地中海贫血
镰状细胞性贫血
贫血
β地中海贫血
细胞
脾脏
生物
计算生物学
医学
免疫学
内科学
遗传学
作者
Nishant Kumar Rana,Christina Lisk,Francesca Cendali,Miguel A. Lucero,Abby Grier,Saini Setua,Kiruphararan Thangaraju,Alamzeb Khan,Julie A. Reisz,Monika Dzieciątkowska,David I. Pak,Delaney Swindle,Martin Danaher,Saqib Raza Khan,Natalie Westover,Michelle Carter,Kathryn L. Hassell,Rachelle Nuss,Gemlyn George,Paul W. Buehler
标识
DOI:10.1021/acs.jproteome.4c00814
摘要
Sickle cell disease and β-Thalassemia are two of the most prevalent hemoglobinopathies worldwide. Both occur due to genetic mutations within the HBB gene and are characterized by red blood cell dysfunction, anemia, and end-organ injury. The spleen and liver are the primary organs where erythrophagocytosis, engulfing the red blood cells, occurs in these diseases. Understanding metabolism and protein composition within these tissues can therefore inform the extent of hemolysis and disease progression. We utilized a multiomics approach to highlight metabolomic and proteomic differences in the spleen and liver. The Berkley sickle cell disease (Berk-SS), heterozygous B1/B2 globin gene deletion (HbbTh3/+) a known β-Thalassemia model, and wildtype (WT, C57/Bl6) murine models were evaluated in this report. This analysis showed Berk-SS and HbbTh3/+ shared distinct antioxidant and immunosuppressive splenic phenotypes compared to WT mice with divergence in purine metabolism, gluconeogenesis, and glycolysis. In contrast, Berk-SS mice have a distinct liver pro-inflammatory phenotype not shared by HbbTh3/+ or WT mice. Together, these data emphasize that metabolic and proteomic reprogramming of the spleen and livers in Berk-SS and HbbTh3/+mice may be relevant to the individual disease processes.
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