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Xiao J, Adnan S. Flipped anatomy classroom integrating multimodal digital resources shows positive influence upon students' experience and learning performance. ANATOMICAL SCIENCES EDUCATION 2022; 15:1086-1102. [PMID: 35751579 PMCID: PMC9796349 DOI: 10.1002/ase.2207] [Citation(s) in RCA: 10] [Impact Index Per Article: 3.3] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 11/11/2021] [Revised: 06/18/2022] [Accepted: 06/19/2022] [Indexed: 05/21/2023]
Abstract
Anatomy is shifting toward a greater focus on adopting digital delivery. To advance digital and authentic learning in anatomy, a flipped classroom model integrating multimodal digital resources and a multimedia group assignment was designed and implemented for first-year neuroanatomy and third-year regional anatomy curricula. A five-point Likert scale learning and teaching survey was conducted for a total of 145 undergraduate health science students to evaluate students' perception of the flipped classroom model and digital resources. This study revealed that over two-thirds of participants strongly agreed or agreed that the flipped classroom model helped their independent learning and understanding of difficult anatomy concepts. The response showed students consistently enjoyed their experience of using multimodal digital anatomy resources. Both first-year (75%) and third-year (88%) students strongly agreed or agreed that digital tools are very valuable and interactive for studying anatomy. Most students strongly agreed or agreed that digital anatomy tools increased their learning experience (~80%) and confidence (> 70%). The third-year students rated the value of digital anatomy tools significantly higher than the first-year students (p = 0.0038). A taxonomy-based assessment strategy revealed that the third-year students, but not the first-year, demonstrated improved performance in assessments relating to clinical application (p = 0.045). In summary, a flipped anatomy classroom integrating multimodal digital approaches exerted positive impact upon learning experience of both junior and senior students, the latter of whom demonstrated improved learning performance. This study extends the pedagogy innovation of flipped classroom teaching, which will advance future anatomy curriculum development, pertinent to post-pandemic education.
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Affiliation(s)
- Junhua Xiao
- Department of Health Sciences and Biostatistics, School of Health SciencesSwinburne University of TechnologyHawthornVictoriaAustralia
- School of Allied HealthLa Trobe UniversityBundooraVictoriaAustralia
| | - Sharmeen Adnan
- Department of Health Sciences and Biostatistics, School of Health SciencesSwinburne University of TechnologyHawthornVictoriaAustralia
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Mogali SR, Chandrasekaran R, Radzi S, Peh ZK, Tan GJS, Rajalingam P, Yee Yeong W. Investigating the effectiveness of three-dimensionally printed anatomical models compared with plastinated human specimens in learning cardiac and neck anatomy: A randomized crossover study. ANATOMICAL SCIENCES EDUCATION 2022; 15:1007-1017. [PMID: 34363315 DOI: 10.1002/ase.2128] [Citation(s) in RCA: 17] [Impact Index Per Article: 5.7] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 12/19/2020] [Revised: 08/02/2021] [Accepted: 08/04/2021] [Indexed: 06/13/2023]
Abstract
Three-dimensional printing (3DP) technology has been increasingly applied in health profession education. Yet, 3DP anatomical models compared with the plastinated specimens as learning scaffolds are unclear. A randomized-controlled crossover study was used to evaluate the objective outcomes of 3DP models compared with the plastinated specimens through an introductory lecture and team study for learning relatively simple (cardiac) and complex (neck) anatomies. Given the novel multimaterial and multicolored 3DP models are replicas of the plastinated specimens, it is hypothesized that 3DP models have the same educational benefits to plastinated specimens. This study was conducted in two phases in which participants were randomly assigned to 3DP (n = 31) and plastinated cardiac groups (n = 32) in the first phase, whereas same groups (3DP, n = 15; plastinated, n = 18) used switched materials in the second phase for learning neck anatomy. The pretest, educational activities and posttest were conducted for each phase. Miller's framework was used to assess the cognitive outcomes. There was a significant improvement in students' baseline knowledge by 29.7% and 31.3% for Phase 1; 31.7% and 31.3% for Phase 2 plastinated and 3DP models. Posttest scores for cardiac (plastinated, 3DP mean ± SD: 57.0 ± 13.3 and 60.8 ± 13.6, P = 0.27) and neck (70.3 ± 15.6 and 68.3 ± 9.9, P = 0.68) phases showed no significant difference. In addition, no difference observed when cognitive domains compared for both cases. These results reflect that introductory lecture plus either the plastinated or 3DP modes were effective for learning cardiac and neck anatomy.
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Affiliation(s)
| | - Ramya Chandrasekaran
- Lee Kong Chian School of Medicine, Nanyang Technological University Singapore, Singapore
| | - Shairah Radzi
- Lee Kong Chian School of Medicine, Nanyang Technological University Singapore, Singapore
| | - Zhen Kai Peh
- Lee Kong Chian School of Medicine, Nanyang Technological University Singapore, Singapore
| | - Gerald Jit Shen Tan
- Lee Kong Chian School of Medicine, Nanyang Technological University Singapore, Singapore
- Department of Diagnostic Radiology, Tan Tock Seng Hospital, Singapore
| | - Preman Rajalingam
- Lee Kong Chian School of Medicine, Nanyang Technological University Singapore, Singapore
| | - Wai Yee Yeong
- Singapore Centre for 3D Printing, School of Mechanical and Aerospace Engineering, Nanyang Technological University Singapore, Singapore
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Asghar A, Naaz S, Patra A, Ravi KS, Khanal L. Effectiveness of 3D-printed models prepared from radiological data for anatomy education: A meta-analysis and trial sequential analysis of 22 randomized, controlled, crossover trials. JOURNAL OF EDUCATION AND HEALTH PROMOTION 2022; 11:353. [PMID: 36567994 PMCID: PMC9768753 DOI: 10.4103/jehp.jehp_199_22] [Citation(s) in RCA: 5] [Impact Index Per Article: 1.7] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 02/07/2022] [Accepted: 07/06/2022] [Indexed: 06/01/2023]
Abstract
BACKGROUND Many academicians suggested the supplementary use of 3D-printed models reconstructed from radiological images for optimal anatomy education. 3D-printed model is newer technology available to us. The purpose of this systematic review was to capture the usefulness or effectiveness of this newer technology in anatomy education. MATERIALS AND METHODS Twenty-two studies met the inclusion and exclusion criteria for quantitative synthesis. The included studies were sub-grouped according to the interventions and participants. No restrictions were applied based on geographical location, language and publication years. Randomized, controlled trial, cross-sectional and cross-over designs were included. The effect size of each intervention in both participants was computed as a standardized mean difference (SMD). RESULTS Twenty-two randomized, controlled trials were included for quantitative estimation of effect size of knowledge acquisition as standardized mean difference in 1435 participants. The pooled effect size for 3D-printed model was 0.77 (0.45-1.09, 95% CI, P < 0.0001) with 86% heterogeneity. The accuracy score was measured in only three studies and estimated effect size was 2.81 (1.08-4.54, 95% CI, P = 0.001) with 92% heterogeneity. The satisfaction score was examined by questionnaire in 6 studies. The estimated effect size was 2.00 (0.69-3.32, 95% CI, P = 0.003) with significant heterogeneity. CONCLUSION The participants exposed to the 3D-printed model performed better than participants who used traditional methodologies. Thus, the 3D-printed model is a potential tool for anatomy education.
