Personalized Surgery Service in a Tertiary Hospital: A Method to Increase Effectiveness, Precision, Safety and Quality in Maxillofacial Surgery Using Custom-Made 3D Prostheses and Implants
Abstract
:1. Introduction
2. Materials and Methods
3. Results
3.1. Project Description
3.2. 3D-LAB Internal Structure and Functional Specifications
- Radiological image import from PACS;
- Processing and merging of images;
- Diagnosis and planning using diagnosis and planning software;
- 3D prototyping of the required elements for case diagnosis and planning, including resin surgical guides and models that could be required for the placement of CAD-CAM implants or for the use of pre-bent plates;
- File generation in STL and DICOM formats containing the processed information to be exported to the industry, where the customized elements can be manufactured (using titanium or other materials). At this stage, we will establish online communication with the industry (website connection) to collaborate in the planning and design of the customized elements;
- Collection of all the customized products that are manufactured outside the hospital (manufacturing outsourced to the industry). All products manufactured by the industry will be sent to the 3D-LAB office for the final stage of surgical treatment, making it possible to follow up on the delivery time for the various products and monitor the case traceability, materials and products throughout the process;
- Evaluation of results using several established indicators;
- Establishment of quality control parameters, including the following: delivery time, required regulations and certifications (quality, material biocompatibility and accuracy of measurement), accepted technologies and load/resistance validations; and
- A communication and networking platform for all professionals involved and establishment of a training plan with respect to PS for all professionals.
3.3. Evaluation of Result Indicators
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Appendix A. Search Criteria and Strategy for the Systematic Review
Mesh Term | Definition | Keywords |
---|---|---|
Image Processing, Computer-Assisted | A technique of inputting two-dimensional or three-dimensional images into a computer and then enhancing or analyzing the imagery into a form that is more useful to the human observer. Year introduced: 1987 | “3D printing *” OR “3D-printing *” OR 3-dimensional OR “in-house 3D-printing” OR “custom-made implant *” |
Printing, Three-Dimensional | Process for making, building or constructing a physical object from a three-dimensional digital model by laying down many successive thin layers of building material. Year introduced: 2015 | “Three-Dimensional Printing *” |
Fiducial Markers | Materials used as reference points for imaging studies. Year introduced: 2011 | “Fiducial Marker *” OR “Fiducial Target *” OR “Anatomic Fiducial *” OR “Implanted Fiducial *” |
Surgery, Computer-Assisted | Surgical procedures conducted with the aid of computers; used in various types of surgery for implant placement and instrument guidance. Image-guided surgery interactively combines prior CT scans or MRI images with real-time video. Year introduced: 2002 | “Computer-Assisted Surger *” OR “Computer-Aided Surger *” OR “Surgical Navigation” OR “Image-Guided Surger *” |
Patient-Specific Modeling | The development and application of computational models of human pathophysiology that are individualized according to patient-specific data. Year introduced: 2015 | “personalized surger *” OR “personalized reconstruction” |
Microsurgery | The performance of surgical procedures with the aid of a microscope. Year introduced: 1972 (1969) | |
Precision Medicine | Clinical, therapeutic and diagnostic approaches to optimal disease management based on individual variations in a patient’s genetic profile. Year introduced: 2010 | “precision medicine” OR “Individualized Medicine” OR P-Health OR “Predictive Medicine” OR Theranostic * |
