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Published in: Clinical and Experimental Nephrology 5/2019

01-05-2019 | Original article

Identification of new urinary risk markers for urinary stones using a logistic model and multinomial logit model

Authors: Atsushi Okada, Ryosuke Ando, Kazumi Taguchi, Shuzo Hamamoto, Rei Unno, Teruaki Sugino, Yutaro Tanaka, Kentaro Mizuno, Keiichi Tozawa, Kenjiro Kohri, Takahiro Yasui

Published in: Clinical and Experimental Nephrology | Issue 5/2019

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Abstract

Background

Risk assessment for urinary stones has been mainly based on urinary biochemistry. We attempted to identify the risk factors for urinary stones by statistically analyzing urinary biochemical and inflammation-related factors.

Methods

Male participants (age, 20–79 years) who visited Nagoya City University Hospital were divided into three groups: a control group (n = 48) with no history of stones and two stone groups with calcium oxalate stone experience (first-time group, n = 22; recurring group, n = 40). Using 25-µL spot urine samples, we determined the concentrations of 18 candidate urinary proteins, using multiplex analysis on a MagPix® system.

Results

In univariate logistic regression models classifying the control and first-time groups, interleukin (IL)-1a and IL-4 were independent factors, with significantly high areas under the receiver operating characteristic curve (1.00 and 0.87, respectively, P < 0.01 for both). The multivariate models with IL-4 and granulocyte–macrophage colony-stimulating factor (GM-CSF) showed higher areas under the receiver operating characteristic curve (0.93) compared to that for the univariate model with IL-4. In the classification of control, first-time, and recurrence groups, accuracy was the highest for the multinomial logit model with IL-4, GM-CSF, IL-1b, IL-10, and urinary magnesium (concordance rate 82.6%).

Conclusions

IL-4, IL-1a, GM-CSF, IL-1b, and IL-10 were identified as urinary inflammation-related factors that could accurately distinguish control individuals from patients with urinary stones. Thus, the combined analysis of urinary biochemical data could provide an index that more clearly evaluates the risk of urinary stone formation.
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Metadata
Title
Identification of new urinary risk markers for urinary stones using a logistic model and multinomial logit model
Authors
Atsushi Okada
Ryosuke Ando
Kazumi Taguchi
Shuzo Hamamoto
Rei Unno
Teruaki Sugino
Yutaro Tanaka
Kentaro Mizuno
Keiichi Tozawa
Kenjiro Kohri
Takahiro Yasui
Publication date
01-05-2019
Publisher
Springer Singapore
Published in
Clinical and Experimental Nephrology / Issue 5/2019
Print ISSN: 1342-1751
Electronic ISSN: 1437-7799
DOI
https://doi.org/10.1007/s10157-019-01693-x

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