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Affiliation(s)
- Adil Asghar
- Department of Anatomy, All India Institute of Medical Sciences, Patna, Bihar, India
| | - Shagufta Naaz
- Department of Anaesthesiology, All India Institute of Medical Sciences, Patna, Bihar, India
| | - Apurba Patra
- Department of Anatomy, All India Institute of Medical Sciences, Bathinda, Punjab, India
| | - Kumar S. Ravi
- Department of Anatomy, All India Institute of Medical Sciences Rishikesh, Uttarakhand, India
| | - Laxman Khanal
- Department of Anatomy, BP Koirala Institute of Health Sciences, Nepal
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MEYER D, RUSHO RZ, ALAM W, CHRISTENSEN GE, HOWARD DM, ATHA J, HOFFMAN EA, STORY B, TITZE IR, LINGALA SG. High-Resolution Three-Dimensional Hybrid MRI + Low Dose CT Vocal Tract Modeling: A Cadaveric Pilot Study. J Voice 2022. [DOI: 10.1016/j.jvoice.2022.09.013] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/07/2022]
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Love TS, Cysyk JP, Attaluri A, Tunks RD, Harter K, Sipos R. Examining Science and Technology/Engineering Educators' Views of Teaching Biomedical Concepts Through Physical Computing. JOURNAL OF SCIENCE EDUCATION AND TECHNOLOGY 2022; 32:96-110. [PMID: 36213487 PMCID: PMC9525929 DOI: 10.1007/s10956-022-09996-7] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Subscribe] [Scholar Register] [Accepted: 08/30/2022] [Indexed: 06/16/2023]
Abstract
Programming and automation continue to evolve rapidly and advance the capabilities of science, technology, engineering, and mathematics (STEM) fields. However, physical computing (the integration of programming and interactive physical devices) integrated within biomedical contexts remains an area of limited focus in secondary STEM education programs. As this is an emerging area, many educators may not be well prepared to teach physical computing concepts within authentic biomedical contexts. This shortcoming provided the rationale for this study, to examine if professional development (PD) had a noticeable influence on high school science and technology and engineering (T&E) teachers' (1) perceptions of teaching biomedical and computational thinking (CT) concepts and (2) plans to integrate physical computing within the context of authentic biomedical engineering challenges. The findings revealed a significant difference in the amount of biomedical and CT concepts that teachers planned to implement as a result of the PD. Using a modified version of the Science Teaching Efficacy Belief Instrument (STEBI-A) Riggs and Enochs in Science Education, 74(6), 625-637 (1990), analyses revealed significant gains in teachers' self-efficacy toward teaching both biomedical and CT concepts from the PD. Further analyses revealed that teachers reported increases in their perceived knowledge of biomedical and CT concepts and a significant increase in their intent to collaborate with a science or T&E educator outside of their content area. This study provides implications for researchers and educators to integrate more biomedical and physical computing instruction at the secondary education level.
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Affiliation(s)
- Tyler S. Love
- Department of Teacher Education, The Pennsylvania State University, Capital Campus, Middletown, PA 17057 USA
| | - Joshua P. Cysyk
- Department of Surgery, Division of Applied Biomedical Engineering, The Pennsylvania State University College of Medicine, Hershey, PA 17033 USA
| | - Anilchandra Attaluri
- Department of Mechanical Engineering, The Pennsylvania State University, Capital Campus, Middletown, PA 17057 USA
| | - Robert D. Tunks
- Department of Pediatrics, The Pennsylvania State University College of Medicine and Pennsylvania State Hershey Children’s Hospital, Hershey, PA 17033 USA
| | - Kevin Harter
- Center for Medical Innovation, The Pennsylvania State University College of Medicine, Hershey, PA 17033 USA
| | - Renee Sipos
- The Pennsylvania State University, Capital Campus, Middletown, PA 17057 USA
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Radzi S, Chandrasekaran R, Peh ZK, Rajalingam P, Yeong WY, Mogali SR. Students' learning experiences of three-dimensional printed models and plastinated specimens: a qualitative analysis. BMC MEDICAL EDUCATION 2022; 22:695. [PMID: 36171608 PMCID: PMC9520930 DOI: 10.1186/s12909-022-03756-2] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Figures] [Subscribe] [Scholar Register] [Received: 03/21/2022] [Accepted: 09/16/2022] [Indexed: 06/16/2023]
Abstract
BACKGROUND Traditional cadaveric dissection is declining whilst plastinated and three-dimensional printed (3DP) models are increasingly popular as substitutes to the conventional anatomy teaching and learning methods. It is unclear about the pros and cons of these new tools and how they impact students' learning experiences of anatomy including humanistic values such as respect, care and empathy. METHODS: Ninety-six students' views were sought immediately after a randomized cross-over study. Pragmatic design was used to investigate the learning experiences of using plastinated and 3DP models of cardiac (in Phase 1, n = 63) and neck (in Phase 2, n = 33) anatomy. Inductive thematic analysis was conducted based on 278 free text comments (related to strengths, weaknesses, things to improve), and focus group (n = 8) transcriptions in full verbatim about learning anatomy with these tools. RESULTS Four themes were found: perceived authenticity, basic understanding versus complexity, attitudes towards respect and care, and multimodality and guidance. CONCLUSIONS Overall, students perceived plastinated specimens as more real and authentic, thus perceived more respect and care than 3DP models; whereas 3DP models were easy to use and prefered for learning basic anatomy.
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Affiliation(s)
- Shairah Radzi
- Lee Kong Chian School of Medicine, Nanyang Technological University Singapore, Singapore, Singapore
| | - Ramya Chandrasekaran
- Lee Kong Chian School of Medicine, Nanyang Technological University Singapore, Singapore, Singapore
| | - Zhen Kai Peh
- Lee Kong Chian School of Medicine, Nanyang Technological University Singapore, Singapore, Singapore
| | - Preman Rajalingam
- Lee Kong Chian School of Medicine, Nanyang Technological University Singapore, Singapore, Singapore
| | - Wai Yee Yeong
- Singapore Centre for 3D Printing, School of Mechanical and Aerospace Engineering, Nanyang Technological University Singapore, Singapore, Singapore
| | - Sreenivasulu Reddy Mogali
- Lee Kong Chian School of Medicine, Nanyang Technological University Singapore, Singapore, Singapore.
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Three-Dimensional Models of Soil-Transmitted Helminth Eggs from Light Microscopy Images. Trop Med Infect Dis 2022; 7:tropicalmed7090216. [PMID: 36136627 PMCID: PMC9505317 DOI: 10.3390/tropicalmed7090216] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 08/01/2022] [Revised: 08/24/2022] [Accepted: 08/26/2022] [Indexed: 11/17/2022] Open
Abstract
The World Health Organization indicates that more than 1.5 billion people are infected with geohelminths. Soil-transmitted helminths prevail mostly in tropical and subtropical regions, in areas with inadequate hygiene and sanitation conditions, and basic health education problems. Nematode eggs are structures of resistance and infection by fecal–oral transmission. When STH eggs are ingested, they can infect the potential host, causing abdominal pain, diarrhea, anemia, malnutrition, and physical-cognitive impacts in children. Taking advantage of the increasing employment of three-dimensional models of these structured based on light microscopy images to improve the research area and education could be an alternative to improve health education and spread scientific information on transmission and prevention. The objective of this work was to produce 3D printed models from bi-dimensional images of eggs based on their real morphological and morphometric characteristics. The virtual models were reconstructed from the acquisition and selection of images obtained using light microscopy. After selecting referential images, we constructed the models based on the vectorization of the egg structures. After vectorization, 3D modeling was performed and printed in PLA. 3D models have a high potential to contribute to the advanced morphological studies and teaching of parasitological sciences, enriching the teaching-learning process applicable in presential or remote teaching of basic education, undergraduate, and post-graduation classes.
