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1.
J Appl Oral Sci ; 32: e20230440, 2024.
Article in English | MEDLINE | ID: mdl-38775557

ABSTRACT

This study aimed to compare the quality of root canal obturation (ratio of area occupied by gutta-percha (G), sealer (S), and presence of voids (V)) in different anatomical irregularities (intercanal communications, lateral irregularities, and accessory canals) located at different thirds of the root canal system of mandibular molar replicas. Sixty-seven 3D printed replicas of an accessed mandibular molar were prepared using ProGlider and ProTaper Gold rotatory systems. Three specimens were randomly selected to be used as controls and did not receive further treatment. The rest were randomly distributed in 4 experimental groups to be obturated using either cold lateral compaction (LC), continuous wave of condensation (CW), and core-carrier obturation (ThermafilPlus (TH) or GuttaCore (GC)) (n=16 per group). AHPlus® sealer was used in all groups. The three controls and a specimen from each experimental group were scanned using micro-computed tomography. The rest of the replicas were sectioned at the sites of anatomical irregularities and examined at 30× magnification. The G, S, and V ratios were calculated dividing the area occupied with each element by the total root canal area and then compared among groups using the Kruskal-Wallis test. Voids were present in all obturation techniques with ratios from 0.01 to 0.15. CW obtained a significantly higher G ratio in the irregularity located in the coronal third (0.882) than LC (0.681), TH (0.773), and GC (0.801) (p<0.05). TH and GC achieved significantly higher G ratios in those located in the apical third (p<0.05). The worst quality of obturation was observed in the loop accessory canal with all obturation techniques. Whitin the limitations of this study, it can be concluded that CW and core-carrier obturation are respectively the most effective techniques for obturating anatomical irregularities located in the coronal and the apical third.


Subject(s)
Dental Pulp Cavity , Gutta-Percha , Materials Testing , Root Canal Filling Materials , Root Canal Obturation , X-Ray Microtomography , Root Canal Obturation/methods , Root Canal Filling Materials/chemistry , X-Ray Microtomography/methods , Gutta-Percha/chemistry , Dental Pulp Cavity/anatomy & histology , Dental Pulp Cavity/diagnostic imaging , Humans , Reproducibility of Results , Reference Values , Molar/anatomy & histology , Epoxy Resins/chemistry , Printing, Three-Dimensional , Surface Properties , Statistics, Nonparametric , Random Allocation
2.
Int J Esthet Dent ; 19(2): 186-194, 2024 May 10.
Article in English | MEDLINE | ID: mdl-38726859

ABSTRACT

OBJECTIVE: A diagnostic mock-up is a key tool that allows a preview of the outcome of an esthetic restoration. With recent developments in CAD/CAM technology, it is important to understand the pros and cons of chairside digital dentistry and the restorative materials used. The aim of the present case report is to describe in detail the use of a 3D-printed mock-up fabricated from a polymer-based material for an esthetic treatment plan within a fully digital workflow. CASE REPORT: A 45-year-old female patient presented at the clinic concerned about her esthetic appearance and the color of her anterior incisors. After a conclusive diagnosis, a restoration was planned using ceramic veneers from maxillary premolar to premolar. For a preview visualization of the outcome, an intraoral scanner was used to obtain 3D images and to allow the design of a digital smile. The template STL file was exported to a 3D printer and a 0.6-mm mock-up in A3-shade 3D resin was produced after 25 min. The mock-up was tested through a try-in and approved by the patient. As a result, the printed mock-up was considered predictable and reliable for the final restoration. CONCLUSIONS: The ease, speed, and reduced costs derived from the digital workflow, in conjunction with the accuracy of the mock-up, made the procedure highly efficient and recommendable.


Subject(s)
Computer-Aided Design , Esthetics, Dental , Printing, Three-Dimensional , Humans , Female , Middle Aged , Dental Veneers , Dental Prosthesis Design/methods , Ceramics , Incisor/diagnostic imaging
3.
Jt Dis Relat Surg ; 35(2): 361-367, 2024 Mar 21.
Article in English | MEDLINE | ID: mdl-38727116

