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机器学习在中轴型脊柱关节炎中的切入点。

Entry point of machine learning in axial spondyloarthritis.

机构信息

Department of Rheumatology, China Academy of Chinese Medical Sciences Guang'anmen Hospital, Beijing, China.

Department of Rheumatology, China Academy of Chinese Medical Sciences Guang'anmen Hospital, Beijing, China

出版信息

RMD Open. 2024 Feb 15;10(1):e003832. doi: 10.1136/rmdopen-2023-003832.


DOI:10.1136/rmdopen-2023-003832
PMID:38360037
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10875480/
Abstract

Axial spondyloarthritis (axSpA) is a globally prevalent and challenging autoimmune disease. Characterised by insidious onset and slow progression, the absence of specific clinical manifestations and biomarkers often leads to misdiagnosis, thereby complicating early detection and diagnosis of axSpA. Furthermore, the high heterogeneity of axSpA, its complex pathogenesis and the lack of specific drugs means that traditional classification standards and treatment guidelines struggle to meet the demands of personalised treatment. Recently, machine learning (ML) has seen rapid advancements in the medical field. By integrating large-scale data with diverse algorithms and using multidimensional data, such as patient medical records, laboratory examinations, radiological data, drug usage and molecular biology information, ML can be modelled based on real-world clinical issues. This enables the diagnosis, stratification, therapeutic efficacy prediction and prognostic evaluation of axSpA, positioning it as an emerging research topic. This study explored the application and progression of ML in the diagnosis and therapy of axSpA from five perspectives: early diagnosis, stratification, disease monitoring, drug efficacy evaluation and comorbidity prediction. This study aimed to provide a novel direction for exploring rational diagnostic and therapeutic strategies for axSpA.

摘要

中轴型脊柱关节炎(axSpA)是一种全球普遍存在且具有挑战性的自身免疫性疾病。其特点为隐匿起病和缓慢进展,缺乏特异性的临床表现和生物标志物,常导致误诊,从而使 axSpA 的早期检测和诊断变得复杂。此外,axSpA 的高度异质性、其复杂的发病机制以及缺乏特异性药物意味着传统的分类标准和治疗指南难以满足个性化治疗的需求。最近,机器学习(ML)在医学领域取得了快速进展。通过将大规模数据与多种算法相结合,并使用多维数据,如患者病历、实验室检查、影像学数据、药物使用和分子生物学信息,ML 可以基于真实世界的临床问题进行建模。这使得 axSpA 的诊断、分层、疗效预测和预后评估成为可能,使其成为一个新兴的研究课题。本研究从早期诊断、分层、疾病监测、药物疗效评估和合并症预测五个方面探讨了 ML 在 axSpA 诊断和治疗中的应用和进展。本研究旨在为探索 axSpA 的合理诊断和治疗策略提供新的方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bf2d/10875480/39c9298df802/rmdopen-2023-003832f01.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bf2d/10875480/39c9298df802/rmdopen-2023-003832f01.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bf2d/10875480/39c9298df802/rmdopen-2023-003832f01.jpg

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Entry point of machine learning in axial spondyloarthritis.

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引用本文的文献

[1]
Interpretable Machine Learning for Predicting Anterior Uveitis in Axial Spondyloarthritis.

J Clin Rheumatol. 2025-8-1

本文引用的文献

[1]
Automatic Image Segmentation and Grading Diagnosis of Sacroiliitis Associated with AS Using a Deep Convolutional Neural Network on CT Images.

J Digit Imaging. 2023-10

[2]
Deep Learning Detects Changes Indicative of Axial Spondyloarthritis at MRI of Sacroiliac Joints.

Radiology. 2023-5

[3]
Quantitative prediction of radiographic progression in patients with axial spondyloarthritis using neural network model in a real-world setting.

Arthritis Res Ther. 2023-4-20

[4]
Immune mechanism of low bone mineral density caused by ankylosing spondylitis based on bioinformatics and machine learning.

Front Genet. 2022-11-18

[5]
Novel peripheral blood diagnostic biomarkers screened by machine learning algorithms in ankylosing spondylitis.

Front Genet. 2022-11-1

[6]
Instantaneous death risk, conditional survival and optimal surgery timing in cervical fracture patients with ankylosing spondylitis: A national multicentre retrospective study.

Front Immunol. 2022

[7]
Identification of diagnostic mRNA biomarkers in whole blood for ankylosing spondylitis using WGCNA and machine learning feature selection.

Front Immunol. 2022

[8]
Development and Validation of a Machine Learning-Based Nomogram for Prediction of Ankylosing Spondylitis.

Rheumatol Ther. 2022-10

[9]
Predicting Probability of Response to Tumor Necrosis Factor Inhibitors for Individual Patients With Ankylosing Spondylitis.

JAMA Netw Open. 2022-3-1

[10]
Deep learning algorithms for magnetic resonance imaging of inflammatory sacroiliitis in axial spondyloarthritis.

Rheumatology (Oxford). 2022-10-6

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