols for renal pathology is the extreme heterogeneity present within kidney tissue. Here we present an automated computational pipeline to 1) segment glomerular compartment boundaries and 2) quantify features of compartments, in healthy and diseased renal tissue. The segmentation involves a two stage process, one step for rough segmentation generation and another for refinement. Using a Naive Bayesian classifier on the resulting feature set, this method was able to distinguish pathological stage Ⅱa from Ⅲ with 0.89/0.93 sensitivity/specificity and stage Ⅱb from Ⅲ with 0.7/0.8 sensitivity/specificity, on n = 514 glomeruli taken from n = 13 human biopsies with diagnosed diabetic nephropathy, and n = 5 human renal tissues with no histological abnormalities. Our method will simplify computational partitioning of glomerular micro-compartments and subsequent quantification. We aim for our methods to ease manual labor associated with clinical diagnosis of renal disease.
机译:肾小球是肾脏中血液过滤的主要部分。它是一个有捆扎的,开窗的毛细管,选择性地允许溶质流失。肾小球微隔室的结构损伤导致生理学衰竭,影响过滤效率。确认肾病理学中肾小球结构损伤的唯一方法是在光学显微镜下检查组织病理学或免疫荧光染色的针头活检组织。但是,这种方法非常繁琐且耗时,并且需要对结构的数量和体积进行人工评分。计算图像分析是减轻这种负担的理想工具。肾病理学数字组织病理学定量方案开发的主要障碍是肾脏组织内存在的极端异质性。在这里,我们介绍了一种自动计算管道,可用于1)在健康和患病的肾脏组织中分割肾小球区室边界和2)量化区室的特征。分割涉及两个阶段的过程,一个步骤用于生成粗略的分割,另一步骤用于细化。在所得特征集上使用朴素贝叶斯分类器,该方法能够区分n = 514肾小球,从Ⅲ/ a阶段以0.89 / 0.93灵敏度/特异性和Ⅲb从Ⅲ/阶段以0.7 / 0.8灵敏度/特异性区分。 = 13例诊断为糖尿病性肾病的人体活检,n = 5例无组织学异常的人体肾脏组织。我们的方法将简化肾小球微区室的计算分区和随后的量化。我们的目标是减轻与肾脏疾病临床诊断相关的体力劳动的方法。

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