ArticleJournal of biomechanical engineering2016
Increased Red Blood Cell Stiffness Increases Pulmonary Vascular Resistance and Pulmonary Arterial Pressure.
Article in Journal of biomechanical engineering, 2016. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 10 papers.
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Who cites it
10 citing papers in PubMed, 17 citations in OpenAlex.
- Serum fructosamine and glycemic status in the presence of the sickle cell mutation.Diabetes research and clinical practice · 2021Article
- Review
- Characterizing bulk rigidity of rigid red blood cell populations in sickle-cell disease patients.Scientific reports · 2021Article
- Effects of Red Blood Cell Sickling on Right Ventricular AfterloadExperimental mechanics · 2021Article
- Red blood cells modulate structure and dynamics of venous clot formation in sickle cell disease.Blood · 2019Article
- Vascular-targeted particle binding efficacy in the presence of rigid red blood cells: Implications for performance in diseased blood.Biomicrofluidics · 2018Article
- Impact of chronic hypoxia on proximal pulmonary artery wave propagation and mechanical properties in rats.American journal of physiology. Heart and circulatory physiology · 2018Article
- Hematological disorders and pulmonary hypertension.World journal of cardiology · 2016Review
- A review of wave mechanics in the pulmonary artery with an emphasis on wave intensity analysis.Acta physiologica (Oxford, England) · 2016Review
- Stiffening of sickle cell trait red blood cells under simulated strenuous exercise conditions.Microsystems & nanoengineering · 2016Article
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Authors and funding
5 authors at 1 institution in 1 country.
Funding
Abstract
Patients with sickle cell anemia (SCD) and pulmonary hypertension (PH) have a significantly increased risk of sudden death compared to patients with SCD alone. Sickled red blood cells (RBCs) are stiffer, more dense, more frequently undergo hemolysis, and have a sixfold shorter lifespan compared to normal RBCs. Here, we sought to investigate the impact of increased RBC stiffness, independent of other SCD-related biological and mechanical RBC abnormalities, on the hemodynamic changes that ultimately cause PH and increase mortality in SCD. To do so, pulmonary vascular impedance (PVZ) measures were recorded in control C57BL6 mice before and after ∼50 μl of blood (Hct = 45%) was extracted and replaced with an equal volume of blood containing either untreated RBCs or RBCs chemically stiffened with glutaraldehyde (Hct = 45%). Chemically stiffened RBCs increased mean pulmonary artery pressure (mPAP) (13.5 ± 0.6 mmHg at baseline to 23.2 ± 0.7 mmHg after the third injection), pulmonary vascular resistance (PVR) (1.23 ± 0.11 mmHg*min/ml at baseline to 2.24 ± 0.14 mmHg*min/ml after the third injection), and wave reflections (0.31 ± 0.02 at baseline to 0.43 ± 0.03 after the third injection). Chemically stiffened RBCs also decreased cardiac output, but did not change hematocrit, blood viscosity, pulmonary arterial compliance, or heart rate. The main finding of this study is that increased RBC stiffness alone affects pulmonary pulsatile hemodynamics, which suggests that RBC stiffness plays an important role in the development of PH in patients with SCD.
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