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Chandrasekaran R, Radzi S, Kai PZ, Rajalingam P, Rotgans J, Mogali SR. A validated instrument measuring students' perceptions on plastinated and three-dimensional printed anatomy tools. ANATOMICAL SCIENCES EDUCATION 2022; 15:850-862. [PMID: 34694750 DOI: 10.1002/ase.2147] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 03/22/2021] [Revised: 10/07/2021] [Accepted: 10/22/2021] [Indexed: 06/13/2023]
Abstract
Due to the modernization of the medical curriculum and technological advancements, anatomy education has evolved beyond cadaveric dissection alone. Plastination techniques, three-dimensional (3D) modeling, and 3D printing technologies have progressively gained importance. However, there are limited valid and reliable surveys to evaluate students' perceptions of these new anatomy tools. Hence, this study aimed to develop a validated instrument to measure students' learning satisfaction, self-efficacy, humanistic values, and perceived limitations of plastinated and 3D printed models. A 41-item survey (five-point Likert scale, 1 = strongly disagree to 5 = strongly agree) was administered to Year 1 undergraduate medical students following a randomized controlled crossover study that evaluated plastinated and 3D printed cardiac and neck models. Ninety-six responses were received, and a factor analysis was performed with the Kaiser-Meyer-Olkin sampling adequacy of 0.878. The confirmatory factor analysis yielded a 4-factor, 19 items model that had a good fit with the latent constructs of x 2 (147) = 211.568, P < 0.001, root mean square error of approximation = 0.068, root mean square residual = 0.064, comparative fit index = 0.946, and Tucker Lewis index = 0.937. The Cronbach's alpha for the individual factors ranged from 0.74 to 0.95, indicating good internal consistency. This demonstrated a psychometrically valid and reliable instrument to measure students' perceptions toward plastinated and 3D printed models.
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Affiliation(s)
- Ramya Chandrasekaran
- Lee Kong Chian School of Medicine, Nanyang Technological University Singapore, Singapore
| | - Shairah Radzi
- Lee Kong Chian School of Medicine, Nanyang Technological University Singapore, Singapore
| | - Peh Zhen Kai
- Lee Kong Chian School of Medicine, Nanyang Technological University Singapore, Singapore
| | - Preman Rajalingam
- Lee Kong Chian School of Medicine, Nanyang Technological University Singapore, Singapore
| | - Jerome Rotgans
- Lee Kong Chian School of Medicine, Nanyang Technological University Singapore, Singapore
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Evans DJR, Pawlina W. The future of anatomy education: Learning from Covid-19 disruption. ANATOMICAL SCIENCES EDUCATION 2022; 15:643-649. [PMID: 35656637 DOI: 10.1002/ase.2203] [Citation(s) in RCA: 10] [Impact Index Per Article: 3.3] [Reference Citation Analysis] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Accepted: 02/06/2022] [Indexed: 06/15/2023]
Affiliation(s)
- Darrell J R Evans
- School of Medicine and Public Health, The University of Newcastle, Callaghan, New South Wales, Australia
- Faculty of Medicine, Nursing and Health Sciences, Monash University, Clayton, Victoria, Australia
| | - Wojciech Pawlina
- Department of Clinical Anatomy, Mayo Clinic College of Medicine and Science, Mayo Clinic, Rochester, Minnesota, USA
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Tan L, Wang Z, Jiang H, Han B, Tang J, Kang C, Zhang N, Xu Y. Full color 3D printing of anatomical models. Clin Anat 2022; 35:598-608. [PMID: 35384062 DOI: 10.1002/ca.23875] [Citation(s) in RCA: 10] [Impact Index Per Article: 3.3] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 11/24/2021] [Revised: 03/20/2022] [Accepted: 03/31/2022] [Indexed: 11/09/2022]
Abstract
INTRODUCTION We propose an effective method for manufacturing human anatomical specimens in response to the shortage of cadaver specimens and the poor simulation results of anatomical specimen substitutes. METHODS Digital human data with high precision were used to create digital models and corresponding mapped textures. Different materials were chosen to print the digital models with full-color and multimaterial 3D-printing technology on the basis of the histological characteristics of the anatomical structures. Anatomy experts and surgeons were then invited to compare the 3D printed models with authentic anatomical specimens in terms of morphological appearance, anatomical detail, and textural properties. RESULTS The skull, brain, hand muscles, blood vessels and nerves of the hand, and the deep structure of the head and face were printed. The skull model used hard material, and the brain and hand muscles models used flexible and hard materials combined. The blood vessels, nerves of the hand, and the superficial and deep structure of the head and face used transparent materials, revealing the small vessels and nerves in the interior. In all the models there were no significant differences from anatomical specimens in morphological appearance and anatomical detail. They also affected vision and touch in the same way as authentic specimens in the textural properties of color, roughness, smoothness, and fineness. CONCLUSION Full-color and multi-material 3D printed anatomical models have the same visual and tactile properties as anatomical specimens and could serve to complement or supplement them in anatomy teaching to compensate for the shortage of cadavers. This article is protected by copyright. All rights reserved.
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Affiliation(s)
- Liwen Tan
- Shandong Digihuman Technology Co., Inc. JiNan, 250100, China
| | - Zengtao Wang
- Hand and Foot Surgery, Shandong Provincial Hospital affiliated to Shandong University, JiNan, China
| | - Hongxin Jiang
- Department of Radiology, the Gucheng Hospital, Hebei, China
| | - Bing Han
- Shandong Digihuman Technology Co., Inc. JiNan, 250100, China
| | - Jing Tang
- Shandong Digihuman Technology Co., Inc. JiNan, 250100, China
| | - Chengfeng Kang
- Shandong Digihuman Technology Co., Inc. JiNan, 250100, China
| | - Na Zhang
- Shandong Digihuman Technology Co., Inc. JiNan, 250100, China
| | - Yifa Xu
- Shandong Digihuman Technology Co., Inc. JiNan, 250100, China
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Development of a Multicolor 3D Printer Using a Novel Filament Shifting Mechanism. INVENTIONS 2022. [DOI: 10.3390/inventions7020034] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 02/01/2023]
Abstract
Three-dimensional printing has become an unchallenged method for the manufacturing of complex shape objects. Although multicolor devices in Fuse Filament Feeder category recently have shown promising developments, their number still remains limited. The present study introduces the design of a new prototype of three-dimensional printer using Fused Filament Feeder and capable of printing multicolor objects. A single-color three-dimensional printer is used as a platform and is augmented for multicolor printing by the implementation of a mechatronic device that provides two functions. First, a transmission mechanism based on planetary gears allows feeding the selected filament color toward the printing head. The second function is provided by a combination of a central cam disk and several pushing rods. It allows selecting the filament color to be fed by the transmission system. The mechatronic device has been dimensioned to manage five different filament colors and the printing head has been modified to accommodate a five-to-one diamond nozzle. The filament shifting device is integrated into the single-color three-dimensional printer and a series of validation experiments has been carried out. These tests have demonstrated the new prototype ability to print out multicolor objects and to rival with commercial three-dimensional printers in terms of dimensional accuracy. This shows the ability of the proposed design and method to be used to upgrade a standard single-color 3D printer into a multicolor one. The presented multicolor 3D printer will be available to the 3D printing community for free.
