ArticleBlood2024
Less-deformable erythrocyte subpopulations biomechanically induce endothelial inflammation in sickle cell disease.
Article in Blood, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 16 papers.
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Who cites it
16 citing papers in PubMed.
- Asthma and overt stroke in children with sickle cell disease: a multicenter pediatric cohort study in French Guiana.BMC pediatrics · 2026Observational
- Lights, camera, occlusion! watch sickle cells in real time.Blood advances · 2026Article
- Digital twins and digital models of the human circulatory system.Nature reviews bioengineering · 2026Article
- Microfluidic capillary transit velocity as a functional measure for sickle cell disease andLab on a chip · 2026Article
- Suspension physics govern the multiscale dynamics of blood flow in sickle cell disease.Science advances · 2026Article
- Mechanotransduction mechanisms in human erythrocytes: Fundamental physiology and clinical significance.Channels (Austin, Tex.) · 2025Review
- Article
- Micro-Embolic Events and Their Clearing in the Brain. A Narrative Review.Acta physiologica (Oxford, England) · 2025Review
- Quantifying the unique mechanical properties of irreversibly sickled cells in sickle cell disease.Blood vessels, thrombosis & hemostasis · 2025Article
- Management of liver sinusoidal obstruction syndrome/veno-occlusive disease in adults: a 2025 perspective from an international expert group.Bone marrow transplantation · 2025Review
- Article
- Buckling of red blood cell membrane in narrow capillaries induces excessive wall shear stress.Biophysical journal · 2025Article
- Sticking together: Polymerization of sickle hemoglobin drives the multiscale pathophysiology of sickle cell disease.Biophysics reviews · 2025Review
- Marginated aberrant red blood cells induce pathologic vascular stress fluctuations in a computational model of hematologic disorders.Science advances · 2023Article
- Marginated aberrant red blood cells induce pathologic vascular stress fluctuations in a computational model of hematologic disorders.bioRxiv : the preprint server for biology · 2023Article
- Flow-induced segregation and dynamics of red blood cells in sickle cell disease.Physical review fluids · 2020Article
Corrections and comments
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Authors and funding
16 authors.
Funding
Abstract
abstractSickle cell disease (SCD) is canonically characterized by reduced red blood cell (RBC) deformability, leading to microvascular obstruction and inflammation. Although the biophysical properties of sickle RBCs are known to influence SCD vasculopathy, the contribution of poor RBC deformability to endothelial dysfunction has yet to be fully explored. Leveraging interrelated in vitro and in silico approaches, we introduce a new paradigm of SCD vasculopathy in which poorly deformable sickle RBCs directly cause endothelial dysfunction via mechanotransduction, during which endothelial cells sense and pathophysiologically respond to aberrant physical forces independently of microvascular obstruction, adhesion, or hemolysis. We demonstrate that perfusion of sickle RBCs or pharmacologically-dehydrated healthy RBCs into small venule-sized "endothelialized" microfluidics leads to pathologic physical interactions with endothelial cells that directly induce inflammatory pathways. Using a combination of computational simulations and large venule-sized endothelialized microfluidics, we observed that perfusion of heterogeneous sickle RBC subpopulations with varying deformability, as well as suspensions of dehydrated normal RBCs admixed with normal RBCs, leads to aberrant margination of the less-deformable RBC subpopulations toward the vessel walls, causing localized, increased shear stress. Increased wall stress is dependent on the degree of subpopulation heterogeneity and oxygen tension and leads to inflammatory endothelial gene expression via mechanotransductive pathways. Our multifaceted approach demonstrates that the presence of sickle RBCs with reduced deformability leads directly to pathological physical (ie, direct collisions and/or compressive forces) and shear-mediated interactions with endothelial cells and induces an inflammatory response, thereby elucidating the ubiquity of vascular dysfunction in SCD.
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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the OpenQuestion graph.