ABSTRACT

OBJECTIVES: This study aims to compare the radiological, biomechanical, and histopathological results of microfracture treatment and osteochondral damage repair treatment with a new scaffold product produced by the three-dimensional (3D) bioprinting method containing gelatin-hyaluronic acid-alginate in rabbits with osteochondral damage. MATERIALS AND METHODS: A new 3D bioprinted scaffold consisting of gelatin, hyaluronic acid, and alginate designed by us was implanted into the osteochondral defect created in the femoral trochlea of 10 rabbits. By randomization, it was determined which side of 10 rabbits would be repaired with a 3D bioprinted scaffold, and microfracture treatment was applied to the other knees of the rabbits. After six months of follow-up, the rabbits were sacrificed. The results of both treatment groups were compared radiologically, biomechanically, and histopathologically. RESULTS: None of the rabbits experienced any complications. The magnetic resonance imaging evaluation showed that all osteochondral defect areas were integrated with healthy cartilage in both groups. There was no significant difference between the groups in the biomechanical load test (p=0.579). No statistically significant difference was detected in the histological examination using the modified Wakitani scores (p=0.731). CONCLUSION: Our study results showed that 3D bioprinted scaffolds exhibited comparable radiological, biomechanical, and histological properties to the conventional microfracture technique for osteochondral defect treatment.


Subject(s)
Alginates , Bioprinting , Cartilage, Articular , Gelatin , Hyaluronic Acid , Knee Joint , Printing, Three-Dimensional , Tissue Scaffolds , Animals , Rabbits , Alginates/chemistry , Gelatin/chemistry , Hyaluronic Acid/chemistry , Hyaluronic Acid/therapeutic use , Tissue Scaffolds/chemistry , Cartilage, Articular/pathology , Cartilage, Articular/injuries , Cartilage, Articular/surgery , Knee Joint/surgery , Knee Joint/pathology , Bioprinting/methods , Disease Models, Animal , Biomechanical Phenomena , Magnetic Resonance Imaging , Arthroplasty, Subchondral/methods
5.
Biomed Mater ; 19(4)2024 May 17.
Article in English | MEDLINE | ID: mdl-38756029

ABSTRACT

Hard tissue engineering scaffolds especially 3D printed scaffolds were considered an excellent strategy for craniomaxillofacial hard tissue regeneration, involving crania and facial bones and teeth. Porcine treated dentin matrix (pTDM) as xenogeneic extracellular matrix has the potential to promote the stem cell differentiation and mineralization as it contains plenty of bioactive factors similar with human-derived dentin tissue. However, its application might be impeded by the foreign body response induced by the damage-associated molecular patterns of pTDM, which would cause strong inflammation and hinder the regeneration. Ceria nanoparticles (CNPs) show a great promise at protecting tissue from oxidative stress and influence the macrophages polarization. Using 3D-bioprinting technology, we fabricated a xenogeneic hard tissue scaffold based on pTDM xenogeneic TDM-polycaprolactone (xTDM/PCL) and we modified the scaffolds by CNPs (xTDM/PCL/CNPs). Through series ofin vitroverification, we found xTDM/PCL/CNPs scaffolds held promise at up-regulating the expression of osteogenesis and odontogenesis related genes including collagen type 1, Runt-related transcription factor 2 (RUNX2), bone morphogenetic protein-2, osteoprotegerin, alkaline phosphatase (ALP) and DMP1 and inducing macrophages to polarize to M2 phenotype. Regeneration of bone tissues was further evaluated in rats by conducting the models of mandibular and skull bone defects. Thein vivoevaluation showed that xTDM/PCL/CNPs scaffolds could promote the bone tissue regeneration by up-regulating the expression of osteogenic genes involving ALP, RUNX2 and bone sialoprotein 2 and macrophage polarization into M2. Regeneration of teeth evaluated on beagles demonstrated that xTDM/PCL/CNPs scaffolds expedited the calcification inside the scaffolds and helped form periodontal ligament-like tissues surrounding the scaffolds.


Subject(s)
Cerium , Extracellular Matrix , Nanoparticles , Osteogenesis , Printing, Three-Dimensional , Tissue Engineering , Tissue Scaffolds , Animals , Tissue Scaffolds/chemistry , Tissue Engineering/methods , Swine , Extracellular Matrix/metabolism , Cerium/chemistry , Nanoparticles/chemistry , Rats , Polyesters/chemistry , Dentin/chemistry , Humans , Bone Regeneration/drug effects , Odontogenesis , Cell Differentiation , Regeneration , Macrophages/metabolism , Skull , Rats, Sprague-Dawley
6.
BMC Surg ; 24(1): 148, 2024 May 11.
Article in English | MEDLINE | ID: mdl-38734630

