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Published on: November 5, 2019
The Role of RBC Oxidative Stress in Sickle Cell Disease: From the Molecular Basis to Pathologic Implications
Qinhong Wang1, Rahima Zennadi1
1Duke Comprehensive Sickle Cell Center and Division of Hematology, Department of Medicine, School of Medicine, Duke University, Durham, NC 27710, USA.
Insights
Sickle cell disease (SCD) involves red blood cells (RBCs) producing excess oxidative stress due to an antioxidant imbalance. This oxidative stress damages RBCs, contributing to multi-system organ damage in SCD patients.
Area of Science:
- Hematology
- Molecular Biology
- Genetics
Background:
- Sickle cell disease (SCD) is a severe inherited hemoglobinopathy caused by a β-globin gene mutation.
- This mutation leads to abnormal hemoglobin (Hb) S and altered red blood cell (RBC) function.
- Sickle RBCs are a major source of oxidative stress due to compromised redox state.
Purpose of the Study:
- To discuss the critical role of reactive oxygen species (ROS) production in sickle RBCs.
- To explore the regulation of ROS production in SCD pathophysiology.
- To highlight the link between RBC oxidative stress and multi-system organ damage in SCD.
Main Methods:
- Review of existing literature on SCD pathophysiology.
- Analysis of the mechanisms of ROS generation in sickle RBCs (Hb autoxidation, NADPH oxidase).
- Examination of the impact of oxidative stress on RBC phenotype and function.
Main Results:
- An imbalance between prooxidants and antioxidants leads to compromised sickle RBC redox state.
- Continuous ROS production overwhelms antioxidant defenses within sickle RBCs.
- Accumulated ROS cause RBC membrane damage, reduced deformability, and micro-vesicle release.
Conclusions:
- Oxidative stress within sickle RBCs is a key driver of SCD pathology.
- RBC oxidative stress contributes significantly to the multi-system manifestations and organ damage observed in SCD.
- Understanding ROS regulation in sickle RBCs is crucial for therapeutic strategies.
Abstract:
Sickle cell disease (SCD) is an inherited monogenic disorder and the most common severe hemoglobinopathy in the world. SCD is characterized by a point mutation in the β-globin gene, which results in hemoglobin (Hb) S production, leading to a variety of mechanistic and phenotypic changes within the sickle red blood cell (RBC). In SCD, the sickle RBCs are the root cause of the disease and they are a primary source of oxidative stress since sickle RBC redox state is compromised due to an imbalance between prooxidants and antioxidants. This imbalance in redox state is a result of a continuous production of reactive oxygen species (ROS) within the sickle RBC caused by the constant endogenous Hb autoxidation and NADPH oxidase activation, as well as by a deficiency in the antioxidant defense system. Accumulation of non-neutralized ROS within the sickle RBCs affects RBC membrane structure and function, leading to membrane integrity deficiency, low deformability, phosphatidylserine exposure, and release of micro-vesicles. These oxidative stress-associated RBC phenotypic modifications consequently evoke a myriad of physiological changes involved in multi-system manifestations. Thus, RBC oxidative stress in SCD can ultimately instigate major processes involved in organ damage. The critical role of the sickle RBC ROS production and its regulation in SCD pathophysiology are discussed here.
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