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Holly M. Golecki; Jason Robinson; Caroline Cvetkovic; Conor Walsh – Biomedical Engineering Education, 2024
Experiential learning in biomedical engineering curricula is a critical component to developing graduates who are equipped to contribute to technical design tasks in their careers. This paper presents the development and implementation of an undergraduate and graduate-level soft material robotics design course focused on applications in medical…
Descriptors: Equipment, Design, Robotics, Experiential Learning
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
Ralph A. Gigliotti; Brent D. Ruben; Christine Goldthwaite; Brian L. Strom – International Journal of Leadership in Education, 2024
The challenges facing academic health and medicine are abundant and require effective leadership across institutions. This article highlights the design of a collaborative leadership development program for faculty administrators that seeks to address many of these leadership challenges. The article begins with an overview of existing research to…
Descriptors: Instructional Leadership, Teacher Leadership, Leadership Training, College Administration
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
Katherine Ann Ayers; Robyn Ann Pennella; Olayinka Mohorn-Mintah; Summer Jane Jasper; Susan Naomi Nordstrom – Science Education, 2024
Lack of access to STEMM mentors has been identified as a critical barrier to biomedical research careers, leading to a lack of diversity in this field. To address such a barrier, the National Institutes of Health invested funds to support institutions in developing research immersion programs to provide "underrepresented" students with…
Descriptors: STEM Education, Medical Education, Medical Research, Research Projects
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)
Yin Kiong Hoh – American Biology Teacher, 2025
Stem cell therapy, a cutting-edge technology, aims to replace damaged cells with healthy ones. Stem cells possess the remarkable ability to multiply and differentiate into various cell types, making them ideal candidates for regenerative medicine. This therapy holds promise for treating a wide range of conditions and injuries. In this review, I…
Descriptors: Embryology, Biotechnology, Biomedicine, Cytology
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
Mason N. Tedeschi; Lisa B. Limeri – CBE - Life Sciences Education, 2024
Advancing equity and justice in undergraduate biology education requires research to address the experiences of disabled students. Scholars working in disability studies have developed models of disability that inform Discipline-Based Education Research (DBER). To date, DBER literature has been predominantly informed by the medical and social…
Descriptors: Models, Disabilities, Scientific Research, Biology
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
David A. Rubenstein – Biomedical Engineering Education, 2024
Biomedical engineering (BME) undergraduate curricula have begun to address gaps in diversity, especially in response to the newly proposed ABET diversity, equity, and inclusion (DEI) criteria. However, there is a significant lack of teaching resources, and pedagogical training available for those interested in including DEI into their course…
Descriptors: Biomedicine, Engineering Education, Undergraduate Study, Diversity
Natalie Colson Shilton; Louise Maddock; Mary-Ann Shuker; Georgina Sanger – Journal of Teaching and Learning for Graduate Employability, 2024
Work-Integrated Learning (WIL) experiences, integral for equipping students with the skills and knowledge crucial for employment and success in their chosen careers, have traditionally been associated with accreditation requirements in professional programs. More recently, acknowledging the importance of WIL experiences in non-professional…
Descriptors: Foreign Countries, Undergraduate Students, Biomedicine, Health Sciences
Brittany Marie Williams – New Directions for Higher Education, 2024
Although HIV rates are statistically stable, meaning the number of new acquisitions has remained relatively flat, the impact of the epidemic is uneven. Black women between the ages of 13 and 34 are more likely to acquire HIV, suggesting intervention during college is an ideal HIV mitigation strategy. Moreover, far too few Black women who could…
Descriptors: Acquired Immunodeficiency Syndrome (AIDS), Higher Education, Females, Disproportionate Representation
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