ABSTRACT

BACKGROUND & AIMS: Complications after laparoscopic liver resection (LLR) are important factors affecting the prognosis of patients, especially for complex hepatobiliary diseases. The present study aimed to evaluate the value of a three-dimensional (3D) printed dry-laboratory model in the precise planning of LLR for complex hepatobiliary diseases. METHODS: Patients with complex hepatobiliary diseases who underwent LLR were preoperatively enrolled, and divided into two groups according to whether using a 3D-printed dry-laboratory model (3D vs. control group). Clinical variables were assessed and complications were graded by the Clavien-Dindo classification. The Comprehensive Complication Index (CCI) scores were calculated and compared for each patient. Multivariable analysis was performed to determine the risk factors of postoperative complications. RESULTS: Sixty-two patients with complex hepatobiliary diseases underwent the precise planning of LLR. Among them, thirty-one patients acquired the guidance of a 3D-printed dry-laboratory model, and others were only guided by traditional enhanced CT or MRI. The results showed no significant differences between the two groups in baseline characters. However, compared to the control group, the 3D group had a lower incidence of intraoperative blood loss, as well as postoperative 30-day and major complications, especially bile leakage (all P < 0.05). The median score on the CCI was 20.9 (range 8.7-51.8) in the control group and 8.7 (range 8.7-43.4) in the 3D group (mean difference, -12.2, P = 0.004). Multivariable analysis showed the 3D model was an independent protective factor in decreasing postoperative complications. Subgroup analysis also showed that a 3D model could decrease postoperative complications, especially for bile leakage in patients with intrahepatic cholelithiasis. CONCLUSION: The 3D-printed models can help reduce postoperative complications. The 3D-printed models should be recommended for patients with complex hepatobiliary diseases undergoing precise planning LLR.


Subject(s)
Laparoscopy , Liver Diseases , Postoperative Complications , Printing, Three-Dimensional , Humans , Female , Male , Middle Aged , Laparoscopy/methods , Laparoscopy/adverse effects , Postoperative Complications/prevention & control , Postoperative Complications/etiology , Liver Diseases/surgery , Aged , Biliary Tract Diseases/prevention & control , Biliary Tract Diseases/surgery , Biliary Tract Diseases/etiology , Hepatectomy/methods , Hepatectomy/adverse effects , Adult , Retrospective Studies , Cohort Studies
7.
Bull Hosp Jt Dis (2013) ; 82(2): 159-163, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38739665

ABSTRACT

Ankle arthritis is becoming more common and can be pain-ful and debilitating. As the disease progresses, degenera-tive cystic changes may be found in the distal fibula, distal tibia, and talus. After failure of non-operative modalities, arthrodesis is often considered the surgical intervention of choice, but this leaves the patient with reduced range of motion, altered gait, and can negatively impact adjacent joints of the foot. Total ankle arthroplasty has been found to be an effective surgical option for ankle arthritis but is contraindicated in patients with talar collapse. When this is the case, a more personalized approach for preserving ankle motion is necessary. We present the case of a 65-year-old male with severe right ankle arthritis and talar collapse treated with a custom three-dimensionally printed talus and concurrent total ankle replacement with 2-year follow-up.


Subject(s)
Ankle Joint , Arthroplasty, Replacement, Ankle , Joint Prosthesis , Osteoarthritis , Printing, Three-Dimensional , Prosthesis Design , Talus , Humans , Male , Arthroplasty, Replacement, Ankle/methods , Arthroplasty, Replacement, Ankle/instrumentation , Aged , Osteoarthritis/surgery , Osteoarthritis/physiopathology , Osteoarthritis/diagnostic imaging , Talus/surgery , Talus/diagnostic imaging , Talus/physiopathology , Ankle Joint/surgery , Ankle Joint/diagnostic imaging , Ankle Joint/physiopathology , Treatment Outcome , Range of Motion, Articular
8.
Biomed Phys Eng Express ; 10(4)2024 May 14.
Article in English | MEDLINE | ID: mdl-38697045

ABSTRACT

Whole-body counters (WBC) are used in internal dosimetry forin vivomonitoring in radiation protection. The calibration processes of a WBC set-up include the measurement of a physical phantom filled with a certificate radioactive source that usually is referred to a standard set of individuals determined by the International Commission on Radiological Protection (ICRP). The aim of this study was to develop an anthropomorphic and anthropometric female physical phantom for the calibration of the WBC systems. The reference female computational phantom of the ICRP, now called RFPID (Reference Female Phantom for Internal Dosimetry) was printed using PLA filament and with an empty interior. The goal is to use the RFPID to reduce the uncertainties associated within vivomonitoring system. The images which generated the phantom were manipulated using ImageJ®, Amide®, GIMP®and the 3D Slicer®software. RFPID was split into several parts and printed using a 3D printer in order to print the whole-body phantom. The newly printed physical phantom RFPID was successfully fabricated, and it is suitable to mimic human tissue, anatomically similar to a human body i.e., size, shape, material composition, and density.


