4.4 Review

New insights into the evaluation of peripheral nerves lesions: a survival guide for beginners

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NEURORADIOLOGY
卷 64, 期 5, 页码 875-886

出版社

SPRINGER
DOI: 10.1007/s00234-022-02916-x

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MRI; Peripheral nerve; DTI; DCE-MRI; Artificial intelligence

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This article reviews the physical basis of DTI and DCE-MRI for Peripheral Nerves (PNs) evaluation and provides practical tips for implementing these advanced sequences into clinical practice. It also summarizes the clinical applications of these techniques for PN assessment and introduces the potential use of AI algorithms for PNs evaluation.
Purpose To perform a review of the physical basis of DTI and DCE-MRI applied to Peripheral Nerves (PNs) evaluation with the aim of providing readers the main concepts and tools to acquire these types of sequences for PNs assessment. The potential added value of these advanced techniques for pre-and post-surgical PN assessment is also reviewed in diverse clinical scenarios. Finally, a brief introduction to the promising applications of Artificial Intelligence (AI) for PNs evaluation is presented. Methods We review the existing literature and analyze the latest evidence regarding DTI, DCE-MRI and AI for PNs assessment. This review is focused on a practical approach to these advanced sequences providing tips and tricks for implementing them into real clinical practice focused on imaging postprocessing and their current clinical applicability. A summary of the potential applications of AI algorithms for PNs assessment is also included. Results DTI, successfully used in central nervous system, can also be applied for PNs assessment. DCE-MRI can help evaluate PN's vascularization and integrity of Blood Nerve Barrier beyond the conventional gadolinium-enhanced MRI sequences approach. Both approaches have been tested for PN assessment including pre- and post-surgical evaluation of PNs and tumoral conditions. AI algorithms may help radiologists for PN detection, segmentation and characterization with promising initial results. Conclusion DTI, DCE-MRI are feasible tools for the assessment of PN lesions. This manuscript emphasizes the technical adjustments necessary to acquire and post-process these images. AI algorithms can also be considered as an alternative and promising choice for PN evaluation with promising results.

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