Veterinary ultrasonography is a complex, advanced skill requiring repetitive exposure and supervision to gain competence. Consequently, newly graduated veterinarians are underprepared and lack the resources to achieve basic ultrasound proficiency upon graduation. Ultrasound simulation has been proposed as an adjunct educational tool for teaching entry-level ultrasound skills to student veterinarians. The objectives of this multicentric prospective observational cohort study were to describe the development of a novel ultrasound training model, establish model construct and face validity, and seek participant feedback. The model was constructed using three-dimensional silicone shapes embedded in ballistics gel within a glass container. A novice cohort of 15 veterinary students and 14 expert participants were prospectively enrolled in the study. Each cohort underwent training and assessment phases using a simulation model. Participants were asked to (a) determine shape location, (b) identify shape type using a shape bank, and (c) measure shape axes using the caliper tool. Time for each phase was recorded. Anonymous post-participation survey feedback was obtained. For most shapes (4/6), experts performed significantly better than novices in identifying shape type and location. Generally, no significant difference was found in mean axis shape measurements between cohorts or compared to the true mean axis measurements. No significant difference was found in scan time for either phase. This study's results support the validation of this ultrasound simulation model and may demonstrate early evidence for its use as a training tool in the veterinary curriculum to teach entry-level ultrasound skills.
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http://dx.doi.org/10.3138/jvme-2020-0123 | DOI Listing |
Med Phys
December 2024
Department of Electronics and Electrical Engineering, Indian Institute of Technology Guwahati, Assam, India.
Background: Measurement noise often leads to inaccurate shear wave phase velocity estimation in ultrasound shear wave elastography. Filtering techniques are commonly used for denoising the shear wavefields. However, these filters are often not sufficient, especially in fatty tissues where the signal-to-noise ratio (SNR) can be very low.
View Article and Find Full Text PDFACS Omega
December 2024
Institute of Chemical Sciences and Technologies "G. Natta", National Research Council of Italy, Via Mario Bianco 9, 20131 Milan, Italy.
Affitins are a class of small artificial proteins, designed as alternatives to antibodies for therapeutic, diagnostic, and biotechnological applications. Recent patents by Bracco Imaging S.p.
View Article and Find Full Text PDFACS Photonics
December 2024
Department of Applied Physics, University of Barcelona, 08028 Barcelona, Spain.
The delivery of light over an extended area within a sample forms the basis of biomedical applications that are as relevant as photoacoustic tomography, fluorescence imaging, and phototherapy techniques. However, light scattering limits the ability of these methods to reach deep regions within biological tissues. As a result, their operational range remains confined to superficial areas of samples, posing a significant barrier to effective optical treatment and diagnosis.
View Article and Find Full Text PDFGMS J Med Educ
December 2024
University Hospital Carl Gustav Carus at the Dresden University of Technology, Clinic and Out-patient Department for Obstetrics and Gynecology, Dresden, Germany.
Objective: In addition to patient consent, learning sonography requires considerable time and personnel resources. To implement patient-friendly and resource-saving ultrasound teaching, a comprehensively equipped sonography simulator (SoSim) was purchased at the Medical Interprofessional Training Centre (MITZ) of the Faculty of Medicine at TU Dresden. In a first step, the SoSim training was trialed in a sample (n=5) in cooperation with the Clinic and Polyclinic for Gynecology and Obstetrics at Dresden University Hospital (GYN).
View Article and Find Full Text PDFNMR Biomed
February 2025
CIBM Center for Biomedical Imaging, Lausanne, Switzerland.
Magnetic resonance spectroscopic imaging (MRSI) enables the simultaneous noninvasive acquisition of MR spectra from multiple spatial locations inside the brain. Although H-MRSI is increasingly used in the human brain, it is not yet widely applied in the preclinical setting, mostly because of difficulties specifically related to very small nominal voxel size in the rat brain and low concentration of brain metabolites, resulting in low signal-to-noise ratio (SNR). In this context, we implemented a free induction decay H-MRSI sequence (H-FID-MRSI) in the rat brain at 14.
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