Subject(s)
Phantoms, Imaging , Printing, Three-Dimensional , Whole-Body Counting , Humans , Female , Whole-Body Counting/methods , Calibration , Radiation Protection/methods , Radiation Protection/instrumentation , Radiometry/methods , Radiometry/instrumentation , Anthropometry
9.
BMC Oral Health ; 24(1): 554, 2024 May 12.
Article in English | MEDLINE | ID: mdl-38735924

ABSTRACT

This in vitro study compared various obturation techniques with bioceramic sealers for filling C-shaped 3D-printed replicas. A mandibular molar with a C-shaped root canal with a C1 configuration was obtained. After instrumenting with M3 Pro Gold files (United Dental, Shanghai, China) up to size #30/0.04, a CBCT scan of the tooth was taken. Sixty 3D-printed replicas of the tooth were created. The samples were obturated with EndoSeal TCS sealer (E. TCS; Maruchi, Wonju, Korea) or EndoSeal MTA (E. MTA; Maruchi, Wonju, Korea) (n = 30). The samples in each group were obturated with the following techniques (n = 10): (1) single-cone technique (SC), (2) SC with ultrasonic activation (UA), and (3) cold hydraulic compaction (CHC). Following incubation, the replicas' apical, middle, and coronal thirds were inspected under a digital microscope, and the proportion of filling material and void were calculated. Also, the obturation time and sealer extrusion were recorded. Data were analyzed using ANOVA, LSD post-hoc, and the chi-square tests (α = 0.05). The results indicated that in the apical third, E. TCS-SC, E. TCS-UA, and E. MTA-UA had the lowest void percentage among groups (p < 0.05). In the middle thirds, samples obturated with E. TCS-UA showed a significantly lower void percentage among all groups (p < 0.05). However, in the coronal third, E. TCS-CHC showed the least void percentage (p < 0.05), followed by E. TCS-UA and E. MTA-CHC. The E. TCS-SC and E. TCS-UA were the least time-consuming methods (p < 0.05). Sealer extrusion significantly differed among the groups, with E. MTA-UA and E. TCS-UA showing higher incidence (p = 0.019). It was concluded that E. TCS-UA was the most convenient obturation technique. However, care must be taken when obturating the canals with high flow and ultrasonic activation near the vital anatomical landmarks.


Subject(s)
Printing, Three-Dimensional , Root Canal Filling Materials , Root Canal Obturation , Root Canal Obturation/methods , Humans , Drug Combinations , Molar/diagnostic imaging , In Vitro Techniques , Calcium Compounds , Oxides , Dental Pulp Cavity/diagnostic imaging , Aluminum Compounds , Cone-Beam Computed Tomography/methods , Silicates
10.
BMC Oral Health ; 24(1): 555, 2024 May 12.
Article in English | MEDLINE | ID: mdl-38735948

ABSTRACT

OBJECTIVE: This study aimed to evaluate the effect of fence tray matching care (FTMC) in bracket bonding by measuring excess adhesive, as well as linear and angular deviations, and by comparing it with the half-wrapped tray (HWT). MATERIALS AND METHODS: An intraoral scanner was used to acquire data on the maxillary dental arch of a patient with periodontitis.Furthermore, 20 maxillary dental arch models were 3D printed. Using 3Shape, PlastyCAD software, and 3D printing technology, 10 FTMC (method I) and HWT (method II) were obtained. By preoperative preparation, intraoperative coordination, and postoperative measurement, the brackets were transferred from the trays to the 3D-printed maxillary dental arch models. Additionally, the bracket's excess adhesive as well as linear and angular deviations were measured, and the differences between the two methods were analyzed. RESULTS: Excess adhesive was observed in both methods, with FTMC showing less adhesive (P< 0.001), with a statistical difference. Furthermore, HWT's vertical, tip and torque, which was significantly greater than FTMC (P< 0.05), with no statistical difference among other respects. The study data of incisors, canines, and premolars, showed that the premolars had more adhesive residue and were more likely to have linear and angular deviations. CONCLUSIONS: The FTMC had higher bracket bonding effect in comparison to HWT, and the adhesive residue, linear and angular deviations are smaller. The fence tray offers an intuitive view of the precise bonding of the bracket, and can remove excess adhesive to prevent white spot lesions via care, providing a different bonding method for clinical applications.


