ArticleBiophysical journal2017
Prospects for Human Erythrocyte Skeleton-Bilayer Dissociation during Splenic Flow.
Article in Biophysical journal, 2017. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 12 papers.
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Who cites it
12 citing papers in PubMed.
- Mechanical Stimulation of Red Blood Cells Aging: Focusing on the Microfluidics Application.Micromachines · 2025Review
- Diseased Erythrocyte Enrichment Based on I-Shaped Pillar DLD Arrays.Micromachines · 2024Article
- Evolution of surface area and membrane shear modulus of matured human red blood cells during mechanical fatigue.Scientific reports · 2023Article
- Erythrocyte flow through the interendothelial slits of the splenic venous sinus.Biomechanics and modeling in mechanobiology · 2021Article
- Computational modeling of biomechanics and biorheology of heated red blood cells.Biophysical journal · 2021Article
- Red Blood Cells: Tethering, Vesiculation, and Disease in Micro-Vascular Flow.Diagnostics (Basel, Switzerland) · 2021Article
- Mechanosensitivity Occurs along the Adhesome's Force Train and Affects Traction Stress.Biophysical journal · 2019Article
- Mechanics of diseased red blood cells in human spleen and consequences for hereditary blood disorders.Proceedings of the National Academy of Sciences of the United States of America · 2018Article
- Review
- Synergistic Integration of Laboratory and Numerical Approaches in Studies of the Biomechanics of Diseased Red Blood Cells.Biosensors · 2018Review
- Red Blood Cell Homeostasis: Mechanisms and Effects of Microvesicle Generation in Health and Disease.Frontiers in physiology · 2018Review
- Erythrocyte Aging, Protection via Vesiculation: An Analysis Methodology via Oscillatory Flow.Frontiers in physiology · 2018Article
Corrections and comments
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Authors and funding
4 authors.
Funding
Abstract
Prospects of vesiculation occurring during splenic flow of erythrocytes are addressed via model simulations of RBC flow through the venous slits of the human spleen. Our model is multiscale and contains a thermally activated rate-dependent description of the entropic elasticity of the RBC spectrin cytoskeleton, including domain unfolding/refolding. Our model also includes detail of the skeleton attachment to the fluidlike lipid bilayer membrane, including a specific accounting for the expansion/contraction of the skeleton that may occur via anchor protein diffusive motion, that is, band 3 and glycophorin, through the membrane. This ability allows us to follow the change in anchor density and thereby the strength of the skeleton/membrane attachment. We define a negative pressure between the skeleton/membrane connection that promotes separation; critical levels for this are estimated using published data on the work of adhesion of this connection. By following the maximum range of negative pressure, along with the observed slight decrease in skeletal density, we conclude that there must be biochemical influences that probably include binding of degraded hemoglobin, among other things, that significantly reduce effective attachment density. These findings are consistent with reported trends in vesiculation that are believed to occur in cases of various hereditary anemias and during blood storage. Our findings also suggest pathways for further study of erythrocyte vesiculation that point to the criticality of understanding the biochemical phenomena involved with cytoskeleton/membrane attachment.
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