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Hammerton C, Yip SWL, Manobharath N, Myers G, Sturrock A. Are 3D printed models acceptable in assessment? CLINICAL TEACHER 2022; 19:221-228. [PMID: 35347851 PMCID: PMC9315011 DOI: 10.1111/tct.13477] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 01/18/2021] [Revised: 11/06/2021] [Accepted: 02/18/2022] [Indexed: 02/01/2023]
Abstract
Background Three‐dimensional (3D) printed models are increasingly used in undergraduate anatomy teaching. However, their role and value in anatomy assessment remains under consideration. The aim of this study was to evaluate student and educator perspectives on acceptability of using novel 3D printed heart models for assessment. Methods We used printed 3D models of the heart for first‐year medical students, in small group teaching, formative assessment and revision at home. We adopted a mixed methods approach involving questionnaires, then focus groups to collect student and educator views. We used QSR Nvivo to manage thematic analysis of responses, carried out by student and educators, respectively. Findings Overall, students 89% (n = 75/84) and educators 91% (n = 10/11) found the assessment acceptable. Thematic analysis of focus groups (n = 4 students, n = 5 educators) identified five key perceptions shared across student and educator groups: 3D models are the future, realism is valued, models appear feasible, consistent and provide a potential for a range of applications in assessment. Discussion There was agreement between educators and students that the use of 3D heart models was acceptable. Key recognised benefits include accessibility and consistency across settings, made more relevant in the current COVID‐19 pandemic. We recommend integration of 3D models into teaching and assessment for educational alignment and careful selection of anatomy to model. Further research is required to explore the use of models in summative assessments.
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Affiliation(s)
| | | | | | - Gil Myers
- University College London Medical School, London, UK
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Gandapur HK, Amin MS. Orthopaedics and Additive Manufacturing: The Start of a New Era. Pak J Med Sci 2022; 38:751-756. [PMID: 35480542 PMCID: PMC9002451 DOI: 10.12669/pjms.38.3.5182] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 08/15/2021] [Accepted: 10/20/2021] [Indexed: 11/28/2022] Open
Abstract
The aim of this article is to report the recent surge in use of additive manufacturing (AM) or three-dimensional printing (3DP) services in healthcare, especially the field of orthopaedics. Pakistan's healthcare infrastructure has been slow in adapting and implementing this new technology which is an integral part of the industry 4.0. Various sources including Pubmed, ScienceDirect, Google Scholar and Google were utilised from June to august 2021 to extract articles and information on advantages of AM in orthopaedics. Furthermore, its possible acquisition by a hospital, educational or an industrial setup is also highlighted in this review.
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Affiliation(s)
| | - M. Suhail Amin
- Prof. Maj. Gen. M. Suhail Amin, MRCS (Ed), MCPS (HPE), FCPS (Surg), FCPS (Ortho). Dean, Armed Forces Postgraduate Medical Institute, Professor, Army Medical College, Rawalpindi, Combined Military Hospital, Rawalpindi, Pakistan
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Zhang H, He Y, Chen Y, Liu J, Jin Q, Xu S, Fu X, Qiao J, Yu B, Niu F. Virtual Reality and Three-Dimensional Printed Models Improve the Morphological Understanding in Learning Mandibular Sagittal Split Ramus Osteotomy: A Randomized Controlled Study. Front Surg 2022; 8:705532. [PMID: 35004831 PMCID: PMC8727369 DOI: 10.3389/fsurg.2021.705532] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/05/2021] [Accepted: 12/01/2021] [Indexed: 01/17/2023] Open
Abstract
Background: The mandibular sagittal split ramus osteotomy (SSRO) is a routine operation performed to correct mandibular deformity including mandibular retrusion, protrusion, deficiency, and asymmetry. The SSRO remains a challenging procedure for junior surgeons due to a lack of adequate morphological knowledge necessary for success in clinical practice. Virtual reality (VR) and three-dimensional printed (3DP) models have been widely applied in anatomy education. The present randomized, controlled study was performed to evaluate the effect of traditional educational instruments, VR models, and 3DP models on junior surgeons learning the morphological information required to perform SSRO. Methods: Eighty-one participants were randomly assigned to three learning groups: Control, VR, and 3DP. Objective and subjective tests were used to evaluate the learning effectiveness of each learning instrument. In the objective test, participants were asked to identify 10 anatomical landmarks on normal and deformed models, draw the osteotomy line, and determine the description of SSRO. In the subjective test, participants were asked to provide feedback regarding their subjective feelings about the learning instrument used in their group. Results: The objective test results showed that the VR and 3DP groups achieved better accuracy in drawing the osteotomy line (p = 0.027) and determining the description of SSRO (p = 0.023) than the Control group. However, there was no significant difference among the three groups regarding the identification of anatomical landmarks. The VR and 3DP groups gave satisfactory subjective feedback about the usefulness in learning, good presentation, and enjoyment. The Control and 3DP groups reported positive feelings about ease of use. Conclusion: The current findings suggest that VR and 3DP models were effective instruments that assisted in the morphological understanding of SSRO-related anatomical structures. Furthermore, 3DP models may be a promising supplementary instrument to bridge the gap between conventional learning and clinical practice.
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Affiliation(s)
- Henglei Zhang
- Department of Craniomaxillofacila Surgery, Plastic Surgery Hospital, Chinese Academy of Medical Sciences & Peking Union Medical College, Beijing, China
| | - Yu He
- Department of Craniomaxillofacila Surgery, Plastic Surgery Hospital, Chinese Academy of Medical Sciences & Peking Union Medical College, Beijing, China
| | - Ying Chen
- Department of Craniomaxillofacila Surgery, Plastic Surgery Hospital, Chinese Academy of Medical Sciences & Peking Union Medical College, Beijing, China
| | - Jianfeng Liu
- Department of Craniomaxillofacila Surgery, Plastic Surgery Hospital, Chinese Academy of Medical Sciences & Peking Union Medical College, Beijing, China
| | - Qi Jin
- Department of Craniomaxillofacila Surgery, Plastic Surgery Hospital, Chinese Academy of Medical Sciences & Peking Union Medical College, Beijing, China
| | - Shixing Xu
- Department of Craniomaxillofacila Surgery, Plastic Surgery Hospital, Chinese Academy of Medical Sciences & Peking Union Medical College, Beijing, China
| | - Xi Fu
- Department of Craniomaxillofacila Surgery, Plastic Surgery Hospital, Chinese Academy of Medical Sciences & Peking Union Medical College, Beijing, China
| | - Jia Qiao
- Department of Craniomaxillofacila Surgery, Plastic Surgery Hospital, Chinese Academy of Medical Sciences & Peking Union Medical College, Beijing, China
| | - Bing Yu
- Department of Craniomaxillofacila Surgery, Plastic Surgery Hospital, Chinese Academy of Medical Sciences & Peking Union Medical College, Beijing, China
| | - Feng Niu
- Department of Craniomaxillofacila Surgery, Plastic Surgery Hospital, Chinese Academy of Medical Sciences & Peking Union Medical College, Beijing, China
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Dharamsi MS, Bastian DA, Balsiger HA, Cramer JT, Belmares R. Efficacy of Video-Based Forearm Anatomy Model Instruction for a Virtual Education Environment. JOURNAL OF MEDICAL EDUCATION AND CURRICULAR DEVELOPMENT 2022; 9:23821205211063287. [PMID: 35024450 PMCID: PMC8743927 DOI: 10.1177/23821205211063287] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.7] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Subscribe] [Scholar Register] [Indexed: 06/14/2023]
Abstract
INTRODUCTION As virtual education becomes more widespread, particularly considering the recent COVID-19 pandemic, studies that assess the impact of online teaching strategies are vital. Current anatomy curriculum at Paul L. Foster School of Medicine consists of self-taught PowerPoint material, clinical vignette-centered team-based learning (dry lab), and prosection-based instruction (wet lab). This study examined the impact of video-based muscle model (VBMM) instruction using a student-designed forearm muscle model on anatomy quiz scores and student perceptions of its effectiveness with regards to learning outcomes. METHODS Students divided into Group 1 (54 students) and Group 2 (53 students) were assessed prior to and following a 3.5-minute video on anterior forearm compartment musculature using the muscle model. Group 1 began by completing a pretest, then received VBMM instruction, and then completed a posttest prior to participating in the standard dry lab and 1 hour wet lab. Group 2 completed the wet lab, then received the pretest, VBMM instruction, and posttest prior to participating in the dry lab. Both groups took an identical five-question quiz covering locations and functions of various anterior forearm muscles each time. RESULTS Mean scores were higher than no formal intervention with exposure to VBMM instruction alone (0.73 points, P = .01), wet lab alone (0.88 points, P = .002), and wet lab plus VBMM instruction (1.35 points, P= <.001). No significant difference in scores was found between instruction with VBMM versus wet lab alone (P = 1.00), or between either instruction method alone compared to a combination of the two methods (P = .34, .09). Student survey opinions on the VBMM instruction method were positive. CONCLUSION VBMM instruction is comparable to prosection-based lab with regards to score outcomes and was well received by students as both an independent learning tool and as a supplement to cadaveric lab. When compared to either instruction method alone, the supplementation of VBMM with cadaveric prosection instruction was best. VBMM instruction may be valuable for institutions without access to cadaveric specimens, or those looking to supplement their current anatomy curriculum.
