Prediction of WHO grade and methylation class of aggressive meningiomas: Extraction of diagnostic information from infrared spectroscopic data

Author:

Galli Roberta1,Lehner Franz2,Richter Sven23,Kirsche Katrin2,Meinhardt Matthias4,Juratli Tareq A2,Temme Achim,Kirsch Matthias2,Warta Rolf5,Herold-Mende Christel5,Ricklefs Franz L6,Lamszus Katrin6,Sievers Philipp78,Sahm Felix78ORCID,Eyüpoglu Ilker Y2,Uckermann Ortrud239ORCID

Affiliation:

1. Faculty of Medicine, Medical Physics and Biomedical Engineering, Technische Universität Dresden , Dresden , Germany

2. Department of Neurosurgery, Faculty of Medicine and University Hospital Carl Gustav Carus, Technische Universität Dresden , Dresden , Germany

3. Else Kroener Fresenius Center for Digital Health, Technische Universität Dresden , Dresden , Germany

4. Faculty of Medicine, Department of Pathology, Technische Universität Dresden , Dresden , Germany

5. Division of Experimental Neurosurgery, Department of Neurosurgery, Heidelberg University , Im Neuenheimer Feld 400, 69120 Heidelberg , Germany

6. Laboratory for Brain Tumor Research, Department of Neurosurgery, University Medical Center Hamburg-Eppendorf , Hamburg , Germany

7. Department of Neuropathology, University Hospital Heidelberg , Heidelberg , Germany

8. CCU Neuropathology, German Consortium for Translational Cancer Research (DKTK), German Cancer Research Center (DKFZ) , Heidelberg , Germany

9. Department of Psychiatry and Psychotherapy, Division of Medical Biology, Faculty of Medicine and University Hospital Carl Gustav Carus, Technische Universität Dresden , Dresden , Germany

Abstract

Abstract Background Infrared (IR) spectroscopy allows intraoperative, optical brain tumor diagnosis. Here, we explored it as a translational technology for the identification of aggressive meningioma types according to both, the WHO CNS grading system and the methylation classes (MC). Methods Frozen sections of 47 meningioma were examined by IR spectroscopic imaging and different classification approaches were compared to discern samples according to WHO grade or MC. Results IR spectroscopic differences were more pronounced between WHO grade 2 and 3 than between MC intermediate and MC malignant, although similar spectral ranges were affected. Aggressive types of meningioma exhibited reduced bands of carbohydrates (at 1024 cm−1) and nucleic acids (at 1080 cm−1), along with increased bands of phospholipids (at 1240 and 1450 cm−1). While linear discriminant analysis was able to discern spectra of WHO grade 2 and 3 meningiomas (AUC 0.89), it failed for MC (AUC 0.66). However, neural network classifiers were effective for classification according to both WHO grade (AUC 0.91) and MC (AUC 0.83), resulting in the correct classification of 20/23 meningiomas of the test set. Conclusions IR spectroscopy proved capable of extracting information about the malignancy of meningiomas, not only according to the WHO grade, but also for a diagnostic system based on molecular tumor characteristics. In future clinical use, physicians could assess the goodness of the classification by considering classification probabilities and cross-measurement validation. This might enhance the overall accuracy and clinical utility, reinforcing the potential of IR spectroscopy in advancing precision medicine for meningioma characterization.

Funder

Deutsche Krebshilfe

Publisher

Oxford University Press (OUP)

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