Subject(s)
Dental Bonding , Orthodontic Brackets , Humans , Dental Bonding/methods , In Vitro Techniques , Models, Dental , Adhesives , Printing, Three-Dimensional , Dental Cements , Dental Arch
11.
J Plast Surg Hand Surg ; 59: 46-52, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38747532

ABSTRACT

Standard volar plates often do not fit the surface of the malunited distal radius after osteotomy, necessitating an offset angle for accurate volar tilt correction. The correction can be achieved if the plate is held at the correct angle when the distal screws are locked. With the advantage of 3D surgical planning and patient-specific instruments, we developed a shim instrument to assist the surgeon in securing the plate at the intended angle when locking the distal screws, and evaluated radiological results. Five female patients aged 63-74 with dorsally angulated extra-articular malunions underwent surgery using 3D-printed guides and the shim instrument. The plate position, drilling guide alignment, screw placements, and distal radius correction on postoperative CTs were compared with the surgical plans. Errors were measured using an anatomical coordinate system, and standard 2D radiographic measures were extracted. Preoperative dorsal tilt ranged from 16° to 35°, and postoperative volar tilt from 1° to 11°. 3D analysis revealed mean absolute correction errors of 6.1° in volar tilt, 1.6° in radial inclination, and 0.6 mm in ulnar variance. The volar tilt error due to the shim instrument, indicated by the mean angle error of the distal screws to the plate, was 2.1° but varied across the five patients. Settling of the distal radius, due to tension during and after reduction, further contributed to a mean loss of 3.5° in volar tilt. The shim instrument helped with securing plates at the intended angle; however, further correction improvements should consider the tension between the fragments of osteoporotic bone.


Subject(s)
Bone Plates , Fracture Fixation, Internal , Fractures, Malunited , Osteotomy , Radius Fractures , Humans , Female , Osteotomy/methods , Osteotomy/instrumentation , Middle Aged , Radius Fractures/surgery , Radius Fractures/diagnostic imaging , Aged , Fractures, Malunited/surgery , Fractures, Malunited/diagnostic imaging , Fracture Fixation, Internal/instrumentation , Fracture Fixation, Internal/methods , Printing, Three-Dimensional , Surgery, Computer-Assisted , Imaging, Three-Dimensional , Bone Screws , Tomography, X-Ray Computed
12.
Biomed Mater ; 19(4)2024 May 15.
Article in English | MEDLINE | ID: mdl-38697199

ABSTRACT

Porous tantalum scaffolds offer a high degree of biocompatibility and have a low friction coefficient. In addition, their biomimetic porous structure and mechanical properties, which closely resemble human bone tissue, make them a popular area of research in the field of bone defect repair. With the rapid advancement of additive manufacturing, 3D-printed porous tantalum scaffolds have increasingly emerged in recent years, offering exceptional design flexibility, as well as facilitating the fabrication of intricate geometries and complex pore structures that similar to human anatomy. This review provides a comprehensive description of the techniques, procedures, and specific parameters involved in the 3D printing of porous tantalum scaffolds. Concurrently, the review provides a summary of the mechanical properties, osteogenesis and antibacterial properties of porous tantalum scaffolds. The use of surface modification techniques and the drug carriers can enhance the characteristics of porous tantalum scaffolds. Accordingly, the review discusses the application of these porous tantalum materials in clinical settings. Multiple studies have demonstrated that 3D-printed porous tantalum scaffolds exhibit exceptional corrosion resistance, biocompatibility, and osteogenic properties. As a result, they are considered highly suitable biomaterials for repairing bone defects. Despite the rapid development of 3D-printed porous tantalum scaffolds, they still encounter challenges and issues when used as bone defect implants in clinical applications. Ultimately, a concise overview of the primary challenges faced by 3D-printed porous tantalum scaffolds is offered, and corresponding insights to promote further exploration and advancement in this domain are presented.


