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Updated: Jun 18, 2026

Measuring Erythrocyte Complement Receptor 1 Using Flow Cytometry
Published on: May 19, 2020
Complete complement deficiency in a large cohort of familial systemic lupus erythematosus
R Aggarwal1, A L Sestak, A D'Souza2
1Arthritis and Immunology Program, Oklahoma Medical Research Foundation, Oklahoma City, OK, USA; Department of Medicine, University of Oklahoma Health Sciences Center, Oklahoma City, OK, USA.
Insights
Hereditary complete complement deficiencies are rare in families with multiple systemic lupus erythematosus (SLE) patients. However, these deficiencies are concentrated in families where SLE onset occurs before age 18.
Area of Science:
- Immunology
- Genetics
- Rheumatology
Background:
- Complete deficiency of early complement components (C1, C2, C4) is linked to systemic lupus erythematosus (SLE).
- Previous research focused on SLE in complement-deficient individuals, not the converse in familial SLE cohorts.
Purpose of the Study:
- To investigate the prevalence of hereditary complete complement deficiencies in families with multiple SLE patients.
- To identify if complement deficiencies are more common in familial SLE with pediatric onset.
Main Methods:
- CH50 testing was performed on SLE patients from 544 families with at least two affected members.
- Medical records were reviewed for historical CH50 values and complement diagnoses.
- Families with zero CH50 values were further analyzed for specific complement component deficiencies and disease onset age.
Main Results:
- Only 2 out of 544 SLE families exhibited definite or possible complete complement deficiency.
- Complete complement deficiency was found in 1 of 7 families with exclusively pediatric-onset SLE.
- Among families with at least one pediatric-onset SLE patient, 2 of 85 had complete complement deficiency.
Conclusions:
- Complete complement deficiency is uncommon in families with multiple SLE patients.
- Hereditary complete complement deficiencies are disproportionately represented in familial SLE cases with onset before 18 years of age.
Abstract:
Genetic complete deficiency of the early complement components such as C1, C2 and C4 commonly results in a monogenetic form of systemic lupus erythematosus (SLE). However, previous studies have examined groups of complete complement deficient subjects for SLE, while a familial SLE cohort has not been studied for deficiencies of complement. Thus, we undertook the present study to determine the frequency of hereditary complete complement deficiencies among families with two or more SLE patients. All SLE patients from 544 such families had CH50 determined. Medical records were examined for past CH50 values. There were 66 individuals in whom all available CH50 values were zero. All but four of these had a SLE-affected relative with a non-zero CH50; thus, these families did not have monogenetic complement deficient related SLE. The four remaining SLE-affected subjects were in fact two sets of siblings in which three of the four SLE patients had onset of disease at <18 years of age. Both patients in one of these families had been determined to have C4 deficiency, while the other family had no clinical diagnosis of complement deficiency. In this second family, one of the SLE patients had had normal C4 and C3 values, indicating that either C1q or C2 deficiency was possible. Thus, only 2 of 544 SLE families had definite or possible complement deficiency; however, 1 of 7 families in which all SLE patients had pediatric onset and 2 of 85 families with at least 1 pediatric-onset SLE patent had complete complement deficiency. SLE is found commonly among families with hereditary complement deficiency but the reverse is not true. Complete complement deficiency is rare among families with two or more SLE patients, but is concentrated among families with onset of SLE prior to age 18.
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