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Megan Johnson; Brian Davis; Gerard Guillot; Emily Porta-Miller; Jennifer Brueckner-Collins – Anatomical Sciences Education, 2025
A deep understanding of pelvic floor anatomy requires a three-dimensional visualization of the spatial relationships among pelvic neurovasculature, soft tissue structures, and bony landmarks, which are highly complex and difficult to comprehend solely through traditional teaching methods such as didactic lectures and anatomical dissection. This…
Descriptors: Teaching Methods, Computer Peripherals, Printing, Anatomy
Christian Myles; Laura Gorman; James F. X. Jones – Anatomical Sciences Education, 2025
Textbook anatomy depiction of the hepatobiliary tree is present in 55%-62% of the population. Misidentification of hepatobiliary variants can lead to bile duct injuries in cholecystectomies. A better understanding of variants has been cited as a key area for improvement in anatomy education. The aim of this study was to compare the effectiveness…
Descriptors: Computer Peripherals, Printing, Science Instruction, Teaching Methods
Yang, Jack X.; DeYoung, Veronica; Xue, Yuanxin; Nehru, Amit; Hildebrand, Alexandra; Brewer-Deluce, Danielle; Wainman, Bruce – Anatomical Sciences Education, 2023
Three-dimensional (3D) scanning and printing technology has allowed for the production of anatomical replicas at virtually any size. But what size optimizes the educational potential of 3D printing models? This study systematically investigates the effect of model size on nominal anatomy learning. The study population of 380 undergraduate…
Descriptors: Manipulative Materials, Anatomy, Computer Peripherals, Undergraduate Students
Grad, Piotr; Przeklasa-Bierowiec, Anna M.; Malinowski, Krzysztof P.; Witowski, Jan; Proniewska, Klaudia; Taton, Grzegorz – Anatomical Sciences Education, 2023
Tooth anatomy is fundamental knowledge used in everyday dental practice to reconstruct the occlusal surface during cavity fillings. The main objective of this project was to evaluate the suitability of two types of anatomical tooth reference models used to support reconstruction of the occlusal anatomy of the teeth: (1) a three-dimensional…
Descriptors: Dentistry, Medical Education, Graduate Students, Anatomy
Harmon, Derek J.; Klein, Barbie A.; Im, Cecilia; Romero, Dylan – Anatomical Sciences Education, 2022
Three-dimensional (3D) printing technology has become more affordable, accessible, and relevant in healthcare, however, the knowledge of transforming medical images to physical prints still requires some level of training. Anatomy educators can play a pivotal role in introducing learners to 3D printing due to the spatial context inherent to…
Descriptors: Computer Peripherals, Printing, Anatomy, Spatial Ability
Jinga, Maria-Ruxandra; Lee, Rachel B. Y.; Chan, Kai Lok; Marway, Prabhvir S.; Nandapalan, Krishan; Rhode, Kawal; Kui, Christopher; Lee, Matthew – Anatomical Sciences Education, 2023
Three-dimensional (3D) segmentation, a process involving digitally marking anatomical structures on cross-sectional images such as computed tomography (CT), and 3D printing (3DP) are being increasingly utilized in medical education. Exposure to this technology within medical schools and hospitals remains limited in the United Kingdom. M3dicube UK,…
Descriptors: Computer Simulation, Computer Peripherals, Printing, Anatomy
Yang, Mao-Yi; Tseng, Hsien-Chun; Liu, Chiung-Hui; Tsai, Shao-Yu; Chen, Jyun-Hsiung; Chu, Yin-Hung; Li, Shao-Ti; Lee, Jian-Jr; Liao, Wen-Chieh – Anatomical Sciences Education, 2023
Understanding the three-dimensional (3D) structure of the human skull is imperative for medical courses. However, medical students are overwhelmed by the spatial complexity of the skull. Separated polyvinyl chloride (PVC) bone models have advantages as learning tools, but they are fragile and expensive. This study aimed to reconstruct 3D-printed…
Descriptors: Computer Peripherals, Printing, Human Body, Anatomy
Valverde, Israel; Gomez, Gorka; Byrne, Nick; Anwar, Shafkat; Silva Cerpa, Miguel Angel; Martin Talavera, Maria; Pushparajah, Kuberan; Velasco Forte, Maria Nieves – Anatomical Sciences Education, 2022
The utility of three-dimensional (3D) printed models for medical education in complex congenital heart disease (CHD) is sparse and limited. The purpose of this study was to evaluate the utility of 3D printed models for medical education in criss-cross hearts covering a wide range of participants with different levels of knowledge and experience,…
Descriptors: Medical Education, Anatomy, Computer Peripherals, Heart Disorders

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