Subject(s)
Biocompatible Materials , Bone Substitutes , Bone and Bones , Osteogenesis , Printing, Three-Dimensional , Tantalum , Tissue Engineering , Tissue Scaffolds , Tantalum/chemistry , Tissue Scaffolds/chemistry , Porosity , Humans , Biocompatible Materials/chemistry , Tissue Engineering/methods , Animals , Bone Substitutes/chemistry , Materials Testing , Bone Regeneration
13.
Mikrochim Acta ; 191(6): 310, 2024 05 08.
Article in English | MEDLINE | ID: mdl-38714566

ABSTRACT

A ratiometric fluorescence sensor has been established based on dual-excitation carbon dots (D-CDs) for the detection of flavonoids (morin is chosen as the typical detecting model for flavonoids). D-CDs were prepared using microwave radiation with o-phenylenediamine and melamine and exhibit controllable dual-excitation behavior through the regulation of their concentration. Remarkably, the short-wavelength excitation of D-CDs can be quenched by morin owing to the inner filter effect, while the long-wavelength excitation remains insensitive, serving as the reference signal. This contributes to the successful design of an excitation-based ratiometric sensor. Based on the distinct and differentiated variation of excitation intensity, morin can be determined from 0.156 to 110 µM with a low detection limit of 0.156 µM. In addition, an intelligent and visually lateral flow sensing device is developed for the determination  of morin content in real samples with satisfying recoveries, which indicates the potential application for human health monitoring.


Subject(s)
Carbon , Flavonoids , Limit of Detection , Nitrogen , Printing, Three-Dimensional , Quantum Dots , Spectrometry, Fluorescence , Flavonoids/analysis , Flavonoids/chemistry , Carbon/chemistry , Quantum Dots/chemistry , Spectrometry, Fluorescence/methods , Nitrogen/chemistry , Fluorescent Dyes/chemistry , Humans , Flavones
14.
BMC Med Educ ; 24(1): 499, 2024 May 05.
Article in English | MEDLINE | ID: mdl-38705981

ABSTRACT

AIMS: This study aimed to investigate the feasibility and effectiveness of utilizing three-dimensional (3D) printing technology in the simulation teaching of congenital malformations. METHODS: We conducted a comparative analysis between an experimental group that received traditional teaching supplemented with 3D printing model demonstrations and hands-on model operation, and a control group that received traditional teaching methods. Various parameters, including classroom interest, classroom interaction, learning enthusiasm, disease awareness, teaching satisfaction, and independent operation confidence, were assessed, along with theoretical and practical tests. RESULTS: The results showed no significant difference in theoretical test scores between the two groups (91.92 ± 15.04 vs. 89.44 ± 14.89), but the practical test revealed a significantly higher number of qualified trainees in the experimental group compared to the control group (23 vs. 8). In terms of classroom engagement, both groups exhibited similar levels of interest (8.08 ± 1.52 vs. 8.74 ± 0.984), classroom interaction (7.88 ± 1.97 vs. 8.7 ± 1.33), learning enthusiasm (8.81 ± 1.021 vs. 8.52 ± 1.189), and disease awareness (8.58 ± 0.99 vs. 8.58 ± 0.99). However, the experimental group demonstrated significantly higher teaching satisfaction (8.81 ± 1.06 vs. 9.19 ± 0.96) and greater operation confidence (7.67 ± 2.56 vs. 5.5 ± 2.79) than the control group. CONCLUSION: 3D printing technology can be effectively utilized to create surgical teaching models, enhancing the confidence of standardized training doctors and improving teaching outcomes.


Subject(s)
Congenital Abnormalities , Feasibility Studies , Printing, Three-Dimensional , Simulation Training , Humans , Models, Anatomic , Educational Measurement , Male , Female
15.
PLoS One ; 19(5): e0301099, 2024.
Article in English | MEDLINE | ID: mdl-38728291

ABSTRACT

Beyond the smallest organisms, animals rely on tubes to transport cells, oxygen, nutrients, waste products, and a great variety of secretions. The cardiovascular system, lungs, gastrointestinal and genitourinary tracts, as well as major exocrine glands, are all composed of tubes. Paradoxically, despite their ubiquitous importance, most existing devices designed to study tubes are relatively complex to manufacture and/or utilize. The present work describes a simple method for generating tubes in vitro using nothing more than a low-cost 3D printer along with general lab supplies. The technology is termed "TruD", an acronym for true dimensional. Using this technology, it is readily feasible to cast tubes embedded in ECM with easy access to the lumen. The design is modular to permit more complex tube arrangements and to sustain flow. Importantly, by virtue of its simplicity, TruD technology enables typical molecular cell biology experiments where multiple conditions are assayed in replicate.