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Affiliation(s)
- Miraal S. Dharamsi
- Paul L. Foster School of Medicine, Texas Tech University Health Science Center El Paso, El Paso, TX, USA
| | | | - Heather A. Balsiger
- Paul L. Foster School of Medicine, Texas Tech University Health Science Center El Paso, El Paso, TX, USA
| | | | - Ricardo Belmares
- Paul L. Foster School of Medicine, Texas Tech University Health Science Center El Paso, El Paso, TX, USA
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Varner C, Dixon L, Simons MC. The Past, Present, and Future: A Discussion of Cadaver Use in Medical and Veterinary Education. Front Vet Sci 2021; 8:720740. [PMID: 34859081 PMCID: PMC8631388 DOI: 10.3389/fvets.2021.720740] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Journal Information] [Subscribe] [Scholar Register] [Received: 06/04/2021] [Accepted: 09/29/2021] [Indexed: 11/27/2022] Open
Abstract
Cadaver usage in medical training, although controversial, has persisted over centuries. In veterinary education various methods have been proposed to either improve cadaver preservation, reduce cadaver use, or to replace cadavers entirely, but to date few have gained popularity. This manuscript seeks to: (i) describe the history of cadavers in medical and veterinary education; (ii) compare available cadaveric preservation methods; (iii) reflect on applications of cadaver use in the educational setting; (iv) discuss alternatives to traditional cadaver use; and (v) consider the perceptions of the stakeholders who use them.
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Affiliation(s)
- Caitlin Varner
- Center for Innovation in Veterinary Education & Technology, Lincoln Memorial University College of Veterinary Medicine, Harrogate, TN, United States
| | - Lucinda Dixon
- Center for Innovation in Veterinary Education & Technology, Lincoln Memorial University College of Veterinary Medicine, Harrogate, TN, United States
| | - Micha C Simons
- Center for Innovation in Veterinary Education & Technology, Lincoln Memorial University College of Veterinary Medicine, Harrogate, TN, United States
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Asif A, Lee E, Caputo M, Biglino G, Shearn AIU. Role of 3D printing technology in paediatric teaching and training: a systematic review. BMJ Paediatr Open 2021; 5:10.1136/bmjpo-2021-001050. [PMID: 35290958 PMCID: PMC8655595 DOI: 10.1136/bmjpo-2021-001050] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Received: 02/05/2021] [Accepted: 05/15/2021] [Indexed: 11/04/2022] Open
Abstract
BACKGROUND In the UK, undergraduate paediatric training is brief, resulting in trainees with a lower paediatric knowledge base compared with other aspects of medicine. With congenital conditions being successfully treated at childhood, adult clinicians encounter and will need to understand these complex pathologies. Patient-specific 3D printed (3DP) models have been used in clinical training, especially for rarer, complex conditions. We perform a systematic review to evaluate the evidence base in using 3DP models to train paediatricians, surgeons, medical students and nurses. METHODS Online databases PubMed, Web of Science and Embase were searched between January 2010 and April 2020 using search terms relevant to "paediatrics", "education", "training" and "3D printing". Participants were medical students, postgraduate trainees or clinical staff. Comparative studies (patient-specific 3DP models vs traditional teaching methods) and non-comparative studies were included. Outcomes gauged objective and subjective measures: test scores, time taken to complete tasks, self-reported confidence and personal preferences on 3DP models. If reported, the cost of and time taken to produce the models were noted. RESULTS From 587 results, 15 studies fit the criteria of the review protocol, with 5/15 being randomised controlled studies and 10/15 focussing on cardiovascular conditions. Participants using 3DP models demonstrated improved test scores and faster times to complete procedures and identify anatomical landmarks compared with traditional teaching methods (2D diagrams, lectures, videos and supervised clinical events). User feedback was positive, reporting greater user self-confidence in understanding concepts with users wishing for integrated use of 3DP in regular teaching. Four studies reported the costs and times of production, which varied depending on model complexity and printer. 3DP models were cheaper than 'off-the-shelf' models available on the market and had the benefit of using real-world pathologies. These mostly non-randomised and single-centred studies did not address bias or report long-term or clinically translatable outcomes. CONCLUSIONS 3DP models were associated with greater user satisfaction and good short-term educational outcomes, with low-quality evidence. Multicentred, randomised studies with long-term follow-up and clinically assessed outcomes are needed to fully assess their benefits in this setting. PROSPERO REGISTRATION NUMBER CRD42020179656.
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Affiliation(s)
- Ashar Asif
- Bristol Medical School, University of Bristol, Bristol, UK
| | - Elgin Lee
- Children's Services Directorate, Newcastle Upon Tyne Hospitals NHS Foundation Trust, Newcastle Upon Tyne, UK
| | - Massimo Caputo
- Bristol Medical School, University of Bristol, Bristol, UK.,Bristol Heart Institute, University Hospitals Bristol and Weston NHS Trust, Bristol, UK
| | - Giovanni Biglino
- Bristol Heart Institute, University Hospitals Bristol and Weston NHS Trust, Bristol, UK.,National Heart and Lung Institute, Imperial College London, London, UK
| | - Andrew Ian Underwood Shearn
- Bristol Medical School, University of Bristol, Bristol, UK .,Bristol Heart Institute, University Hospitals Bristol and Weston NHS Trust, Bristol, UK
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Moxham BJ, Brenner E, Plaisant O, Pais D, Stabile I, Scholz M, Paulsen F, Bueno-López JL, Reblet C, Arráez-Aybar LA, Sotgiu MA, Arsic S, Lignier B, Arantes M, Stephens S, Chirculescu ARM. The attitudes of European medical students towards the clinical importance of neuroanatomy. Ann Anat 2021; 239:151832. [PMID: 34536539 DOI: 10.1016/j.aanat.2021.151832] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/18/2021] [Revised: 09/01/2021] [Accepted: 09/06/2021] [Indexed: 10/20/2022]
Abstract
The attitudes of medical students towards the clinical importance of neuroanatomy have been little studied. Because it has been reported that medical students find neuroanatomy difficult and can have 'neurophobia', here we test the hypothesis that early-stage medical students across Europe have a low regard for neuroanatomy's clinical relevance. The work was conducted under the auspices of the Trans-European Pedagogic Research Group (TEPARG), with just over 1500 students from 12 European medical schools providing responses to a survey (52% response rate) that assessed their attitudes using Thurstone and Chave methodologies. Regardless of the university surveyed, and of the teaching methods employed for neuroanatomy, our findings were not consistent with our hypothesis. However, the students had a less favourable opinion of neuroanatomy's importance compared to gross anatomy; although their attitudes were more positive than previously reported for histology and embryology. The extent to which neuroanatomy plays a significant role in the early years of medical education is moot. Nevertheless, we conclude that in addition to newly recruited medical students being informed of the subject's role in a healthcare profession, we advocate the use of modern imaging technologies to enhance student understanding and motivation and cognisance of the core syllabus for the subject being developed by the International Federation of Associations of Anatomists (IFAA).
