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Updated: Aug 5, 2025

Induction of Eryptosis in Red Blood Cells Using a Calcium Ionophore
Published on: January 21, 2020
Molecular Mechanisms and Pathophysiological Significance of Eryptosis
Sumiah A Alghareeb1, Mohammad A Alfhili1, Sabiha Fatima1
1Chair of Medical and Molecular Genetics Research, Department of Clinical Laboratory Sciences, College of Applied Medical Sciences, King Saud University, Riyadh 12372, Saudi Arabia.
Abstract:
Despite lacking the central apoptotic machinery, senescent or damaged RBCs can undergo an unusual apoptosis-like cell death, termed eryptosis. This premature death can be caused by, or a symptom of, a wide range of diseases. However, various adverse conditions, xenobiotics, and endogenous mediators have also been recognized as triggers and inhibitors of eryptosis. Eukaryotic RBCs are unique among their cell membrane distribution of phospholipids. The change in the RBC membrane composition of the outer leaflet occurs in a variety of diseases, including sickle cell disease, renal diseases, leukemia, Parkinson's disease, and diabetes. Eryptotic erythrocytes exhibit various morphological alterations such as shrinkage, swelling, and increased granulation. Biochemical changes include cytosolic Ca2+ increase, oxidative stress, stimulation of caspases, metabolic exhaustion, and ceramide accumulation. Eryptosis is an effective mechanism for the elimination of dysfunctional erythrocytes due to senescence, infection, or injury to prevent hemolysis. Nevertheless, excessive eryptosis is associated with multiple pathologies, most notably anemia, abnormal microcirculation, and prothrombotic risk; all of which contribute to the pathogenesis of several diseases. In this review, we provide an overview of the molecular mechanisms, physiological and pathophysiological relevance of eryptosis, as well as the potential role of natural and synthetic compounds in modulating RBC survival and death.
Insights
Eryptosis, a cell death process in red blood cells (RBCs), occurs in various diseases and can be triggered by adverse conditions. Understanding eryptosis mechanisms is key to addressing associated pathologies like anemia and thrombosis.
Area of Science:
- Hematology
- Cell Biology
- Pathophysiology
Background:
- Senescent or damaged red blood cells (RBCs) undergo eryptosis, an apoptosis-like cell death, despite lacking central apoptotic machinery.
- Eryptosis is linked to numerous diseases, including sickle cell disease, renal diseases, leukemia, Parkinson's disease, and diabetes, affecting RBC membrane phospholipid distribution.
- Morphological and biochemical changes in eryptosis include cell shrinkage/swelling, increased granulation, cytosolic Ca2+ increase, oxidative stress, caspase stimulation, metabolic exhaustion, and ceramide accumulation.
Purpose of the Study:
- To review the molecular mechanisms of eryptosis.
- To elucidate the physiological and pathophysiological relevance of eryptosis.
- To explore the potential of compounds in modulating RBC survival and death.
Main Methods:
- Literature review of eryptosis mechanisms.
- Analysis of eryptosis triggers and inhibitors.
- Examination of eryptosis's role in disease pathogenesis.
Main Results:
- Eryptosis is an essential mechanism for eliminating dysfunctional erythrocytes, preventing hemolysis.
- Excessive eryptosis contributes to anemia, abnormal microcirculation, and prothrombotic risk.
- RBC membrane changes are observed in various diseases associated with eryptosis.
Conclusions:
- Eryptosis is a critical process in RBC homeostasis and disease.
- Dysregulated eryptosis contributes to significant pathologies.
- Modulating eryptosis may offer therapeutic strategies for RBC-related disorders.
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