Subject(s)
Printing, Three-Dimensional , Humans , Animals , Printing, Three-Dimensional/instrumentation , Endothelial Cells/cytology , Endothelial Cells/metabolism
16.
J Orthop Surg Res ; 19(1): 273, 2024 May 02.
Article in English | MEDLINE | ID: mdl-38698477

ABSTRACT

BACKGROUND: Talar malignant tumor is extremely rare. Currently, there are several alternative management options for talus malignant tumor including below-knee amputation, tibio-calcaneal arthrodesis, and homogenous bone transplant while their shortcomings limited the clinical application. Three-dimensional (3D) printed total talus prosthesis in talus lesion was reported as a useful method to reconstruct talus, however, most researches are case reports and its clinical effect remains unclear. Therefore, the current study was to explore the application of 3D printed custom-made modular prosthesis in talus malignant tumor. METHODS: We retrospectively analyzed the patients who received the 3D printed custom-made modular prosthesis treatment due to talus malignant tumor in our hospital from February 2016 to December 2021. The patient's clinical data such as oncology outcome, operation time, and volume of blood loss were recorded. The limb function was evaluated with the Musculoskeletal Tumor Society 93 (MSTS-93) score, The American Orthopedic Foot and Ankle Society (AOFAS) score; the ankle joint ranges of motion as well as the leg length discrepancy were evaluated. Plain radiography and Tomosynthesis-Shimadzu Metal Artefact Reduction Technology (T-SMART) were used to evaluate the position of prosthesis and the osseointegration. Postoperative complications were recorded. RESULTS: The average patients' age and the follow-up period were respectively 31.5 ± 13.1 years; and 54.8 months (range 26-72). The medium operation time was 2.4 ± 0.5 h; the intraoperative blood loss was 131.7 ± 121.4 ml. The mean MSTS-93 and AOFAS score was 26.8 and 88.5 respectively. The average plantar flexion, dorsiflexion, varus, and valgus were 32.5, 9.2, 10.8, and 5.8 degree respectively. One patient had delayed postoperative wound healing. There was no leg length discrepancy observed in any patient and good osseointegration was observed on the interface between the bone and talus prosthesis in all subjects. CONCLUSION: The modular structure of the prosthesis developed in this study seems to be convenient for prosthesis implantation and screws distribution. And the combination of solid and porous structure improves the initial stability and promotes bone integration. Therefore, 3D printed custom-made modular talus prosthesis could be an alternative option for talus reconstruction in talus malignant tumor patients.


Subject(s)
Bone Neoplasms , Printing, Three-Dimensional , Prosthesis Design , Talus , Humans , Talus/surgery , Talus/diagnostic imaging , Male , Adult , Female , Bone Neoplasms/surgery , Bone Neoplasms/diagnostic imaging , Retrospective Studies , Middle Aged , Young Adult , Prosthesis Implantation/methods , Prosthesis Implantation/instrumentation , Adolescent , Ankle Joint/surgery , Ankle Joint/diagnostic imaging , Osseointegration , Treatment Outcome , Range of Motion, Articular , Prostheses and Implants
17.
Eur Rev Med Pharmacol Sci ; 28(8): 3208-3215, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38708479

ABSTRACT

OBJECTIVE: We sought to explore the effectiveness of cannulated screw fixation for femoral neck fractures in middle-aged and elderly patients assisted by a three-dimensional printing navigation template. PATIENTS AND METHODS: A total of 98 middle-aged and elderly patients who underwent cannulated screw fixation for femoral neck fractures were retrospectively analyzed. They were allocated into two groups, each comprising 49 patients. Surgical indexes, hip function, and pain levels were compared between the two groups. RESULTS: The study group, assisted by the three-dimensional printing navigation template, exhibited significantly reduced nail insertion, fewer instances of C-arm fluoroscopy, shorter operation time, quicker time to bone union, earlier initiation of walking exercise, shorter time to weight-bearing walking, and reduced hospital stay than those in the control group (all p<0.001). However, the study group also experienced higher blood loss compared to the control group (p<0.001). Postoperatively, at 3 months and 12 months, the study group demonstrated significantly higher scores compared to the control group (both p<0.001) and reported significantly lower pain scores than that in the other group at 1 week and 12 months post-surgery (both p<0.001). Furthermore, the study group experienced significantly fewer postoperative complications than the control group (p=0.029). CONCLUSIONS: Cannulated screw fixation for femoral neck fractures assisted by a 3D printing navigation template is more effective and safer than traditional fixation methods. This approach represents a promising alternative for surgical management.


