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Background: The sphenoid sinus is an important access point for trans-sphenoidal surgeries, but variations in its pneumatization may complicate surgical safety. Deep learning can be used to identify these anatomical variations.
Methods: We developed a convolutional neural network (CNN) model for the automated prediction of sphenoid sinus pneumatization patterns in computed tomography (CT) scans. This model was tested on mid-sagittal CT images. Two radiologists labeled all CT images into four pneumatization patterns: Conchal (type I), presellar (type II), sellar (type III), and postsellar (type IV). We then augmented the training set to address the limited size and imbalanced nature of the data.
Results: The initial dataset included 249 CT images, divided into training (n = 174) and test (n = 75) datasets. The training dataset was augmented to 378 images. Following augmentation, the overall diagnostic accuracy of the model improved from 76.71% to 84%, with an area under the curve (AUC) of 0.84, indicating very good diagnostic performance. Subgroup analysis showed excellent results for type IV, with the highest AUC of 0.93, perfect sensitivity (100%), and an F1-score of 0.94. The model also performed robustly for type I, achieving an accuracy of 97.33% and high specificity (99%). These metrics highlight the model's potential for reliable clinical application.
Conclusion: The proposed CNN model demonstrates very good diagnostic accuracy in identifying various sphenoid sinus pneumatization patterns, particularly excelling in type IV, which is crucial for endoscopic sinus surgery due to its higher risk of surgical complications. By assisting radiologists and surgeons, this model enhances the safety of transsphenoidal surgery, highlighting its value, novelty, and applicability in clinical settings.
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http://dx.doi.org/10.2174/0115734056363158250429101521 | DOI Listing |
Cureus
August 2025
Department of Neurosurgery, The University of Osaka Graduate School of Medicine, Suita, JPN.
Fungal cerebral aneurysms, particularly those resulting from direct invasion by fungal sinusitis, are rare and often fatal when involving the cavernous segment of the internal carotid artery (ICA). We present a case of a ruptured fungal ICA aneurysm caused by sinusitis, successfully treated with parent artery occlusion (PAO). In this case, an 80-year-old woman presented with right ptosis, facial pain, and cranial nerve III, IV, and VI palsies.
View Article and Find Full Text PDFAuris Nasus Larynx
September 2025
Department of Otolaryngology-Head & Neck Surgery, Okayama University Graduate School of Medicine, Dentistry and Pharmaceutical Sciences, Okayama, Japan. Electronic address:
Tidsskr Nor Laegeforen
September 2025
Avdeling for bildediagnostikk, Sykehuset Østfold.
Background: Though rare, sphenoid sinusitis can cause abducens nerve palsy because of the anatomical proximity of the sphenoid sinus and the abducens nerve.
Case Presentation: A male patient in his late seventies presented with double vision and left abducens nerve palsy. Imaging revealed sinus opacifications later identified as due to Scedosporium apiospermum, a rare fungal pathogen.
Cureus
August 2025
Department of Neurology, National Hospital Organization Disaster Medical Center, Tokyo, JPN.
Bacterial meningitis and infectious cavernous sinus thrombosis (CST) are both life-threatening central nervous system infections, often caused by sinusitis. While cerebrovascular complications are well-recognized in bacterial meningitis, their association with CST is rare. A 69-year-old man presented with a 19-day history of headache, followed by diplopia.
View Article and Find Full Text PDFCureus
August 2025
Department of Biology, Federal University of Pernambuco, Recife, BRA.
This systematic review aims to describe the anatomical variations of the internal carotid artery (ICA) and their implications for clinical practice and surgical planning. The ICA, a major vessel supplying the brain, exhibits considerable anatomical variability that can impact the safety and efficacy of procedures involving the neck region and skull base. A comprehensive search of eight databases from 2015 to 2024 yielded 379 studies, of which eight met the inclusion criteria.
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