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Updated: Jul 29, 2025

Dynamic Digital Biomarkers of Motor and Cognitive Function in Parkinson's Disease
Published on: July 24, 2019
Nomogram for Early Prediction of Parkinson's Disease Based on microRNA Profiles and Clinical Variables
1Department of Public Health and Medicinal Administration, Faculty of Health Sciences, University of Macau, Macau S.A.R., China.
Background:
Few efficient and simple models for the early prediction of Parkinson's disease (PD) exists.
Objective:
To develop and validate a novel nomogram for early identification of PD by incorporating microRNA (miRNA) expression profiles and clinical indicators.
Methods:
Expression levels of blood-based miRNAs and clinical variables from 1,284 individuals were downloaded from the Parkinson's Progression Marker Initiative database on June 1, 2022. Initially, the generalized estimating equation was used to screen candidate biomarkers of PD progression in the discovery phase. Then, the elastic net model was utilized for variable selection and a logistics regression model was constructed to establish a nomogram. Additionally, the receiver operating characteristic (ROC) curves, decision curve analysis (DCA), and calibration curves were utilized to evaluate the performance of the nomogram.
Results:
An accurate and externally validated nomogram was constructed for predicting prodromal and early PD. The nomogram is easy to utilize in a clinical setting since it consists of age, gender, education level, and transcriptional score (calculated by 10 miRNA profiles). Compared with the independent clinical model or 10 miRNA panel separately, the nomogram was reliable and satisfactory because the area under the ROC curve achieved 0.72 (95% confidence interval, 0.68-0.77) and obtained a superior clinical net benefit in DCA based on external datasets. Moreover, calibration curves also revealed its excellent prediction power.
Conclusion:
The constructed nomogram has potential for large-scale early screening of PD based upon its utility and precision.
Insights
A new nomogram model incorporating microRNA (miRNA) profiles and clinical data aids in early Parkinson's disease (PD) prediction. This tool offers a precise and user-friendly method for identifying individuals at risk for PD.
Area of Science:
- Biomarkers
- Genomics
- Neurology
Background:
- Early prediction of Parkinson's disease (PD) remains challenging due to a lack of efficient and simple models.
- Existing methods often lack the precision required for timely diagnosis and intervention.
Purpose of the Study:
- To develop and validate a novel nomogram for the early identification of Parkinson's disease (PD).
- To integrate microRNA (miRNA) expression profiles with clinical indicators for improved PD prediction.
Main Methods:
- Utilized data from 1,284 individuals from the Parkinson's Progression Marker Initiative database.
- Employed generalized estimating equations for initial biomarker screening, followed by elastic net and logistic regression for nomogram construction.
- Validated nomogram performance using receiver operating characteristic (ROC) curves, decision curve analysis (DCA), and calibration curves.
Main Results:
- An accurate, externally validated nomogram was developed for predicting prodromal and early PD.
- The nomogram incorporates age, gender, education level, and a 10-miRNA transcriptional score, demonstrating ease of clinical use.
- The nomogram achieved an area under the ROC curve of 0.72, outperforming independent clinical or miRNA models and showing superior clinical utility in DCA.
Conclusions:
- The developed nomogram demonstrates significant potential for large-scale early screening of Parkinson's disease.
- Its utility and precision make it a valuable tool for clinical settings.
- Further application could lead to earlier diagnosis and management of PD.
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