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Published on: June 18, 2021
Predicting Chronic Subdural Hematoma Recurrence and Stroke Outcomes While Withholding Antiplatelet and Anticoagulant
Mario Zanaty1, Brian J Park1, Scott C Seaman1
1Department of Neurosurgery, University of Iowa, Iowa City, IA, United States.
Insights
This study identified factors predicting chronic subdural hematoma recurrence and optimal timing for resuming blood thinners. Machine learning models show promise for predicting outcomes, aiding clinical decisions in anticoagulated patients.
Area of Science:
- Neurosurgery
- Geriatric Medicine
- Pharmacology
Background:
- Aging populations and increased use of anticoagulation/antiplatelet drugs create a dilemma in managing chronic subdural hematoma (cSDH).
- Balancing the risk of cSDH recurrence against the risk of withholding blood thinners is a critical clinical challenge.
Purpose of the Study:
- Identify predictors of cSDH recurrence, thromboembolism, hospital stay, and mortality.
- Determine the optimal window for resuming antiplatelet drugs (APD) or oral anticoagulation (OAC).
Main Methods:
- Retrospective multivariate analysis of a prospectively collected database.
- Development of machine learning (ML) models for outcome prediction.
Main Results:
- Recurrence rate was 22.17%, thromboembolism 0.9%, and mortality 14.78% in 596 patients.
- Smoking, platelet dysfunction, CKD, and alcohol use predicted higher recurrence; SDH resolution was protective.
- Resuming OAC between 2 and 21 days showed the lowest recurrence and stroke risk.
- ML model achieved 93% accuracy for recurrence prediction; models for hospital stay and stroke were less successful.
Conclusions:
- Machine learning modeling is feasible for predicting cSDH outcomes.
- Further large, prospective, multicenter studies are needed to refine ML models.
- Accurate ML models will help clinicians balance cSDH recurrence risk with thromboembolic events, especially in high-risk anticoagulated patients.
Abstract:
Introduction: The aging of the western population and the increased use of oral anticoagulation (OAC) and antiplatelet drugs (APD) will result in a clinical dilemma on how to balance the recurrence risk of chronic subdural hematoma (cSDH) with the risk of withholding blood thinners. Objective: To identify features that predicts recurrence, thromboembolism (TEE), hospital stay and mortality. To identify the optimal window for resuming APD or OAC. Methods: We performed a retrospective multivariate analysis of a prospectively collected database. We then build machine learning models for outcomes prediction. Results: We identified 596 patients. The rate of recurrence was 22.17%, that of thromboembolism was 0.9% and that of mortality was 14.78%. Smoking, platelet dysfunction, CKD, and alcohol use were independent predictors of higher recurrence, while resolution of the SDH was protective. OAC use had higher odds of developing TEEs. CKD, developing a new neurological deficit or a TEEs were independent predictors of higher mortality. We find the optimal time of resuming OAC to be after 2 days but before 21 days as these patients had the lowest recurrence of bleeding associated with a low risk of stroke. The ML model achieved an accuracy of 93, precision of 0.84 and recall of 0.80 for recurrence prediction. ML models for hospital stay performed poorly (R 2 = 0.33). ML model for stroke was overfitted given the low number of events. Conclusion: ML modeling is feasible. However, large well-designed prospective multicenter studies are needed for accurate ML so that clinicians can balance the risks of recurrence with the risk of TEEs, especially for high-risk anticoagulated patients.
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