Chairman - Haemato Oncology & BMT, BLK-Max Super Speciality Hospital, New Delhi
Part 14 of 15 in Bone Marrow (Stem Cell) Transplant for Sickle Cell Disease
What Is Sickle Cell Disease? Genetics, Mechanism, and Who It Affects
June 14, 2026
Sickle cell disease is a genetic blood disorder caused by a single mutation in the beta-globin gene. It is the most common genetic disorder in people of African descent, affecting millions across sub-Saharan Africa, India, and diaspora communities globally. A child develops sickle cell disease only when they inherit the mutated gene from both parents.
The genetic mechanism behind sickle cell disease
The mutation affects the beta-globin chain at a single base pair, causing haemoglobin molecules to polymerise when the cell gives up oxygen. The result is a stiff, deformed sickle-shaped cell that cannot flow through small capillaries, blocking blood vessels and destroying red cells rapidly, causing severe anaemia and vascular crises.
A child who inherits the gene from only one parent is a carrier: no disease but can pass it on. Two carriers have a 25% chance per pregnancy of producing a child with sickle cell disease.
Who is affected by sickle cell disease?
Nigeria alone sees approximately 150,000 affected births each year. In the United States, roughly one in 600 African-American births results in sickle cell disease. In India, a significant belt across the southern and central parts of the country carries high sickle cell prevalence. As Dr. Dharma Choudhary, Chairman of Haemato Oncology and BMT at BLK-Max Super Speciality Hospital, New Delhi, noted in his Jivo Masterclass: practically every second or third person in Africa will be affected by sickle cell disease whether as a carrier or as disease.
Carriers versus sickle cell disease patients
Carriers generally live normal lives. Patients with sickle cell disease, who have two copies of the mutation, face severe progressive organ damage over their lifetime. For these patients, bone marrow transplant is the only available curative treatment.
Series index | Organ Damage in Sickle Cell Disease: What Happens Over Time →
This article is based on a Jivo Masterclass session conducted by Dr. Dharma Choudhary, Chairman, Haemato Oncology and BMT, BLK-Max Super Speciality Hospital, New Delhi. The article has been summarised with the assistance of an AI tool from the original masterclass recording. Watch the full Masterclass recording
This guide is based on a live Jivo Masterclass — Dr. Dharma Choudhary taught doctors across Africa on December 7, 2025.
FROM THE LIVE Q&A
Dr. Vasim (Chad)
Apart from transplantation, in symptomatic sickle cell patients, is there no antigen therapy for asymptomatic patients to prevent homozygous transmission?
Dr. Dharma Choudhary
No. Sickle cell disease is a gene defect — there are sickle cell carriers and sickle cell disease patients. Disease means both parents were carriers; a carrier has only one gene affected and can pass it to their children if their partner is also a carrier. Other than gene therapy, there is no treatment for asymptomatic carriers — no cure or treatment is needed, because they reach adulthood and live a normal life. Since there is no phenotypic expression of the genotypic disorder, no treatment is warranted, because every treatment carries a risk of morbidity and mortality.
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Frequently Asked Questions
What is the age at which patients can undergo bone marrow transplant? Is there an upper age cutoff after which the benefits no longer outweigh the risks?▼
We advise the youngest age should be more than two years — doing a transplant very early, at 6 months to 1 year after only one crisis episode, children cannot tolerate the required immunosuppression properly, though on an emergency basis it is sometimes done for leukaemia. For sickle cell disease and thalassemia, transplant should be offered after 2 years of age. There is no upper age cutoff — every patient has the right to live, whatever the outcome percentage; the decision to go for transplant depends on the patient and family, weighed against quality of life.
What is the racial survival rate after transplant according to current statistics, and is race a factor in the success of transplant?▼
Race does not affect the outcome. African sickle cell patients present with more severe sickling compared to Indian sickle cell patients, but the transplant outcome is the same — leukaemia treated in Africa versus leukaemia treated in India has the same outcome. Transplant outcome is mainly affected by patient factors (disease stage and comorbidity), donor factors (full match, half match, or mismatch), and treatment factors (right conditioning, right immunosuppression, right supportive care). Get those right and outcomes across the globe are similar, whether the transplant is done in America, Tokyo, or India.
Are there any clinical nutritional considerations before and after transplant?▼
We encourage good nutrition — patients can eat whatever they like, there is no prohibition, other than avoiding street food. Any hygienic food eaten at home, with good nutrition and a good amount of protein, is good for transplant outcome — the same as for any ordinary healthy human being.