Tissue Engineering | Generating tissue in vitro for clinical applications, such as replacing wounded tissues or impaired organs. The use of tissue scaffolding enables the generation of complex, multi-layered tissues and tissue structures. Year introduced: 2002 | “Tissue Engineering” |
Query | Search Strategy | Filters |
---|---|---|
1 | Image Processing, Computer-Assisted [MeSH Terms] | |
2 | “3D printing *” [Title/Abstract] | |
3 | “3D-printin *” [Title/Abstract] | |
4 | 3-dimensional [Title/Abstract] | |
5 | “in-house 3D-printing” [Title/Abstract] | |
6 | “custom-made implant *” [Title/Abstract] | |
7 | Printing, Three-Dimensional [MeSH Terms] | |
8 | “Three-Dimensional Printing *” [Title/Abstract] | |
9 | Fiducial Markers [MeSH Terms] | |
10 | “Fiducial Marker *” [Title/Abstract] | |
11 | “Fiducial Target *” [Title/Abstract] | |
12 | “Anatomic Fiducial *” [Title/Abstract] | |
13 | “Implanted Fiducial *” [Title/Abstract] | |
14 | Surgery, Computer-Assisted [MeSH Terms] | |
15 | “Computer-Assisted Surger *” [Title/Abstract] | |
16 | “Computer-Aided Surger *” [Title/Abstract] | |
17 | “Surgical Navigation” [Title/Abstract] | |
18 | “Image-Guided Surger *” [Title/Abstract] | |
19 | (((((((((((((((((Image Processing, Computer-Assisted[MeSH Terms]) OR (“3D printing *”[Title/Abstract])) OR (“3D-printing *”[Title/Abstract])) OR (3-dimensional[Title/Abstract])) OR (“in-house 3D-printing”[Title/Abstract])) OR (“custom-made implant *”[Title/Abstract])) OR (Printing, Three-Dimensional[MeSH Terms])) OR (“Three-Dimensional Printing *”[Title/Abstract])) OR (Fiducial Markers[MeSH Terms])) OR (“Fiducial Marker *”[Title/Abstract])) OR (“Fiducial Target *”[Title/Abstract])) OR (“Anatomic Fiducial *”[Title/Abstract])) OR (“Implanted Fiducial *”[Title/Abstract])) OR (Surgery, Computer-Assisted[MeSH Terms])) OR (“Computer-Assisted Surger *”[Title/Abstract])) OR (“Computer-Aided Surger *”[Title/Abstract])) OR (“Surgical Navigation”[Title/Abstract])) OR (“Image-Guided Surger *”[Title/Abstract]) | |
20 | Patient-Specific Modeling [MeSH Terms] | |
21 | “personalized surger *” [Title/Abstract] | |
22 | “personalized reconstruction” [Title/Abstract] | |
23 | Microsurgery [MeSH Terms] | |
24 | Precision Medicine [MeSH Terms] | |
25 | “precision medicine” [Title/Abstract] | |
26 | “Individualized Medicine” [Title/Abstract] | |
27 | P-Health [Title/Abstract] | |
28 | “Predictive Medicine” [Title/Abstract] | |
29 | Theranostic *[Title/Abstract] | |
30 | Tissue Engineering [MeSH Terms] | |
31 | “Tissue Engineering” [Title/Abstract] | |
32 | (((((((((((Patient-Specific Modeling[MeSH Terms]) OR (“personalized surger *”[Title/Abstract])) OR (“personalized reconstruction”[Title/Abstract])) OR (Microsurgery[MeSH Terms])) OR (Precision Medicine[MeSH Terms])) OR (“precision medicine”[Title/Abstract])) OR (“Individualized Medicine”[Title/Abstract])) OR (P-Health[Title/Abstract])) OR (“Predictive Medicine”[Title/Abstract])) OR (Theranostic *[Title/Abstract])) OR (Tissue Engineering[MeSH Terms])) OR (“Tissue Engineering”[Title/Abstract]) | |
33 | “Tertiary Care Centers” [Mesh] | |
34 | Hospital *[Title/Abstract] | |
35 | “Operating Rooms” [Mesh] | |
36 | “Operating Room *” [Title/Abstract] | |
37 | (((“Tertiary Care Centers” [Mesh]) OR (hospital *[Title/Abstract])) OR (“Operating Rooms” [Mesh])) OR (“Operating Room *”[Title/Abstract]) | |
38 | (((((((((((((((((((Image Processing, Computer-Assisted[MeSH Terms]) OR (“3D printing *”[Title/Abstract])) OR (“3D-printing *”[Title/Abstract])) OR (3-dimensional[Title/Abstract])) OR (“in-house 3D-printing”[Title/Abstract])) OR (“custom-made implant *”[Title/Abstract])) OR (Printing, Three-Dimensional[MeSH Terms])) OR (“Three-Dimensional Printing *”[Title/Abstract])) OR (Fiducial Markers[MeSH Terms])) OR (“Fiducial Marker *”[Title/Abstract])) OR (“Fiducial Target *”[Title/Abstract])) OR (“Anatomic Fiducial *”[Title/Abstract])) OR (“Implanted Fiducial *”[Title/Abstract])) OR (Surgery, Computer-Assisted[MeSH Terms])) OR (“Computer-Assisted Surger *”[Title/Abstract])) OR (“Computer-Aided Surger *”[Title/Abstract])) OR (“Surgical Navigation”[Title/Abstract])) OR (“Image-Guided Surger *”[Title/Abstract])) AND ((((((((((((Patient-Specific Modeling[MeSH Terms]) OR (“personalized surger *”[Title/Abstract])) OR (“personalized reconstruction”[Title/Abstract])) OR (Microsurgery[MeSH Terms])) OR (Precision Medicine[MeSH Terms])) OR (“precision medicine”[Title/Abstract])) OR (“Individualized Medicine”[Title/Abstract])) OR (P-Health[Title/Abstract])) OR (“Predictive Medicine”[Title/Abstract])) OR (Theranostic *[Title/Abstract])) OR (Tissue Engineering[MeSH Terms])) OR (“Tissue Engineering”[Title/Abstract]))) AND ((((“Tertiary Care Centers”[Mesh]) OR (hospital *[Title/Abstract])) OR (“Operating Rooms”[Mesh])) OR (“Operating Room *”[Title/Abstract])) | |
39 | (((((((((((((((((((Image Processing, Computer-Assisted[MeSH Terms]) OR (“3D printing *”[Title/Abstract])) OR (“3D-printing *”[Title/Abstract])) OR (3-dimensional[Title/Abstract])) OR (“in-house 3D-printing”[Title/Abstract])) OR (“custom-made implant *”[Title/Abstract])) OR (Printing, Three-Dimensional[MeSH Terms])) OR (“Three-Dimensional Printing *”[Title/Abstract])) OR (Fiducial Markers[MeSH Terms])) OR (“Fiducial Marker *”[Title/Abstract])) OR (“Fiducial Target *”[Title/Abstract])) OR (“Anatomic Fiducial*”[Title/Abstract])) OR (“Implanted Fiducial *”[Title/Abstract])) OR (Surgery, Computer-Assisted[MeSH Terms])) OR (“Computer-Assisted Surger *”[Title/Abstract])) OR (“Computer-Aided Surger *”[Title/Abstract])) OR (“Surgical Navigation”[Title/Abstract])) OR (“Image-Guided Surger *”[Title/Abstract])) AND ((((((((((((Patient-Specific Modeling[MeSH Terms]) OR (“personalized surger *”[Title/Abstract])) OR (“personalized reconstruction”[Title/Abstract])) OR (Microsurgery[MeSH Terms])) OR (Precision Medicine[MeSH Terms])) OR (“precision medicine”[Title/Abstract])) OR (“Individualized Medicine”[Title/Abstract])) OR (P-Health[Title/Abstract])) OR (“Predictive Medicine”[Title/Abstract])) OR (Theranostic *[Title/Abstract])) OR (Tissue Engineering[MeSH Terms])) OR (“Tissue Engineering”[Title/Abstract]))) AND ((((“Tertiary Care Centers”[Mesh]) OR (hospital *[Title/Abstract])) OR (“Operating Rooms”[Mesh])) OR (“Operating Room *”[Title/Abstract])) | in the last 10 years |
40 | (((((((((((((((((((Image Processing, Computer-Assisted[MeSH Terms]) OR (“3D printing *”[Title/Abstract])) OR (“3D-printing *”[Title/Abstract])) OR (3-dimensional[Title/Abstract])) OR (“in-house 3D-printing”[Title/Abstract])) OR (“custom-made implant *”[Title/Abstract])) OR (Printing, Three-Dimensional[MeSH Terms])) OR (“Three-Dimensional Printing *”[Title/Abstract])) OR (Fiducial Markers[MeSH Terms])) OR (“Fiducial Marker *”[Title/Abstract])) OR (“Fiducial Target *”[Title/Abstract])) OR (“Anatomic Fiducial *”[Title/Abstract])) OR (“Implanted Fiducial *”[Title/Abstract])) OR (Surgery, Computer-Assisted[MeSH Terms])) OR (“Computer-Assisted Surger *”[Title/Abstract])) OR (“Computer-Aided Surger *”[Title/Abstract])) OR (“Surgical Navigation”[Title/Abstract])) OR (“Image-Guided Surger *”[Title/Abstract])) AND ((((((((((((Patient-Specific Modeling[MeSH Terms]) OR (“personalized surger *”[Title/Abstract])) OR (“personalized reconstruction”[Title/Abstract])) OR (Microsurgery[MeSH Terms])) OR (Precision Medicine[MeSH Terms])) OR (“precision medicine”[Title/Abstract])) OR (“Individualized Medicine”[Title/Abstract])) OR (P-Health[Title/Abstract])) OR (“Predictive Medicine”[Title/Abstract])) OR (Theranostic *[Title/Abstract])) OR (Tissue Engineering[MeSH Terms])) OR (“Tissue Engineering”[Title/Abstract]))) AND ((((“Tertiary Care Centers”[Mesh]) OR (hospital *[Title/Abstract])) OR (“Operating Rooms”[Mesh])) OR (“Operating Room *”[Title/Abstract])) | in the last 10 years, Humans |
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Indicator Area | Indicator | Definition |
---|---|---|
