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Updated: Aug 24, 2025

Competitive Transplants to Evaluate Hematopoietic Stem Cell Fitness
Published on: August 31, 2016
Long-Term Organ Function After HCT for SCD: A Report From the Sickle Cell Transplant Advocacy and Research Alliance
Elizabeth Stenger1, Yijin Xiang2, Martha Wetzel2
1Aflac Cancer and Blood Disorders Center, Children's Healthcare of Atlanta/Emory University, Atlanta, Georgia.
Insights
Hematopoietic cell transplantation (HCT) offers a cure for sickle cell disease (SCD), but long-term organ function requires monitoring. Early HCT and reduced-intensity conditioning may improve outcomes by minimizing organ damage.
Area of Science:
- Hematology
- Transplantation Medicine
- Pediatric Oncology
Background:
- Hematopoietic cell transplantation (HCT) is a curative option for sickle cell disease (SCD).
- Long-term data on organ function after HCT for SCD are limited.
- Understanding organ function post-HCT is crucial for optimizing patient care.
Purpose of the Study:
- To describe long-term organ function in patients who underwent HCT for SCD.
- To identify predictors of organ dysfunction following HCT in SCD patients.
- To inform clinical practice regarding the timing and conditioning regimens for HCT in SCD.
Main Methods:
- Retrospective analysis of 247 patients from the Sickle cell Transplant Advocacy and Research alliance.
- Organ function data collected at last follow-up, comparing pre- and post-HCT status.
- Bivariable and multivariable analyses to determine predictors of organ dysfunction.
Main Results:
- Increased cardiac dysfunction (low ejection/shortening fractions) observed post-HCT (6.0% vs 0.6%).
- Cardiac dysfunction associated with myeloablative conditioning (MAC) and severe acute graft-versus-host disease (GVHD).
- Overall organ dysfunction linked to older age at HCT (≥16 years) and severe clinical SCD.
Conclusions:
- HCT can lead to cardiac dysfunction, particularly with MAC and severe GVHD.
- Younger age at HCT and less intense conditioning may reduce the risk of organ dysfunction.
- Findings support considering HCT earlier in life for SCD management.
Abstract:
Hematopoietic cell transplantation (HCT) is an established cure for sickle cell disease (SCD) supported by long-term survival, but long-term organ function data are lacking. We sought to describe organ function and assess predictors for dysfunction in a retrospective cohort (n = 247) through the Sickle cell Transplant Advocacy and Research alliance. Patients with <1-year follow-up or graft rejection/second HCT were excluded. Organ function data were collected from last follow-up. Primary measures were organ function, comparing pre- and post-HCT. Bivariable and multivariable analyses were performed for predictors of dysfunction. Median age at HCT was 9.4 years; the majority had HbSS (88.2%) and severe clinical phenotype (65.4%). Most received matched related (76.9%) bone marrow (83.3%) with myeloablative conditioning (MAC; 57.1%). Acute and chronic graft-versus-host disease (GVHD) developed in 24.0% and 24.8%. Thirteen patients (5.3%) died ≥1 year after HCT, primarily from GVHD or infection. More post-HCT patients had low ejection or shortening fractions than pre-HCT (0.6% → 6.0%, P = .007 and 0% → 4.6%, P = .003). The proportion with lung disease remained stable. Eight patients (3.2%) had overt stroke; most had normal (28.3%) or stable (50.3%) brain magnetic resonance imaging. On multivariable analysis, cardiac dysfunction was associated with MAC (odds ratio [OR] = 2.71; 95% confidence interval [CI], 1.09-6.77; P = .033) and severe acute GVHD (OR = 2.41; 95% CI, 1.04-5.62; P = .041). Neurologic events were associated with central nervous system indication (OR = 2.88; 95% CI, 2.00-4.12; P < .001). Overall organ dysfunction was associated with age ≥16 years (OR = 2.26; 95% CI, 1.35-3.78; P = .002) and clinically severe disease (OR = 1.64; 95% CI, 1.02-2.63; P = .043). In conclusion, our results support consideration of HCT at younger age and use of less intense conditioning.
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