In some countries even HLA typing tests are not available. If a patient is travelling from elsewhere, how does a physician collect samples, what precautions should be taken, and how should the sample be transported so it can reach a transplant centre like yours for testing?▼
I will circulate full information from my lab on the prerequisites for an HLA sample — what temperature it should be kept at, how many hours it can take to transport, and how many ml of blood sample or a buccal swab is required, so the sample can safely reach India for testing. Laboratory networks such as Metropolis and Lancet already exist in Kenya, Ghana and Uganda, though coverage is patchier in countries such as Nigeria and the DRC.
Can you help us with the pathology of the stem cell, and what are the effects of the transplant? For example, one patient asked you in a consultation how their life would be after transplant, and you said it would be similar to the donor's.▼
The stem cell itself has no pathology — it is the mother cell present in every human being that produces blood, the haematopoietic stem cell. Sickle cell disease is a defect in a single gene, a single base-pair defect in the beta-haemoglobin chain, so it is the haematopoietic stem cell that is defective, and we need to replace it with a healthy one. As for effects: about 70% of patients have no major complications and 30% will have graft-versus-host disease. In the acute phase there can be neutropenia leading to sepsis, mucositis (mouth ulceration causing pain, vomiting, diarrhoea), and haemorrhagic cystitis (blood in urine from the conditioning chemotherapy or radiation), which usually recovers with hydration and prevention. Veno-occlusive disease of the liver can also occur. The two most important complications are acute and chronic graft-versus-host disease — chronic GVHD causes dry eyes, dry skin, dry mouth and lung problems, and impairs quality of life. Infertility is another complication, meaning inability to reproduce, not sexual dysfunction — sexual and social life are not affected after transplant, only ovarian or testicular failure affecting spermatogenesis and ovulation.
What causes sickle cell disease at the genetic level?▼
A single mutation in the beta-globin gene. The mutation causes haemoglobin molecules to polymerise when the red blood cell gives up oxygen, producing a stiff, sickle-shaped cell that blocks small blood vessels and is destroyed rapidly.
What is the difference between a sickle cell carrier and a sickle cell disease patient?▼
A child who inherits the mutated gene from only one parent is a carrier, with no disease, but can pass the gene on. A child develops sickle cell disease only by inheriting the mutation from both parents.
What is the chance that two carrier parents have a child with sickle cell disease?▼
25% per pregnancy.
How many people are affected by sickle cell disease each year?▼
Nigeria alone sees approximately 150,000 affected births annually. In the United States, roughly one in 600 African-American births results in sickle cell disease. India also has a significant belt of high prevalence across its southern and central regions.
Do sickle cell carriers need treatment?▼
Generally not. Carriers typically live normal lives, while patients with sickle cell disease, who carry two copies of the mutation, face severe progressive organ damage over their lifetime.
In This Series: Bone Marrow (Stem Cell) Transplant for Sickle Cell Disease
- 1.Bone Marrow Transplant for Sickle Cell Disease
- 2.After Bone Marrow Transplant: What to Expect When You Return Home
- 3.Is There an Age Limit for Bone Marrow Transplant in Sickle Cell Disease?
- 4.Cost of Bone Marrow Transplant in India vs US and Europe: What African Patients Should Know
- 5.Fertility After Bone Marrow Transplant: What Sickle Cell Patients Need to Know
- 6.Gene Therapy vs Bone Marrow Transplant for Sickle Cell Disease: What the Evidence Shows
- 7.What Is GVHD and How Is It Managed After Bone Marrow Transplant?
- 8.Haploidentical Transplant for Sickle Cell Disease: Why the Outcomes Have Changed
- 9.HLA Typing for Sickle Cell Transplant: What It Is and How to Get It Done in Africa
- 10.Organ Damage in Sickle Cell Disease: What Happens Over Time
- 11.Sickle Cell Disease: The Only Cure Available Today
- 12.Hydroxyurea and Other Medicines for Sickle Cell Disease: What They Can and Cannot Do
- 13.Sibling Donor vs Haploidentical Donor for Sickle Cell Transplant: What Are Your Options?
- 14.What Is Sickle Cell Disease? Genetics, Mechanism, and Who It Affects
- 15.Who Should Get a Bone Marrow Transplant for Sickle Cell Disease?