Objectives: Iliosacral screw pathways in the first (S1) and second (S2) sacral segments are commonly used for adult pelvic ring stabilization. We hypothesize that radiographically "safe" pathways exist in pediatric patients.
Setting: Academic level I Trauma Center.
Patients: All patients between ages 2 and 16 years with a computed tomography scan including the pelvis obtained over a 6-week period (174 children, mean age 10.8 ± 3.9 years; 90 boys, 84 girls).
Intervention: The width and height at the "constriction point" in 3 safe screw pathways were measured bilaterally by 3 orthopaedists (resident, trauma fellow, trauma attending). Pathways corresponding to: (1) an "iliosacral" screw at S1, a "trans-sacral trans-iliac" (TSTI) screw at S1, and a TSTI screw at S2.
Main Outcome Measurements: (1) Mean width and height of pathways, (2) interrater reliability coefficient, (3) availability of pathways greater than 7 mm, (4) growth of pathways with age, (5) sacral morphology.
Results: The interrater reliability coefficient was above 0.917 for all measurements. Radiographically safe pathways were available for 99%, 51%, and 89% of children for iliosacral screws at S1 (width 16.4 ± 2.8 mm, height 15.1 ± 3.3 mm), TSTI screws at S1 (width 7.2 ± 4.9 mm, height 8.3 ± 5.6 mm), and TSTI at S2 (width 9.3 ± 2.2 mm, height 11.5 ± 2.7 mm), respectively.
Conclusions: Contrary to our hypothesis, almost all children aged 2-16 had a radiographically safe screw pathway for an iliosacral screw at S1, and most of the children had an available pathway for a TSTI screw at S2. However, only 51% had a pathway for a TSTI screw at S1.
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http://dx.doi.org/10.1097/BOT.0000000000000421 | DOI Listing |
MethodsX
June 2025
Department of Materials Science and Engineering, Norwegian University of Science and Technology (NTNU), NO-7491, Trondheim, Norway.
Construction and experimental validation of electrochemical cells with multiple electrodes in a microfluidic channel is described. Details of the fabrication of the electrodes and polydimethylsiloxane channel using soft lithography methods are given. Calibration of the collection efficiencies and transit times between electrodes validate the use of these cells for fast electrochemical detection of soluble species.
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January 2025
Zhejiang Key Laboratory of 3D Micro/Nano Fabrication and Characterization, School of Engineering, Westlake University, Hangzhou, Zhejiang 310030, China.
High-energy electron beam exposure is generally recognized as the standard for achieving high-precision nanofabrication. Low-energy electron beam exposure techniques offer advantages in 3D manufacturing; however, they have received limited attention in traditional processes due to precision limitations and insufficient exposure, leading to an underestimation of their potential. In this article, we introduce a nanofabrication strategy using low-energy electrons in ice-assisted electron-beam lithography (iEBL) alleviating the compatibility issue between resolution and quasi-3D manufacturing.
View Article and Find Full Text PDFToxicon
January 2025
Federal University of Santa Maria, Laboratory of Mycotoxicological Analyses, Santa Maria, Rio Grande do Sul, Brazil. Electronic address:
This study was conducted to assess the effects of fumonisin B (FB) on the jejunum of pigs using a novel ex vivo model conducted in parallel with an in vivo trial. For the in vivo model, twelve male 28 to 70-days-old pigs were subjected to two treatments of six animals each: the control group, fed a basal diet (BD), and the FB group, fed the BD + 50 mg/kg FB. At 70 days, the animals were slaughtered and one jejunal sample was collected from each pig for further histopathological analyses.
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4th Division, Peking University School and Hospital of Stomatology & National Center for Stomatology & National Clinical Research Center for Oral Diseases & National Engineering Research Center of Oral Biomaterials and Digital Medical Devices, No. 22, Zhongguancun South Avenue, Haidian District, Beijing, 100081, People's Republic of China.
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J Clin Med
January 2025
Department of Orthopaedics, Phramongkutklao Hospital and College of Medicine, Bangkok 10400, Thailand.
Injuries involving the Atlas (C1) and Axis (C2) vertebrae of the cervical spine present significant clinical challenges due to their complex anatomy and potential for severe neurological impairment. Traditional imaging methods often lack the detailed visualization required for precise surgical planning. This study aimed to develop high-resolution 3D models of the C1 and C2 vertebrae to perform a comprehensive morphometric analysis, identify gender differences, and assess bilateral symmetry to enhance surgical accuracy.
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