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Comparative Proteomic Analysis Reveals Altered Ciliary Proteins in Sickle Cell Disease
Ashraf M Mohieldin1,2, Madison Spencer1, Carter Bernal1
1College of Graduate Studies, Master Program of Pharmaceutical Science, California Northstate University, Elk Grove, California 95757, United States.
Sickle cell disease (SCD) damages blood vessels by altering primary cilia. Cilia protein changes in SCD patients may serve as biomarkers for vascular damage.
Area of Science:
- Cell biology
- Hematology
- Vascular biology
Background:
- Sickle cell disease (SCD) involves abnormal red blood cells (RBCs) impacting blood flow.
- Primary cilia in endothelial cells detect blood flow and are affected by sickled RBCs, leading to deciliation.
- The specific impact of sickled RBCs on ciliary protein profiles in SCD is not well understood.
Purpose of the Study:
- To investigate endothelial cell-cilia stability under varying shear stress in SCD.
- To analyze ciliary protein profiles in mouse models and human participants with SCD.
- To identify potential ciliary biomarkers for vascular damage in SCD.
Main Methods:
- Utilized mouse models and human participants with SCD.
- Subjected endothelial cilia to sickled RBCs under controlled shear stress (5.0 dyn/cm²).
- Performed proteomic and bioinformatic analyses of ciliary proteins and post-translational modifications.
Main Results:
- Significant deciliation events occurred when endothelial cilia were exposed to sickled RBCs at 5.0 dyn/cm².
- SCD mouse models exhibited distinct ciliary protein profiles, signaling pathways, and post-translational modifications.
- Translational studies confirmed enrichment of Transferrin Receptor-1 (TfR1), GAPDH, and ARL13B in SCD patients.
Conclusions:
- Endothelial cilia stability is compromised by sickled RBCs in SCD.
- Ciliary protein profiles differ significantly in SCD, indicating altered cellular processes.
- Specific ciliary proteins like TfR1, GAPDH, and ARL13B are potential biomarkers for vascular damage in SCD.
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