Connor Robinson
Affiliation confirmed via AI analysis of OpenAlex, ORCID, and web sources.
Researcher
Graduate Student Researcher
Poultry Science
Research Areas
Biography and Research Information
OverviewAI-generated summary
Connor Robinson's research investigates the cellular and molecular mechanisms underlying cardiovascular disease, specifically focusing on aortic valve calcification and the impact of mechanical strain on valve cells. His work involves developing and utilizing novel experimental systems, such as a human valve-on-chip platform, to simulate physiological and pathological conditions. This approach allows for the detailed characterization of valve cell behavior and the identification of mechanosensitive pathways involved in disease progression.
Robinson has contributed to studies on the isolation and characterization of human aortic valve cells from calcified explants, providing insights into the cellular basis of calcific aortic valve disease. He has also explored the role of specific cellular pathways in response to mechanical forces, aiming to elucidate the complex interplay between cellular function and disease development. His research network includes collaborators from the University of Arkansas at Fayetteville and the University of Arkansas for Medical Sciences, fostering interdisciplinary approaches to cardiovascular research.
Metrics
- Publications: 3
Selected Publications
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Characterization of Human Aortic Valve Cells isolated from Calcified Aortic Valve Replacement Explants: Implications for Calcific Aortic Valve Disease Research (2026)
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Elucidating the mechanosensitive pathways of physiological and pathological strain on valve cells in a novel human valve-on-chip system (2025)
Federal Grants 1 $1,000,000 total
Collaboration Network
Top Collaborators
- Elucidating the mechanosensitive pathways of physiological and pathological strain on valve cells in a novel human valve-on-chip system
- Characterization of Human Aortic Valve Cells isolated from Calcified Aortic Valve Replacement Explants: Implications for Calcific Aortic Valve Disease Research
- Elucidating the mechanosensitive pathways of physiological and pathological strain on valve cells in a novel human valve-on-chip system
- Characterization of Human Aortic Valve Cells isolated from Calcified Aortic Valve Replacement Explants: Implications for Calcific Aortic Valve Disease Research
- Characterization of Human Aortic Valve Cells isolated from Calcified Aortic Valve Replacement Explants: Implications for Calcific Aortic Valve Disease Research
- Characterization of Human Aortic Valve Cells isolated from Calcified Aortic Valve Replacement Explants: Implications for Calcific Aortic Valve Disease Research
- Characterization of Human Aortic Valve Cells isolated from Calcified Aortic Valve Replacement Explants: Implications for Calcific Aortic Valve Disease Research
- Characterization of Human Aortic Valve Cells isolated from Calcified Aortic Valve Replacement Explants: Implications for Calcific Aortic Valve Disease Research
- Characterization of Human Aortic Valve Cells isolated from Calcified Aortic Valve Replacement Explants: Implications for Calcific Aortic Valve Disease Research
- Characterization of Human Aortic Valve Cells isolated from Calcified Aortic Valve Replacement Explants: Implications for Calcific Aortic Valve Disease Research
- Characterization of Human Aortic Valve Cells isolated from Calcified Aortic Valve Replacement Explants: Implications for Calcific Aortic Valve Disease Research
- Characterization of Human Aortic Valve Cells isolated from Calcified Aortic Valve Replacement Explants: Implications for Calcific Aortic Valve Disease Research
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