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Affiliation(s)
- Bernard John Moxham
- Cardiff School of Biosciences, Cardiff University, Museum Avenue, Cardiff CF10 3AX, Wales, UK.
| | - Erich Brenner
- Division of Clinical and Functional Anatomy, Department of Anatomy, Histology and Embryology, Medical University of Innsbruck, Müllerstrasse 59, 6020 Innsbruck, Austria
| | - Odile Plaisant
- University of Paris Descartes, Sorbonne Paris Cité, URDIA, EA 4465 Paris, France
| | - Diogo Pais
- NOVA Medical School Faculty of Medical Sciences, NOVA University of Lisbon, Campo dos Martires da Patria 130, 1169-056 Lisboa, Portugal
| | - Isabel Stabile
- Department of Anatomy, University of Malta, Tal Qroqq, Msida, Malta
| | - Michael Scholz
- Department of Functional and Clinical Anatomy, Friedrich Alexander University Erlangen-Nürnberg, Universitätsstr. 19, 91054 Erlangen, Germany
| | - Friedrich Paulsen
- Department of Functional and Clinical Anatomy, Friedrich Alexander University Erlangen-Nürnberg, Universitätsstr. 19, 91054 Erlangen, Germany
| | - José Luis Bueno-López
- Department of Neurosciences, School of Medicine and Nursing, The University of the Basque Country (UPV/EHU), Campus of Leioa, Bº Sarriena S/N, 48940 Leioa, Spain
| | - Concepción Reblet
- Department of Neurosciences, School of Medicine and Nursing, The University of the Basque Country (UPV/EHU), Campus of Leioa, Bº Sarriena S/N, 48940 Leioa, Spain
| | - Luis-Alfonso Arráez-Aybar
- Department of Human Anatomy and Embryology, Faculty of Medicine, Complutense University, Ciudad Universitaria, 28040 Madrid, Spain
| | - Maria Alessandra Sotgiu
- Department of Biomedical Sciences, Faculty of Medicine and Surgery, University of Sassari, Sassari, Italy
| | - Stojanka Arsic
- Department of Anatomy, Faculty of Medicine, University of Niš, Bulevar dr Zorana Đinđića 81, 18000 Niš, Serbia
| | - Baptiste Lignier
- Laboratoire de Psychopathologie et Psychologie Médicale (LPPM-EA 4452), Université Bourgogne-Franche Comté, Pole AAFE, Esplanade Erasme, 21000 Dijon, France
| | - Mavilde Arantes
- Department of Biomedicine, Unit of Anatomy, Faculty of Medicine, University of Porto, Al. Professor Hernâni Monteiro, 4200-319 Porto, Portugal
| | - Shiby Stephens
- Cardiff School of Biosciences, Cardiff University, Museum Avenue, Cardiff CF10 3AX, Wales, UK
| | - Andy R M Chirculescu
- Department of Morphological Sciences, Division of Anatomy, Faculty of Medicine, C. Davila University, Bucharest, Romania
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Creation of Anatomically Correct and Optimized for 3D Printing Human Bones Models. APPLIED SYSTEM INNOVATION 2021. [DOI: 10.3390/asi4030067] [Citation(s) in RCA: 5] [Impact Index Per Article: 1.3] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 12/13/2022]
Abstract
Educational institutions in several countries state that the education sector should be modernized to ensure a contemporary, individualized, and more open learning process by introducing and developing advance digital solutions and learning tools. Visualization along with 3D printing have already found their implementation in different medical fields in Pauls Stradiņš Clinical University Hospital, and Rīga Stradiņš University, where models are being used for prosthetic manufacturing, surgery planning, simulation of procedures, and student education. The study aimed to develop a detailed methodology for the creation of anatomically correct and optimized models for 3D printing from radiological data using only free and widely available software. In this study, only free and cross-platform software from widely available internet sources has been used—“Meshmixer”, “3D Slicer”, and “Meshlab”. For 3D printing, the Ultimaker 5S 3D printer along with PLA material was used. In its turn, radiological data have been obtained from the “New Mexico Decedent Image Database”. In total, 28 models have been optimized and printed. The developed methodology can be used to create new models from scratch, which can be used will find implementation in different medical and scientific fields—simulation processes, anthropology, 3D printing, bioprinting, and education.
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Karsenty C, Guitarte A, Dulac Y, Briot J, Hascoet S, Vincent R, Delepaul B, Vignaud P, Djeddai C, Hadeed K, Acar P. The usefulness of 3D printed heart models for medical student education in congenital heart disease. BMC MEDICAL EDUCATION 2021; 21:480. [PMID: 34496844 PMCID: PMC8424617 DOI: 10.1186/s12909-021-02917-z] [Citation(s) in RCA: 19] [Impact Index Per Article: 4.8] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 03/11/2021] [Accepted: 08/28/2021] [Indexed: 05/29/2023]
Abstract
BACKGROUND Three-dimensional (3D) printing technology enables the translation of 2-dimensional (2D) medical imaging into a physical replica of a patient's individual anatomy and may enhance the understanding of congenital heart defects (CHD). We aimed to evaluate the usefulness of a spectrum of 3D-printed models in teaching CHD to medical students. RESULTS We performed a prospective, randomized educational procedure to teach fifth year medical students four CHDs (atrial septal defect (ASD, n = 74), ventricular septal defect (VSD, n = 50), coarctation of aorta (CoA, n = 118) and tetralogy of Fallot (ToF, n = 105)). Students were randomized into printing groups or control groups. All students received the same 20 min lecture with projected digital 2D images. The printing groups also manipulated 3D printed models during the lecture. Both groups answered an objective survey (Multiple-choice questionnaire) twice, pre- and post-test, and completed a post-lecture subjective survey. Three hundred forty-seven students were included and both teaching groups for each CHD were comparable in age, sex and pre-test score. Overall, objective knowledge improved after the lecture and was higher in the printing group compared to the control group (16.3 ± 2.6 vs 14.8 ± 2.8 out of 20, p < 0.0001). Similar results were observed for each CHD (p = 0.0001 ASD group; p = 0.002 VSD group; p = 0.0005 CoA group; p = 0.003 ToF group). Students' opinion of their understanding of CHDs was higher in the printing group compared to the control group (respectively 4.2 ± 0.5 vs 3.8 ± 0.4 out of 5, p < 0.0001). CONCLUSION The use of 3D printed models in CHD lectures improve both objective knowledge and learner satisfaction for medical students. The practice should be mainstreamed.
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Affiliation(s)
- Clement Karsenty
- Pediatric cardiology unit, Children Hospital, CHU Toulouse, 330 Avenue de Grande Bretagne TSA 70034, 31059, Toulouse cedex 9, France.
