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Background: In recent years, neuroendoscopy has mostly replaced the microscope for transnasal pituitary adenoma (PA) surgery, where identifying cranial base anatomical landmarks is crucial. Although neuronavigation systems are commonly used in endoscopic procedures to offer locational data, traditional ones are costly, complex to operate, and need surgical pauses for two-dimensional (2D) imaging to verify positions. This makes them hard for resource-limited primary hospitals to use. Augmented reality (AR) technology, integrating three-dimensional (3D) imaging with the intraoperative endoscopic view, overcomes these drawbacks and could be a key advance in next-generation surgical navigation. This study aimed to develop and evaluate an endoscopy-AR system for localizing PAs and adjacent critical structures, assessing its practicality and accuracy in anatomical models and clinical cases to determine its efficacy in transnasal neuroendoscopic PA surgery.
Methods: Using 3D-Slicer software, we performed 3D reconstructions of key anatomical structures, including the sphenoid sinus, PA, internal carotid arteries, and optic nerves. The 3D models were integrated into the endoscopic view via a custom-developed personal computer (PC) software module, "Vrendo". After verifying registration accuracy using five 3D-printed skull models, the technology was applied in seven clinical surgeries for transnasal PA removal, with postoperative complications and outcomes recorded.
Results: The AR system provided precise localization of the optic nerves, bilateral internal carotid arteries, and tumor before opening the sellar floor, significantly improving intraoperative orientation. The average target registration error (TRE) was 2.23±0.57 mm in the 3D-printed models.
Conclusions: The integration of AR-based 3D imaging with the endoscopic perspective allows for precise localization of deep-seated anatomical structures. This novel approach to intraoperative navigation reduces the need for visual and cognitive transitions between the navigation and endoscope monitors, potentially enhancing surgical safety and efficiency while improving surgeon comfort.
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http://dx.doi.org/10.21037/gs-2025-95 | DOI Listing |
ObjectiveThis work examined performance costs for a spatial integration task when two sources of information were presented at increasing eccentricities with an augmented-reality (AR) head-mounted display (HMD).BackgroundSeveral studies have noted that different types of tasks have varying costs associated with the spatial proximity of information that requires mental integration. Additionally, prior work has found a relatively negligible role of head movements associated with performance costs.
View Article and Find Full Text PDFProg Mol Biol Transl Sci
September 2025
School of Applied Sciences and Technology, Gujarat Technological University, Gujarat, India. Electronic address:
This chapter examines advancements and future trajectories in wearable biosensing technologies, a multidisciplinary field encompassing healthcare, materials science, and information technology. Wearable biosensors are revolutionizing real-time physiological and biochemical monitoring with applications in personalized health monitoring, disease diagnosis, fitness, and therapeutic interventions. In addition to Internet of Things (IoT) and wireless connectivity technologies such as Bluetooth Low Energy (BLE) and 5G, which facilitate transparent remote monitoring and data exchange, other notable innovations such as machine learning and artificial intelligence enhance real-time processing of data, predictive analytics, and personalized healthcare solutions.
View Article and Find Full Text PDFKorean J Med Educ
September 2025
Clinical Skills Department and IMU Centre of Education, IMU University, Bukit Jalil, Malaysia.
Ergonomics
September 2025
Shenzhen Research Institute, City University of Hong Kong, Shenzhen, China.
Augmented reality (AR) integrates virtual objects in the real world, allowing users to interact intuitively with navigation information. This study systematically reviewed 13 articles on AR technology published from 2005 to 2024 through meta-analysis, comprising a total of 400 participants, to examine its effectiveness in enhancing navigation performance. Compared with traditional navigation tools, the results showed that AR technology more effectively enhances navigation performance, with the overall effect size calculated as 0.
View Article and Find Full Text PDFOrthop Traumatol Surg Res
September 2025
Service de Chirurgie Orthopédique, CHRU de Tours, France - Faculté de Médecine, Université de Tours, France.
Purpose: The potential of mixed reality to improve the accuracy of glenoid preparation pin positioning in shoulder arthroplasty has been previously reported. Another benefit of mixed reality may be its ability to assist junior surgeons in enhancing their precision during prosthetic procedures. The aim of this study was to evaluate and compare the accuracy of glenoid preparation pin positioning between a senior surgeon and a junior surgeon utilizing mixed reality guidance.
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