Genetic and epigenetic dysregulation of CR1 is associated with catastrophic antiphospholipid syndrome
Nikhil Ranjan1, Michael A Cole1, Gloria F Gerber1
1Division of Hematology, Department of Medicine, Johns Hopkins University School of Medicine, Baltimore, MD, USA.
Insights
Catastrophic antiphospholipid syndrome (CAPS) is linked to reduced complement receptor 1 (CR1) due to genetic or epigenetic factors. CR1 deficiency in CAPS patients indicates a potential response to C5 inhibition therapy.
Area of Science:
- Immunology
- Hematology
- Genetics
Background:
- Catastrophic antiphospholipid syndrome (CAPS) is a severe, complement-driven thrombotic disease causing multiorgan failure.
- Complement receptor 1 (CR1) plays a crucial role in regulating complement activation and clearing immune complexes.
- Rare germline variants in CR1 have been identified in a significant portion of CAPS patients.
Purpose of the Study:
- To elucidate the mechanisms of CR1 dysregulation (genetic and epigenetic) in CAPS.
- To investigate the role of CR1 deficiency in complement-mediated thrombosis in CAPS.
- To evaluate C5 inhibition as a therapeutic strategy for CAPS.
Main Methods:
- Quantification of CR1 expression on hematopoietic cells using flow cytometry.
- CRISPR/Cas9 genome editing to create CR1 knock-out/knock-in cell lines with patient-specific variants.
- Multiomics analysis, including methylation studies, to identify epigenetic factors.
- Functional assays assessing complement-mediated cell killing, complement degradation products, and circulating immune complexes.
Main Results:
- CAPS erythrocytes showed significantly reduced CR1 expression compared to healthy controls.
- Promoter hypermethylation was identified as a potential epigenetic mechanism for CR1 downregulation.
- A novel CR1 variant (CR1-V2125L) reduced CR1 expression and increased complement-mediated cell death.
- Elevated levels of circulating immune complexes were observed in acute CAPS patients.
- Five CAPS patients treated with C5 inhibition showed mitigation of thrombosis.
Conclusions:
- CR1 deficiency, resulting from genetic or epigenetic alterations, is a potential hallmark of CAPS.
- Reduced CR1 expression in CAPS patients may predict a positive response to C5 inhibition therapy.
Objectives:
Catastrophic antiphospholipid syndrome (CAPS) is a complement-driven thrombotic disorder, characterised by widespread thrombosis and multiorgan failure. We identified rare germline variants including complement receptor 1 (CR1) in 50% of patients with CAPS. Here, we define CR1 dysregulation mechanisms (genetic/epigenetic) underlying complement-mediated thrombosis in CAPS and support C5 inhibition as a potential therapy.
Methods:
We quantified CR1 expression by flow cytometry across haematopoietic cell types. CRISPR/Cas9 genome editing of TF-1 (erythroleukaemia) cells was performed to generate CR1 'knock-out' and 'knock-in' lines with patient-specific CR1 variants. Multiomics analysis was performed to investigate the role of methylation in patients with reduced CR1 expression. Functional impact of low CR1 was assessed by complement-mediated cell killing using modified Ham assay, cell-bound complement degradation products through flow cytometry, and circulatory immune complexes in serum samples through ELISA.
Results:
CR1 expression in erythrocytes was markedly reduced on CAPS erythrocytes (n = 9, 21.80%) compared to healthy controls (HCs; n = 35, 84.04%), with promoter hypermethylation emerging as a plausible epigenetic mechanism for CR1 downregulation. Novel germline variant (CR1-V2125L; rs202148801) mitigated CR1 expression and increased complement-mediated cell death of knock-in cell lines. Erythrocytes from the patient with the CR1-V2125L variant had low CR1 expression. Levels of circulating immune complexes, which are bound and cleared by CR1 on erythrocytes, were higher in acute CAPS (n = 3, 25.55 µg Eq/mL) than HCs (n = 3, 7.445 µg Eq/mL). Five patients were treated with C5 inhibition which mitigated thrombosis.
Conclusions:
Genetic or epigenetic-mediated CR1 deficiency is a potential hallmark of CAPS and predicts response to C5 inhibition.
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