Różne rozmieszczenie zmniejszonego metabolizmu i zaniku mózgu w padaczce skroniowej: łączenie badań PET i rezonansu magnetycznego do przewidywania wyleczenia padaczki po zabiegu operacyjnym
PubMed➕ 13.08.2026Hum Brain Mapp
The Spatial Divergence of Hypometabolism and Atrophy in Mesial Temporal Lobe Epilepsy: Combining F-FDG PET and Structural MRI for Predicting Postoperative Seizure Freedom
W skrócie
Badacze chcieli sprawdzić, czy połączenie informacji z dwóch rodzajów badań mózgu (tomografia PET i rezonans magnetyczny) wraz z danymi klinicznymi pacjenta może pomóc w przewidzeniu, czy pacjent będzie wolny od napadów padaczki po operacji. Okazało się, że użycie obu badań razem daje lepsze wyniki niż używanie każdego z nich osobno, a dodanie informacji o przebiegu choroby pacjenta jeszcze bardziej poprawiło dokładność przewidywań. Badania pokazały, że połączenie obrazów mózgu z danymi pacjenta może być pomocnym narzędziem w planowaniu operacji, ale potrzebne są dalsze testy na większych grupach pacjentów, zanim będzie można go stosować w praktyce klinicznej.
Oryginalny abstract (angielski)
Surgical failure in temporal lobe epilepsy with hippocampal sclerosis (TLE-HS) may reflect insufficient disruption of epileptogenic networks. We investigated whether integrating quantitative spatial patterns of regional atrophy and hypometabolism, along with clinical features, could provide complementary prognostic information for postoperative seizure freedom. T1-weighted MRI, F-FDG-PET, and postoperative CT scans of patients with TLE-HS were retrospectively analyzed against a validated healthy control cohort to compute age- and gender-adjusted W-score maps. Regional relationships of atrophy and hypometabolism were assessed using bivariate correlations and multiple regression analyses. Machine learning models integrating laterality of seizure onset, preoperative (extra-)temporal atrophy/hypometabolism extent, seizure frequency, focal to bilateral tonic-clonic seizures during the preceding year, and resection volume were developed to predict seizure freedom 1 year after surgery. Model interpretability was assessed via permutation-based variable importance analysis. The cohort comprised 101 patients with TLE-HS (48 left, LHS; 53 right, RHS), including 72 patients who underwent anterior temporal lobectomy. Distinct modality-specific patterns emerged: hypometabolism was significantly greater than local atrophy in left temporo-limbic cortex in TLE-LHS, while atrophy exceeded hypometabolism in bilateral occipital regions in TLE-RHS. Positive correlations between local atrophy and hypometabolism were more robust in ipsilateral temporo-limbic cortex in TLE-LHS. The combined model integrating preoperative atrophy and hypometabolism features (AUC: 0.56-0.64) significantly outperformed single-modality models (p < 0.05). Notably, incorporating clinical factors further enhanced predictive performance (AUC: 0.63-0.70) and model calibration. This comprehensive preoperative clinical-imaging model achieved robust prognostic efficacy that was not significantly improved by the addition of actual postoperative resection volumes. Structural MRI and F-FDG-PET reveal complementary facets of the epileptogenic network in TLE-HS. While integrating multimodal imaging with clinical metrics demonstrates significant synergistic potential for predicting surgical outcomes, our models remain exploratory. External validation in independent multi-center cohorts is required before translating these findings into precise clinical tools for surgical planning.
Metadane publikacji
Journal
Hum Brain Mapp
Data publikacji
01.08.2026
PMID
42592784
DOI
10.1002/hbm.70630
Autorzy
Li Y, Li F, Cao D, Lin Q, Liu P, Li W, Zhang Y, Huang X, Huang K, Li W