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Bone marrow fat fraction and R2* in sickle cell disease: Associations with hemolysis, iron metabolism, and disease
Carolina Freitas Lins1, Carlos Ernesto Garrido Salmon2, Luana Amorim de Souza3
1Bahiana School of Medicine and Public Health (EBMSP), Av. Dom João VI, 275, Brotas, Salvador, Bahia, Brazil; Clínica Delfin Medicina Diagnóstica, Av. Antônio Carlos Magalhães, 442, Pituba, Salvador, Salvador, Bahia, Brazil; Ribeirão Preto Medical School, USP Ribeirão Preto, Hospital das Clínicas da Faculdade de Medicina de Ribeirão Preto da Universidade de São Paulo, Campus Universitário s/n - Monte Alegre, Ribeirão Preto, SP, Brazil; Ribeirão Preto Medical School Musculoskeletal Imaging Research Laboratory, Brazil; Department of Pathology, Diagnostic Imaging and Forensic Medicine, Federal University of Bahia, Salvador, Bahia, Brazil.
Background:
Six-point DIXON MRI provides fat fraction (FF) and R2* maps, enabling noninvasive assessment of bone marrow (BM) fat and iron-related changes. In sickle cell disease (SCD), chronic hemolysis and compensatory hematopoiesis may alter BM composition. This study aimed to investigate the relationship between BM FF and R2* measurements and laboratory indices of hemolysis and iron metabolism in SCD patients.
Methods:
This cross-sectional study included healthy individuals and SCD patients matched for age, sex, and weight. All participants underwent pelvic and upper abdominal MRI to quantify FF and R2* in the iliac bone (IB) and liver. Associations between FF, R2*, and markers of hemolysis were evaluated. ROC curve analysis assessed the ability of MRI-derived parameters to identify patients with a higher degree of hemolysis (HDH) and elevated ferritin levels.
Results:
Thirty-seven healthy individuals and 37 SCD patients were included. Mean IB-FF was 16.9%(±13.8%) in SCD patients and 49.3%(±11.7%) in controls (p < 0.001). Mean IB-R2* was 80.9 s-1(±25.6 s-1) and 69.8 s-1(±14.1 s-1), respectively (p = 0.024). Mean liver R2* was higher in SCD patients (65.0 ± 39.2 s-1 vs. 41.1 ± 15.0 s-1,p = 0.001). Laboratory indices were consistent with increased hemolytic activity in SCD patients. IB-R2* correlated moderately with ferritin in overall SCD group (R = 0.699,p < 0.001), strongly in HbSS subtype (R = 0.816,p < 0.001). Liver R2* and IB-FF demonstrated high accuracy for detecting elevated ferritin levels and HDH, respectively.
Conclusions:
MRI-derived IB-FF and IB-R2* were associated with laboratory indices of hemolysis and disease severity in SCD, findings that may reflect bone marrow compositional changes related to chronic hemolytic stress and erythropoietic adaptation.
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