David M. Eckmann
Materials Science · The Ohio State University
Publications
230
Citations
5,630
Est. group size
~1
Recurring co-author estimate
Active years
39
Publishing since 1988
David M. Eckmann's research examines how gas bubbles (embolism), high-pressure oxygen (hyperbaric conditions), and toxic exposures affect blood vessels, lung cells, and cellular energy production (mitochondrial function). His work also extends to designing nanoparticles for targeted drug delivery and studying the physics of fluids at very small scales relevant to biomedical devices. The research combines biophysics, cell biology, and clinical medicine to understand and treat conditions like decompression sickness, carbon monoxide poisoning, and pulmonary hypertension.
Publication output has declined from a peak of 14 papers in 2017 to roughly 1-3 papers per year in recent years (2022-2026), indicating a slowing pace of output over the past decade.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- Gas Embolism: Fundamentals, Diagnosis, and Treatment
IEEE Reviews in Biomedical Engineering · 2026
- Proceedings from the 2025 Midwest Pediatric Device Consortium showcase featuring software as a medical device
BMC Proceedings · 2026
- Caffeine, MitoQ, and GABA Prophylaxis of Mitochondrial Dysfunction Induced in Human Pulmonary Cells by Normobaric–Hyperoxia and Hyperbaric–Hyperoxia
Oxidative Medicine and Cellular Longevity · 2025
- Hyperbaric oxygen rapidly produces intracellular bioenergetics dysfunction in human pulmonary cells
Chemico-Biological Interactions · 2024
- RAB7 deficiency impairs pulmonary artery endothelial function and promotes pulmonary hypertension
Journal of Clinical Investigation · 2023
- Hyperoxic exposure alters intracellular bioenergetics distribution in human pulmonary cells
Life Sciences · 2023
- RAB7 deficiency impairs pulmonary artery endothelial function and promotes pulmonary hypertension
bioRxiv (Cold Spring Harbor Laboratory) · 2023
- Mitochondrial dynamics involves molecular and mechanical events in motility, fusion and fission
Frontiers in Cell and Developmental Biology · 2022
- Hyperbaric oxygen alters intracellular bioenergetics distribution in human dermal fibroblasts
Life Sciences · 2021
- Biophysical Considerations in the Rational Design and Cellular Targeting of Flexible Polymeric Nanoparticles
Advanced Materials Interfaces · 2021
- Hydrodynamics and Interfacial Surfactant Transport in Vascular Gas Embolism
Journal of Heat Transfer · 2021
- Difficulty in Advancing Flexible Epidural Catheters When Establishing Labor Analgesia: An Observational Open-Label Randomized Trial
Anesthesia & Analgesia · 2021
- Biophysical Considerations in the Rational Design and Cellular Targeting of Flexible Polymeric Nanoparticles
Research Square · 2021
- Biophysical Considerations in the Rational Design and Cellular Targeting of Flexible Polymeric Nanoparticles
Research Square · 2021
- Biophysical Considerations in the Rational Design and Cellular Targeting of Flexible Polymeric Nanoparticles (Adv. Mater. Interfaces 23/2021)
Advanced Materials Interfaces · 2021
- Journal of Heat Transfer×4
- Annals of Biomedical Engineering×2
- ACS Applied Materials & Interfaces×2
- American Journal of Physiology-Cell Physiology×2
- Life Sciences×2
- You‐Yeon Won
Materials Science · Purdue University West Lafayette
- Jonathan J. Wilker
Materials Science · Purdue University West Lafayette
- Hitesh Kumar Waghwani
Materials Science · Indiana University
- Akshada Shinde
Materials Science · Purdue University West Lafayette
- Ahram Kim
Materials Science · Indiana University
This profile was generated automatically from public scholarly data (OpenAlex). Group size and activity levels are estimates derived from co-authorship patterns.
Last updated Jul 19, 2026.
Claim or correct this profile