- Institut Des Maladies Métaboliques Et Cardiovasculaires, Université de Toulouse, INSERM U1048, I2MC, 1, Avenue Jean Poulhès-BP84225, Toulouse, France.
| | - Aitor Guitarte
- Pediatric cardiology unit, Children Hospital, CHU Toulouse, 330 Avenue de Grande Bretagne TSA 70034, 31059, Toulouse cedex 9, France
| | - Yves Dulac
- Pediatric cardiology unit, Children Hospital, CHU Toulouse, 330 Avenue de Grande Bretagne TSA 70034, 31059, Toulouse cedex 9, France
| | - Jerome Briot
- Pediatric cardiology unit, Children Hospital, CHU Toulouse, 330 Avenue de Grande Bretagne TSA 70034, 31059, Toulouse cedex 9, France
| | - Sebastien Hascoet
- Department of Pediatric and Adult Congenital Heart Diseases, Marie Lannelongue Hospital, Groupe Hospitalier Saint Joseph Reference Center of Complex Congenital Heart Diseases M3C, Le Plessis Robinson, France
| | - Remi Vincent
- Pediatric cardiology unit, Children Hospital, CHU Toulouse, 330 Avenue de Grande Bretagne TSA 70034, 31059, Toulouse cedex 9, France
| | - Benoit Delepaul
- Pediatric cardiology unit, Children Hospital, CHU Toulouse, 330 Avenue de Grande Bretagne TSA 70034, 31059, Toulouse cedex 9, France
| | - Paul Vignaud
- Pediatric cardiology unit, Children Hospital, CHU Toulouse, 330 Avenue de Grande Bretagne TSA 70034, 31059, Toulouse cedex 9, France
| | - Camelia Djeddai
- Pediatric cardiology unit, Children Hospital, CHU Toulouse, 330 Avenue de Grande Bretagne TSA 70034, 31059, Toulouse cedex 9, France
| | - Khaled Hadeed
- Pediatric cardiology unit, Children Hospital, CHU Toulouse, 330 Avenue de Grande Bretagne TSA 70034, 31059, Toulouse cedex 9, France
| | - Philippe Acar
- Pediatric cardiology unit, Children Hospital, CHU Toulouse, 330 Avenue de Grande Bretagne TSA 70034, 31059, Toulouse cedex 9, France
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Khonsari RH, Adam J, Benassarou M, Bertin H, Billotet B, Bouaoud J, Bouletreau P, Garmi R, Gellée T, Haen P, Ketoff S, Lescaille G, Louvrier A, Lutz JC, Makaremi M, Nicot R, Pham-Dang N, Praud M, Saint-Pierre F, Schouman T, Sicard L, Simon F, Wojcik T, Meyer C. In-house 3D printing: Why, when, and how? Overview of the national French good practice guidelines for in-house 3D-printing in maxillo-facial surgery, stomatology, and oral surgery. JOURNAL OF STOMATOLOGY, ORAL AND MAXILLOFACIAL SURGERY 2021; 122:458-461. [PMID: 34400375 DOI: 10.1016/j.jormas.2021.08.002] [Citation(s) in RCA: 9] [Impact Index Per Article: 2.3] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 08/07/2021] [Accepted: 08/11/2021] [Indexed: 01/04/2023]
Abstract
3D-printing is part of the daily practice of maxillo-facial surgeons, stomatologists and oral surgeons. To date, no French health center is producing in-house medical devices according to the new European standards. Based on all the evidence-based data available, a group of experts from the French Society of Stomatology, Maxillo-Facial Surgery and Oral Surgery (Société Française de Chirurgie Maxillofaciale, Stomatologie et Chirurgie Orale, SFSCMFCO), provide good practice guidelines for in-house 3D-printing in maxillo-facial surgery, stomatology, and oral surgery. Briefly, technical considerations related to printers and CAD software, which were the main challenges in the last ten years, are now nearly trivial questions. The central current issues when planning the implementation of an in-house 3D-printing platform are economic and regulatory. Successful in-house 3D platforms rely on close collaborations between health professionals and engineers, backed by regulatory and logistic specialists. Several large-scale academic projects across France will soon provide definitive answers to governance and economical questions related to the use of in-house 3D printing.
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Affiliation(s)
- Roman Hossein Khonsari
- Service de chirurgie maxillofaciale et chirurgie plastique, Hôpital Universitaire Necker - Enfants Malades, Assistance Publique - Hôpitaux de Paris; Faculté de médecine, Université de Paris; Paris, France.
| | | | - Mourad Benassarou
- Service de chirurgie maxillofaciale et stomatologie, Hôpital Universitaire Pitié-Salpêtrière, Assistance Publique - Hôpitaux de Paris, Faculté de médecine, Sorbonne Université; Paris, France
| | - Hélios Bertin
- Service de chirurgie maxillofaciale et stomatologie, Centre Hospitalier Universitaire Hôtel-Dieu; Faculté de médecine, Université de Nantes; Nantes, France
| | | | - Jebrane Bouaoud
- Service de chirurgie maxillofaciale et stomatologie, Hôpital Universitaire Pitié-Salpêtrière, Assistance Publique - Hôpitaux de Paris, Faculté de médecine, Sorbonne Université; Paris, France
| | - Pierre Bouletreau
- Service de chirurgie maxillofaciale, stomatologie, chirurgie orale et chirurgie plastique de la face, Centre Hospitalier Lyon Sud, Hospices Civils de Lyon; Faculté de Médecine, Université Claude Bernard Lyon I; Lyon, France
| | - Rachid Garmi
- Service de chirurgie maxillofaciale, plastique et reconstructrice, chirurgie orale et implantologie, Centre Hospitalier Universitaire Caen Normandie; Université de Caen Normandie; Caen, France
| | - Timothée Gellée
- Service de chirurgie maxillofaciale et stomatologie, Unité de chirurgie orale, Hôpital Universitaire Pitié-Salpêtrière, Assistance Publique - Hôpitaux de Paris; Faculté de médecine, Sorbonne Université; Paris, France
| | - Pierre Haen
- Service de chirurgie maxillofaciale, Hôpital d'Instruction des Armées Laveran; Marseille, France
| | - Serge Ketoff
- Service de chirurgie maxillofaciale, Groupe Hospitalier Paris Saint-Joseph, Paris, France
| | - Géraldine Lescaille
- Service de chirurgie maxillofaciale et stomatologie, Unité de chirurgie orale, Hôpital Universitaire Pitié-Salpêtrière, Assistance Publique - Hôpitaux de Paris; Faculté de médecine, Sorbonne Université; Paris, France
| | - Aurélien Louvrier
- Service de chirurgie maxillofaciale, stomatologie et odontologie, Centre Hospitalier Régional Universitaire de Besançon; Faculté de Médecine, Université de Franche-Comté; Besançon, France
| | - Jean-Christophe Lutz
- Service de chirurgie maxillofaciale et stomatologie, Centre Hospitalier Universitaire de Strasbourg; Faculté de Médecine, Université de Strasbourg; Strasbourg, France
| | - Masrour Makaremi
- Département d'orthopédie dento-faciale, UFR des sciences odontologiques, Bordeaux, France
| | - Romain Nicot
- Service de chirurgie maxillofaciale et stomatologie, Centre Hospitalier Régional Universitaire de Lille; Faculté de Médecine Henri Warembourg, Université de Lille; Lille, France
| | - Nathalie Pham-Dang
- Service de chirurgie maxillofaciale et chirurgie plastique, Centre Hospitalier Universtiaire de Clermont-Ferrand; Faculté de Médecine, Université de Clermont Auvergne; Clermont-Ferrand, France
| | - Morgan Praud
- Service de chirurgie maxillofaciale et stomatologie, Centre Hospitalier Universitaire Hôtel-Dieu; Faculté de médecine, Université de Nantes; Nantes, France
| | | | - Thomas Schouman
- Service de chirurgie maxillofaciale et stomatologie, Hôpital Universitaire Pitié-Salpêtrière, Assistance Publique - Hôpitaux de Paris, Faculté de médecine, Sorbonne Université; Paris, France
| | - Ludovic Sicard
- Service de chirurgie orale, Hôpital Bretonneau, Assistance Publique - Hôpitaux de Paris; Faculté d'odontologie, Université de Paris; Paris, France
| | - François Simon
