
About
Ozlem Yalcin is a Professor of Physiology at the School of Medicine, Koc University in Istanbul, Turkey. She heads the Hemorheology, Hemodynamics and Vascular Biology Laboratory and serves as Principal Investigator for multiple research projects focused on red blood cell mechanics and microcirculation.
Dr. Yalcin earned her Bachelor's Degree (1997), Master's Degree (2001), and PhD (2007) from Akdeniz University. Her extensive academic background has positioned her as a leading researcher in hemorheology and vascular biology.
Her research interests center on hemorheology, hemodynamics, and vascular biology, with particular focus on red blood cell mechanics, erythrocyte aggregation, and microcirculatory blood flow. Dr. Yalcin's laboratory investigates the relationship between blood flow properties and tissue perfusion, with emphasis on the role of red blood cell mechanical properties in determining hemodynamic behavior.
Analysis of her recent publications (2021-2024) shows a consistent research trajectory in hemorheology, with increasing focus on clinical applications, molecular mechanisms of red blood cell function, and technological innovations for blood diagnostics. Her work spans basic science investigations of erythrocyte signaling pathways to clinical studies examining blood rheology in various disease states including thalassemia, sickle cell disease, and chronic wounds.
Dr. Yalcin leads a research team consisting of graduate and medical students who contribute to her laboratory's investigations. Her laboratory is equipped with advanced instrumentation for hemodynamics, vascular physiology, hemorheology, and proteomics, enabling comprehensive studies from molecular mechanisms to whole-organism physiology.
She has made significant contributions to understanding the role of red blood cell mechanics in microcirculatory blood flow, particularly how erythrocyte deformability and aggregation affect tissue perfusion and vascular function. Her work has important clinical implications for conditions where blood flow properties are altered, such as in hemoglobinopathies, cardiovascular diseases, and during blood storage for transfusion.
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