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Endothelialized Microfluidics for Studying Microvascular Interactions in Hematologic Diseases
Published on: June 22, 2012
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Optimal hematocrit in an artificial microvascular network
Nathaniel Z Piety1, Walter H Reinhart2, Julianne Stutz1
1Department of Biomedical Engineering, Cullen College of Engineering, University of Houston, Houston, Texas.
Transfusion
|July 7, 2017
Summary
Optimal hematocrit for blood oxygen delivery is not a single value but depends on microvascular conditions and perfusion pressure. This finding may explain why increasing hematocrit via transfusion can harm patients with chronic disorders.
Area of Science:
- Physiology
- Biomedical Engineering
- Hematology
Background:
- Elevated hematocrit increases oxygen transport but also blood viscosity, potentially impairing microvascular flow and tissue oxygenation.
- An optimal hematocrit likely exists to maximize oxygen delivery to tissues.
Purpose of the Study:
- To determine the optimal hematocrit for oxygen delivery in vitro using viscometry and an artificial microvascular network.
- To evaluate the influence of red blood cell (RBC) status (fresh vs. stored) and plasma composition on optimal hematocrit.
Main Methods:
- Viscometry and an artificial microvascular network were used to assess blood viscosity and flow.
- Suspensions of fresh and stored RBCs in plasma, saline, or buffer were tested across a range of hematocrits (10-80%).
Main Results:
- Optimal hematocrit varied significantly with shear rate in viscometry, ranging from 10% to 37.5% for fresh RBCs.
- In the microvascular network, optimal hematocrits for fresh RBCs ranged from 51.1% to 64.6% and for stored RBCs from 46.4% to 66.5%, depending on perfusion pressure.
Conclusions:
- The optimal hematocrit for microvascular oxygen delivery is dependent on perfusion pressure.
- Anemia in chronic conditions with reduced perfusion may be a beneficial adaptation.
- These findings may explain adverse outcomes from RBC transfusions aimed at increasing hematocrit in such patients.

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