Subject(s)
Bone Screws , Femoral Neck Fractures , Fracture Fixation, Internal , Printing, Three-Dimensional , Humans , Femoral Neck Fractures/surgery , Middle Aged , Aged , Female , Male , Fracture Fixation, Internal/methods , Fracture Fixation, Internal/instrumentation , Retrospective Studies
18.
J Vis Exp ; (206)2024 Apr 19.
Article in English | MEDLINE | ID: mdl-38709053

ABSTRACT

Hip dysplasia causes major disability in dogs. Treatment options are limited to palliative treatment (e.g., pain relief, physical exercise, lifestyle changes, and weight control) or invasive surgeries such as pelvic osteotomies and total hip arthroplasty. Hence, a strong unmet need exists for an effective and dog-friendly solution that enhances the quality of life of man's best friend. We fill this treatment gap by offering a minimally traumatic and extraarticular, dog-specific, 3-dimensional-printed, hip implant (3DHIP) that restores hip joint stability. The surgical treatment using a 3DHIP implant is less invasive than osteotomies and can be performed bilaterally in one surgical session. The 3DHIP implant extends the dorsal acetabular rim of the dysplastic hip joint thereby increasing coverage of the femoral head and inhibiting joint subluxation with fast recovery. Sufficient access to the dorsal acetabular rim and ventral border of the iliac body together with optimal fitting and fixation of the implant are key steps for a successful 3DHIP implantation and imply the need for a specific approach. The present article aims to showcase this innovative surgical technique with tips and tricks as a surgical manual for implantation of the 3DHIP implant in dogs affected by hip dysplasia.


Subject(s)
Hip Dysplasia, Canine , Hip Prosthesis , Printing, Three-Dimensional , Dogs , Animals , Hip Dysplasia, Canine/surgery
19.
Sci Rep ; 14(1): 11489, 2024 05 20.
Article in English | MEDLINE | ID: mdl-38769358

ABSTRACT

We developed a 3D-printed thoracoscopic surgery simulator for esophageal atresia with tracheoesophageal fistula (EA-TEF) and assessed its effectiveness in educating young pediatric surgeons. Prototype production and modifications were repeated five times before producing the 3-D printed final product based on a patient's preoperative chest computed tomography. A 24-item survey was used to rate the simulator, adapted from a previous report, with 16 young surgeons with an average of 6.2 years of experience in pediatric surgery for validation. Reusable parts of the thoracic cage were printed to combine with replaceable parts. Each structure was fabricated using diverse printing materials, and subsequently affixed to a frame. In evaluating the simulator, the scores for each factor were 4.33, 4.33, 4.27, 4.31, 4.63, and 4.75 out of 5, respectively, with the highest ratings in value and relevance. The global rating was 3.38 out of 4, with ten stating that it could be used with slight improvements. The most common comment from participants was that the esophageal anastomosis was close to the actual EA-TEF surgery. The 3D-printed thoracoscopic EA-TEF surgery simulator was developed and reflected the actual surgical environment. It could become an effective method of training young pediatric surgeons.


Subject(s)
Esophageal Atresia , Printing, Three-Dimensional , Surgeons , Thoracoscopy , Tracheoesophageal Fistula , Esophageal Atresia/surgery , Esophageal Atresia/diagnostic imaging , Tracheoesophageal Fistula/surgery , Humans , Thoracoscopy/methods , Surgeons/education , Simulation Training/methods , Models, Anatomic
20.
Sheng Wu Gong Cheng Xue Bao ; 40(5): 1469-1485, 2024 May 25.
Article in Chinese | MEDLINE | ID: mdl-38783809

ABSTRACT

Ovarian tissue cryopreservation (OTC) is currently the exclusive choice for preserving fertility in both young girls before reaching puberty and young women who require immediate chemotherapy. Ovarian tissue transplantation has proven to be effective in restoring hormonal cycles and fertility. However, in certain cancer cases, there is a potential risk of inadvertently reintroducing malignant cells when transplanting cryopreserved ovarian tissue. Therefore, the use of an artificial ovary as an innovative and complementary approach allows for the development of isolated follicles, facilitates oocyte maturation and ovulation, and can partially restore endocrine function. This paper presents a comprehensive overview of techniques used to preserve fertility in natural ovarian tissues, including slow freezing, vitrification and hydrogel encapsulation methods. Additionally, it reviews fertility preservation techniques for artificial ovarian tissues, such as strategies involving hydrogel-encapsulated follicle, scaffolding for constructing ovarian microtissues, and 3D printing engineering. Lastly, this article explores current challenges and difficulties encountered in preserving ovarian tissue fertility, while also anticipating future trends in development, making it a valuable reference for the implementation of ovarian tissue fertility preservation.


Subject(s)
Cryopreservation , Fertility Preservation , Ovary , Female , Fertility Preservation/methods , Humans , Cryopreservation/methods , Hydrogels , Vitrification , Artificial Organs , Ovarian Follicle , Oocytes , Printing, Three-Dimensional
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