- Service de d'otorhinolaryngologie et chirurgie cervico-faciale pédiatrique, Hôpital Universitaire Necker - Enfants Malades, Assistance Publique - Hôpitaux de Paris; Faculté de médecine, Université de Paris; Paris, France
| | - Thomas Wojcik
- Service de chirurgie maxillofaciale et stomatologie, Centre Hospitalier Régional Universitaire de Lille; Faculté de Médecine Henri Warembourg, Université de Lille; Lille, France
| | - Christophe Meyer
- Service de chirurgie maxillofaciale, stomatologie et odontologie, Centre Hospitalier Régional Universitaire de Besançon; Faculté de Médecine, Université de Franche-Comté; Besançon, France
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- Service de chirurgie maxillofaciale et chirurgie plastique, Hôpital Universitaire Necker - Enfants Malades, Assistance Publique - Hôpitaux de Paris; Faculté de médecine, Université de Paris; Paris, France; BONE 3D, Paris, France; Service de chirurgie maxillofaciale et stomatologie, Hôpital Universitaire Pitié-Salpêtrière, Assistance Publique - Hôpitaux de Paris, Faculté de médecine, Sorbonne Université; Paris, France; Service de chirurgie maxillofaciale et stomatologie, Centre Hospitalier Universitaire Hôtel-Dieu; Faculté de médecine, Université de Nantes; Nantes, France; ENNOIA, Besançon, France; Service de chirurgie maxillofaciale, stomatologie, chirurgie orale et chirurgie plastique de la face, Centre Hospitalier Lyon Sud, Hospices Civils de Lyon; Faculté de Médecine, Université Claude Bernard Lyon I; Lyon, France; Service de chirurgie maxillofaciale, plastique et reconstructrice, chirurgie orale et implantologie, Centre Hospitalier Universitaire Caen Normandie; Université de Caen Normandie; Caen, France; Service de chirurgie maxillofaciale et stomatologie, Unité de chirurgie orale, Hôpital Universitaire Pitié-Salpêtrière, Assistance Publique - Hôpitaux de Paris; Faculté de médecine, Sorbonne Université; Paris, France; Service de chirurgie maxillofaciale, Hôpital d'Instruction des Armées Laveran; Marseille, France; Service de chirurgie maxillofaciale, Groupe Hospitalier Paris Saint-Joseph, Paris, France; Service de chirurgie maxillofaciale, stomatologie et odontologie, Centre Hospitalier Régional Universitaire de Besançon; Faculté de Médecine, Université de Franche-Comté; Besançon, France; Service de chirurgie maxillofaciale et stomatologie, Centre Hospitalier Universitaire de Strasbourg; Faculté de Médecine, Université de Strasbourg; Strasbourg, France; Département d'orthopédie dento-faciale, UFR des sciences odontologiques, Bordeaux, France; Service de chirurgie maxillofaciale et stomatologie, Centre Hospitalier Régional Universitaire de Lille; Faculté de Médecine Henri Warembourg, Université de Lille; Lille, France; Service de chirurgie maxillofaciale et chirurgie plastique, Centre Hospitalier Universtiaire de Clermont-Ferrand; Faculté de Médecine, Université de Clermont Auvergne; Clermont-Ferrand, France; Méthodologie, Sorbonne Université; Paris, France; Service de chirurgie orale, Hôpital Bretonneau, Assistance Publique - Hôpitaux de Paris; Faculté d'odontologie, Université de Paris; Paris, France; Service de d'otorhinolaryngologie et chirurgie cervico-faciale pédiatrique, Hôpital Universitaire Necker - Enfants Malades, Assistance Publique - Hôpitaux de Paris; Faculté de médecine, Université de Paris; Paris, France
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Azkue JJ. External surface anatomy of the postfolding human embryo: Computer-aided, three-dimensional reconstruction of printable digital specimens. J Anat 2021; 239:1438-1451. [PMID: 34275144 PMCID: PMC8602026 DOI: 10.1111/joa.13514] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Key Words] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 03/30/2021] [Revised: 06/30/2021] [Accepted: 07/02/2021] [Indexed: 01/20/2023] Open
Abstract
Opportunities for clinicians, researchers, and medical students to become acquainted with the three‐dimensional (3D) anatomy of the human embryo have historically been limited. This work was aimed at creating a collection of digital, printable 3D surface models demonstrating major morphogenetic changes in the embryo's external anatomy, including typical features used for external staging. Twelve models were digitally reconstructed based on optical projection tomography, high‐resolution episcopic microscopy and magnetic resonance imaging datasets of formalin‐fixed specimens of embryos of developmental stages 12 through 23, that is, stages following longitudinal and transverse embryo folding. The reconstructed replica reproduced the external anatomy of the actual specimens in great detail, and the progress of development over stages was recognizable in a variety of external anatomical features and bodily structures, including the general layout and curvature of the body, the pharyngeal arches and cervical sinus, the physiological gut herniation, and external genitalia. In addition, surface anatomy features commonly used for embryo staging, such as distinct steps in the morphogenesis of facial primordia and limb buds, were also apparent. These digital replica, which are all provided for 3D visualization and printing, can serve as a novel resource for teaching and learning embryology and may contribute to a better appreciation of the human embryonic development.
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Affiliation(s)
- Jon Jatsu Azkue
- Department of Neurosciences, School of Medicine and Nursery, Universty of the Basque Country, UPV/EHU, Leioa, Bizkaia, Spain
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Oguzkaya S, Misir A, Ozcamdalli M, Eken G, Kizkapan TB, Kurk MB, Uzun E. Impact of the COVID-19 pandemic on orthopedic fracture characteristics in three hospitals in Turkey: A multi-center epidemiological study. Jt Dis Relat Surg 2021; 32:323-332. [PMID: 34145802 PMCID: PMC8343845 DOI: 10.52312/jdrs.2021.20] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 01/05/2021] [Accepted: 03/12/2021] [Indexed: 11/17/2022] Open
Abstract
Objectives
In this study, we present the use of case specific three- dimensional (3D) printed plastic models and custom-made acetabular implants in orthopedic surgery. Materials and methods
Between March 2018 and September 2020, surgeries were simulated using plastic models manufactured by 3D printers on the two patients with pilon fractures. Also, custom-made acetabular implants were used on two patients with an acetabular bone defect for the revision of total hip arthroplasty (THA). Results
More comfortable surgeries were experienced in pilon fractures using preoperative plastic models. Similarly, during the follow-up period, the patients that applied custom-made acetabular implants showed a fixed and well-positioning in radiographic examination. These patients did not experience any surgical complications and achieved an excellent recovery. Conclusion
Preoperative surgical simulation with 3D printed models can increase the comfort of fracture surgeries. Also, custom-made 3D printed acetabular implants can perform an important task in patients treated with revision THA surgery due to severe acetabular defects.
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Affiliation(s)
- Sinan Oguzkaya
- Sarkışla Devlet Hastanesi Ortopedi ve Travmatoloji Kliniği, 58400 Sarkışla, Sivas, Türkiye.
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