Related Experiment Video
Updated: Jun 6, 2026

09:12
Measuring Deformability and Red Cell Heterogeneity in Blood by Ektacytometry
Published on: January 12, 2018
Reconstruction of erythrocyte shape during modified morphological response
1Institute for Problems of Cryobiology and Cryomedicine, National Academy of Sciences of Ukraine, Kharkov, 61015, Ukraine. rsv@kharkov.ua
Biochemistry. Biokhimiia
|November 16, 2010
Summary
Benzalkonium chloride (BzA) alters erythrocyte shape in sucrose solutions, causing asymmetric transitions. The study suggests erythrocyte membrane structure is key to these shape changes, challenging existing models.
Area of Science:
- Biophysics
- Cell Biology
- Membrane Dynamics
Background:
- Erythrocyte shape is critical for function and regulated by membrane properties.
- Benzalkonium chloride (BzA) is a surfactant known to affect cell morphology.
- Existing models for erythrocyte shape regulation include the continuum and bilayer-couple models.
Purpose of the Study:
- To investigate the concentration-dependent effects of benzalkonium chloride (BzA) on erythrocyte shape.
- To analyze the morphological transitions of erythrocytes in sucrose solutions.
- To evaluate the validity of current erythrocyte shape regulation models based on observed transitions.
Main Methods:
- Erythrocytes were exposed to varying concentrations of benzalkonium chloride (BzA) in sucrose solutions.
- Cell morphology was observed following fixation with glutaraldehyde and formaldehyde.
- Shape transitions were analyzed to understand the mechanism of BzA-induced changes.
Main Results:
- Benzalkonium chloride (BzA) concentration directly influences echinocyte formation.
- BzA can induce a direct spherostomatocyte-spheroechinocyte transition without significant shape alteration.
- The reverse transition (spheroechinocyte-spherostomatocyte) involved cell flattening, not always achieving a discoidal shape.
Conclusions:
- Erythrocyte shape transitions induced by BzA in sucrose solutions are asymmetric.
- The observed asymmetry contradicts predictions from continuum and bilayer-couple models.
- Nonuniformities in the native erythrocyte membrane structure appear crucial for morphological transitions.
Related Concept Videos
Erythropoiesis
Red blood cells (RBCs) transport oxygen to all body tissues. These cells survive only for 120 days and then need to be replenished. Erythropoiesis is the process of RBC production. In healthy individuals, erythropoiesis ensures all tissues are amply supplied with oxygen. In addition, blood loss due to injury leads to a drop in the physiological oxygen level that will cause erythropoiesis. Any defect in erythropoiesis leads to several physiological disorders, including thalassemia, anemia, and...
Structure and Function of Erythrocytes
There are between 4.2 and 6 million erythrocytes, also known as red blood cells, in every microliter of blood. These cells are small, flattened biconcave discs with centers that are depressed.
The erythrocyte plasma membrane is associated with proteins such as spectrin, which forms a flexible cytoplasmic meshwork. This meshwork allows erythrocytes to twist, turn, become cup-shaped, and regain their biconcave shape as they pass through narrow capillaries. Additionally, erythrocytes can form...
The erythrocyte plasma membrane is associated with proteins such as spectrin, which forms a flexible cytoplasmic meshwork. This meshwork allows erythrocytes to twist, turn, become cup-shaped, and regain their biconcave shape as they pass through narrow capillaries. Additionally, erythrocytes can form...
Lifecycle of Erythrocytes
Erythrocytes, also known as red blood cells, constantly move through blood capillaries. As a result, they damage their plasma membrane due to the continuous friction. Typically, after 100 to 120 days, erythrocytes become rigid and fragile as they wear out. As they pass through small vessels in the spleen and liver, they can get trapped and break apart into fragments.
The resident phagocytic macrophages deal with these damaged cells by engulfing them and separating their globin and heme groups.
The resident phagocytic macrophages deal with these damaged cells by engulfing them and separating their globin and heme groups.
Microbial Morphologies
Bacterial and archaeal cells exhibit remarkable diversity in shape and structure, critical in their adaptability and functionality. Among bacteria, the most commonly observed shapes include cocci and bacilli. Cocci are spherical and may exist singly or in groupings such as pairs (diplococci), chains (streptococci), clusters (staphylococci), or tetrads. Bacilli, in contrast, are rod-shaped and can also occur as single cells, in pairs, or chains, depending on their environmental and genetic...