Quality of service and patient safety | Customized planning and design time (Planning and design stage) | Average time period from the moment the patient is chosen for PS until the design stage is completed |
Delivery time of customized elements (Manufacturing stage) | Average manufacturing time from the moment information is sent to the industry until the product is received at the 3D-LAB office | |
Surgical time (Treatment stage) | Average time from anesthetic induction to end of surgery | |
Graft ischemia time (in the event of PS with a microvascularized graft) (Treatment stage) | Average time period between the moment the graft is detached from its vessel in the donor site and the moment the anastomosis in the receptor area has been completed and its functionality has been confirmed | |
Change of surgical technique (Treatment stage) | Percentage of patients in whom we reverted to a conventional surgical technique out of the total of patients who underwent PS | |
Average ICU stay (Treatment stage) | ICU stay (days) after intervention | |
Average hospital stay (Treatment stage) | Average hospital stay until discharge after surgery | |
Post-surgical complications (Treatment stage) | Percentage of patients who suffer complications that arise from PS out of the total number of patients treated with PS [18] | |
Hospital readmission (Treatment stage) | Percentage of patients who are readmitted to hospital after discharge (48 h post surgery) for reasons related to the surgery out of the total number of discharged patients who underwent PS | |
Precision | Surgical precision | Degree of precision of the surgical technique (overlapping of pre- and post-surgical images). |
Precision of customized prosthetic elements | Fitting and alignment degree of customized prosthetic elements | |
Efficacy of the technique | Quality of life (QoL) | Quality of life (QoL) evaluation through tests and surveys [19] |
Process | Process indicators | Monitoring of compliance with all stages throughout the process using evaluation forms, as well as monitoring of compliance with the design processes |
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Pamias-Romero, J.; Masnou-Pratdesaba, J.; Sáez-Barba, M.; de-Pablo-García-Cuenca, A.; Siurana-Montilva, S.; Sala-Cunill, A.; Valls-Comamala, V.; Pujol-Pina, R.; Bescós-Atín, C. Personalized Surgery Service in a Tertiary Hospital: A Method to Increase Effectiveness, Precision, Safety and Quality in Maxillofacial Surgery Using Custom-Made 3D Prostheses and Implants. J. Clin. Med. 2022, 11, 4791. https://doi.org/10.3390/jcm11164791
Pamias-Romero J, Masnou-Pratdesaba J, Sáez-Barba M, de-Pablo-García-Cuenca A, Siurana-Montilva S, Sala-Cunill A, Valls-Comamala V, Pujol-Pina R, Bescós-Atín C. Personalized Surgery Service in a Tertiary Hospital: A Method to Increase Effectiveness, Precision, Safety and Quality in Maxillofacial Surgery Using Custom-Made 3D Prostheses and Implants. Journal of Clinical Medicine. 2022; 11(16):4791. https://doi.org/10.3390/jcm11164791
Chicago/Turabian StylePamias-Romero, Jorge, Joan Masnou-Pratdesaba, Manel Sáez-Barba, Alba de-Pablo-García-Cuenca, Sahyly Siurana-Montilva, Anna Sala-Cunill, Victòria Valls-Comamala, Rosa Pujol-Pina, and Coro Bescós-Atín. 2022. "Personalized Surgery Service in a Tertiary Hospital: A Method to Increase Effectiveness, Precision, Safety and Quality in Maxillofacial Surgery Using Custom-Made 3D Prostheses and Implants" Journal of Clinical Medicine 11, no. 16: 4791. https://doi.org/10.3390/jcm11164791
APA StylePamias-Romero, J., Masnou-Pratdesaba, J., Sáez-Barba, M., de-Pablo-García-Cuenca, A., Siurana-Montilva, S., Sala-Cunill, A., Valls-Comamala, V., Pujol-Pina, R., & Bescós-Atín, C. (2022). Personalized Surgery Service in a Tertiary Hospital: A Method to Increase Effectiveness, Precision, Safety and Quality in Maxillofacial Surgery Using Custom-Made 3D Prostheses and Implants. Journal of Clinical Medicine, 11(16), 4791. https://doi.org/10.3390/jcm11164791