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Presence Current · Arkansas
Last published 2024
Sources OpenAlex · ORCID
Refreshed 2026-10-08

Amanda Walls

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Also affiliated: University of Utah (2024); Hospital Universitario Virgen del Rocío (2021); University of California, Davis (2024); University of Toledo (2024)

3 h-index 8 pubs 28 cited

  • Lab-On-A-Chip Devices
  • Humans
  • Epithelial Cells
  • Microphysiological Systems
  • Animals
  • Aortic Valve
  • Aortic Valve Stenosis
  • Calcinosis
  • Cholesterol
  • Coculture Techniques
  • Endothelial Cells
  • Nasal Mucosa
  • Cat Diseases
  • Echocardiography
  • Particulate Matter

Biography and Research Information

OverviewAI-generated summary

Amanda Walls researches microphysiological systems, including valve-on-chip and nasal airway-on-chip models. Her work investigates the progression of calcific aortic valve disease, examining the roles of cell cycle progression, cholesterol metabolism, and protein homeostasis. Walls has also explored the use of immersive virtual reality as a supplement for biomedical engineering labs and developed a nasal airway-on-chip model to assess airflow pre-conditioning during epithelial cell maturation.

Her research has involved coculture techniques and studying epithelial cells. Walls has collaborated with Ishita Tandon, Kartik Balachandran, Mostafa Elsaadany, and Gustavo Vaca-Diez, all from the University of Arkansas at Fayetteville, on multiple publications. Her scholarship metrics include an h-index of 3, with 8 total publications and 28 total citations.

Metrics

  • h-index: 3
  • Publications: 8
  • Citations: 28

Selected Publications

  • Development of a nasal airway-on-chip co-culture model to study particulate matter exposure (2026)
    Lab on a Chip DOI OpenAlex
  • Insights into Perimenopause: A Survey of Perceptions, Opinions on Treatment, and Potential Approaches (2025)
    Women 12 citations DOI OpenAlex
  • Insights into Perimenopause: A Survey of Perceptions, Opinions on Treatment, and Potential Approaches (2024)
    Preprints.org DOI OpenAlex
  • Development of an Innovation Corps-Modelled Bioengineering Course to Promote Entrepreneurial Engagement Among Undergraduate Students (2024)
  • A three-dimensional valve-on-chip microphysiological system implicates cell cycle progression, cholesterol metabolism and protein homeostasis in early calcific aortic valve disease progression (2024)
    Acta Biomaterialia 10 citations DOI OpenAlex
  • A nasal airway-on-chip model to evaluate airflow pre-conditioning during epithelial cell maturation at the air-liquid interface (2024)
    Biofabrication 7 citations DOI OpenAlex
  • Immersive virtual reality-based learning as a supplement for biomedical engineering labs: challenges faced and lessons learned (2024)
    Frontiers in Medical Technology 10 citations DOI OpenAlex
  • Board 107: Work in Progress: Development of an Innovation Corps-Modeled Bioengineering Course to Promote Entrepreneurial Engagement among Undergraduate Students. (2024)
  • Board 17: Work in progress: Immersive Virtual Reality-Based Learning in Biomedical Engineering Labs: Lessons Learned and Recommendations for Efficient Integration (2024)
  • A Three-Dimensional Valve-on-Chip Microphysiological System Reveals Novel Biomarkers of Early Calcific Aortic Valve Disease Progression (2023)
    SSRN Electronic Journal DOI OpenAlex

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Collaboration Network

33 Collaborators 10 Institutions 2 Countries

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