Understanding the Pathophysiology of Sickle Cell Anemia in Nigeria
Sickle cell anemia or Sickle Cell Disease (SCD) is a blood disorder that is passed on from parents which leads to the abnormal haemoglobin molecules making the red blood cells rigid, sticky and sickle-shaped. Sickle cell disease (SCD) is one of the highest burden diseases in Nigeria, hence the importance of understanding pathophysiology of the disease for patients, families and healthcare professionals.
Pathophysiology of Sickle Cell Anemia
The pathophysiology of sickle cell anemia:
Mutation of gene
Restriction site mutation, 11 β -globin gene.
A glutamic acid residue in the 6 position of the 8 globin protein has been substituted by a valine residue.
They don’t make “normal, adult” hemoglobin.
Hemoglobin Polymerization
Upon oxygen unloading, a long and rigid rod comprising many HbS molecules forms.
This makes red blood cells to be bent or to have a sickle-shape.
Red Blood Cell Sickling
Sickled RBCs are:
Hard and less flexible
Susceptible to hemolysis (breaking up prematurely)
Have a shorter life span (~10–20 days compared to 120 days for healthy RBCs)
Vaso-occlusion
Sickled cells:
Become trapped in small capillaries
Cause blockages in blood vessels
Cause tissue ischemia, pain and organ damage
Hemolysis and Anemia
Progressive destruction of sickle cells results in:
Hemolytic anemia levels
Hyperbilirubinemia
Gallstones
Inflammation
Blocked blood flow and cell damage cause:
Inflammatory chemicals
Endothelial activation and damage
More adhesion of leukocytes and sickled cells to blood vessel walls
Complications of Sickle Cell Disease
Include:
Pain Crises
Severe Anemia
Increased Risk of Infections
Acute Chest Syndrome
Stroke
Organ Damage
Delayed Growth and Puberty
Vision Problems
Leg Ulcers
Gallstones
Priapism in Men
Pregnancy Complications
Mental and Emotional Challenges
Treatments for Sickle Cell Disease
Medications
Hydroxyurea:
The mechanism of pain diminishing is increasing fetal hemoglobin induced by hydroxyurea.
Blood Transfusions
Patients with high risk receive are given regular blood transfusions to avoid risk of stroke, severe anemia and organ damage.
Pain Management
Treatment for pain involves fluids, oxygen, medications, and support.
Infection Prevention
Patients often receive:
Vaccinations
Antibiotics
Nutritional support
Folic acid supplements
Gene Therapy
A new therapy is currently being developed in which a normal gene is introduced into a person's cells to replace the faulty one that is the cause of sickle cell disease.
Bone Marrow Transplant
Bone Marrow Transplant is the most effective and successful cure for sickle cell disease.
In this procedure:
The diseased marrow is destroyed and replaced with healthy stem cells.
Healthy donor cells produce normal red blood cells.
With time, the patient may be able to avoid sickle cell crises and many disease complications.
Generally, the highest results are achieved in:
Children and youth
A matched sibling donor
Patients with not so severe organ damage.
Recent studies, and clinical reports, show that today's transplants methods have greatly enhanced survival and cure rates.
Conclusion
The understanding of the pathophysiology of sickle cell anemia in Nigeria explains the fact that the disease may involve more than just the red blood cells and may give rise to complications other than anemia. The mutation that is present in the underlying gene causes the production of HbS, which has a tendency to polymerise when it is deoxygenated. This results in red-cell sickle, vaso-occlusion, chronic haemolysis, inflammation and subsequent organ damage. Comprehensive follow-up and preventive care, coupled with timely diagnosis and disease-modifying treatments, are crucial. Advanced and complicated disease may require specialist haematologist input for Nigerian patients in order to determine the best course of action to be taken.
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