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Penelope Georges; Sami Kahn – Biomedical Engineering Education, 2025
Rapid advancements in bioengineering call for broad public literacy to help individuals better understand the changes these technologies bring to our lives. However, making bioengineering concepts accessible and relevant, especially to non-science majors, is often challenging. To address this challenge, we designed a general education course aimed…
Descriptors: Biology, Engineering, Engineering Education, Teaching Methods
Frank J. Hernandez; Jane Elliston; Jordi Altimiras – Biomedical Engineering Education, 2025
Challenge: Good Laboratory Practice (GLP) is critical for ensuring the quality, integrity, reproducibility, and traceability of research, particularly in biomedical and bioengineering fields. With increasing demand for GLP-compliant research, integrating GLP principles into the education of biomedical and bioengineering students is essential.…
Descriptors: Biomedicine, Engineering Education, Laboratory Procedures, Masters Programs
Jennifer L. Leight; Brian P. Helmke; Alyssa C. Taylor; Sabia Z. Abidi – Biomedical Engineering Education, 2025
At the Fifth Biomedical Engineering (BME) Education Summit in 2024, the BME education professional community discussed diversity, equity, and inclusion (DEI) in a series of workshops. The goals were to identify professional competencies related to DEI that support students after graduation, to outline strategies for including DEI principles in…
Descriptors: Inclusion, Educational Environment, Professional Development, Biomedicine
Suzanne Lightsey; Michele Dill; Madison Temples; Taylor Yeater; Sarah Furtney – Biomedical Engineering Education, 2024
Hands-on laboratory courses seldom appear in biomedical engineering (BME) graduate programs, thus limiting graduate students' ability to acquire wet laboratory skills like cell culturing. At large, BME graduate programs rely on ad hoc training provided by senior graduate students; however, this method cannot be extended to new or non-BME…
Descriptors: Graduate Students, Engineering Education, Biomedicine, Cooperative Learning
Mykel D. Green; Olivia L. Lanier; Gabriella Coloyan Fleming; Elizabeth Cosgriff-Hernandez – Biomedical Engineering Education, 2025
Challenge: Health equity is rarely included in traditional biomedical engineering curricula, leaving students unprepared to design inclusive healthcare solutions. Novel Initiative: To address this critical gap, we developed "Health Equity in Engineering Design," the first course at our institution for undergraduate biomedical engineering…
Descriptors: Access to Health Care, Biomedicine, Undergraduate Study, Engineering Education
Marissa L. Gray; Celinda M. Kofron – Biomedical Engineering Education, 2024
We have implemented a jigsaw framework in our biomedical engineering capstone design course by overlaying strategic consideration groups across our design teams. Collaboration in design courses is usually focused within a design team with some peer feedback, but opportunities to work across teams are often limited. The purpose of this teaching tip…
Descriptors: Biomedicine, Design, Cooperative Learning, Engineering Education
Biofabrication of Neural Organoids: An Experiential Learning Approach for Instructional Laboratories
Caroline Cvetkovic; Sarah Lindley; Holly Golecki; Robert Krencik – Biomedical Engineering Education, 2024
Biomedical engineering (BME) is a multidisciplinary, constantly advancing field; as such, undergraduate programs in BME must continually adapt. Elective courses provide opportunities for students to select topic areas relevant to their interests or future careers. Specifically, laboratory courses allow experiential learning in specialized topics…
Descriptors: Experiential Learning, Laboratories, Biomedicine, Engineering Education
Melikhan Tanyeri – Biomedical Engineering Education, 2025
Purpose: This paper describes a senior-level biomedical engineering course designed to educate students on primary literature analysis and effective scientific communication. The course integrates elements from both disciplines through in-class discussions of primary research articles and an innovative annotation project utilizing the Science in…
Descriptors: Documentation, Biomedicine, Engineering Education, Science Process Skills
Sarah Ilkhanipour Rooney; Christine Elizabeth King; Laura Christian; Mahendra Kavdia; Joshua C. Kays; Sally F. Shady – Biomedical Engineering Education, 2025
Student engagement is critical to academic success, particularly in the interdisciplinary field of biomedical engineering (BME). However, engaging and motivating students in class have become increasingly challenging, with the COVID-19 pandemic exacerbating this difficulty. This Perspectives paper synthesizes the insights from three faculty…
Descriptors: Biomedicine, Learner Engagement, College Faculty, Engineering Education
Elizabeth A. Bullard; Christina R. Dubell; Charles W. Patrick; Frances S. Ligler; Michael J. McShane – Biomedical Engineering Education, 2024
Biomedical engineering (BME) spans a wide range of research fields and professional activities. Most BME departments use a seminar series to introduce graduateĀ students to exciting research conducted outside their own university, learn about professional opportunities, and enhance their understanding of related topics (e.g., ethics in BME,…
Descriptors: Learner Engagement, Graduate Students, Seminars, Scaffolding (Teaching Technique)
Steven Higbee; Sharon Miller; Karen Alfrey – Biomedical Engineering Education, 2025
Challenge: The Hodgkin-Huxley membrane conductance model has been featured in biomedical engineering (BME) curricula for decades. A typical BME assignment might require students to apply the relevant equations and parameters to model the generation of action potentials; however, there is opportunity for students to build and explore both…
Descriptors: Scientific Concepts, Biomedicine, Engineering Education, Models
Holly Golecki; Joe Bradley – Biomedical Engineering Education, 2024
Biomedical engineering capstone design courses provide a salient opportunity to discuss ethical considerations in engineering. As technology and society develop and change, new challenges constantly arise related to how society and technology inform each other. In this space, ethical training for engineering students is critically important for…
Descriptors: Experiential Learning, Decision Making, Ethics, Capstone Experiences
Karin J. Jensen; Kristen S. Labazzo – Biomedical Engineering Education, 2025
In May 2024, the Biomedical Engineering Society (BMES) hosted the Fifth Biomedical Engineering Education Summit with the goal of bringing together BME educators from across the country to discuss important issues in BME education. The summit included a variety of platform presentations and workshops that engaged participants on topics such as…
Descriptors: Biomedicine, Engineering, Mental Health, Well Being
Sonia Bansal; Aaron M. Kyle; Andrew O. Brightman; Jennifer R. Amos – Biomedical Engineering Education, 2023
The lack of diversity in engineering is a persistent problem with few signs of pending improvement. Efforts to promote diversity in engineering schools have produced modest gains. Based on a commitment to be a change leader and fueled by recent updates in ABET criteria to include diversity, equity, inclusion, and justice (DEI-J) as tenets of…
Descriptors: Engineering Education, Student Diversity, Biomedicine, Inclusion
Zachariah Beck; Brandon Alpert; Alexander Bowman; William R. Watson; Adrian B. Tepole – Biomedical Engineering Education, 2024
Video games have emerged as a medium for learning by creating engaging environments, encouraging creative and deep thinking, and exposing learners to complex problems. Unfortunately, even though there are increasing examples of video games for many basic science and engineering concepts, similar efforts for higher level engineering concepts such…
Descriptors: Video Games, Technology Uses in Education, Biomedicine, Engineering Education

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