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Published on: May 2, 2013
High-activity Classical and Alternative Complement Pathway Genotypes-Association With Donor-specific
Blanka Mező1, Roman Reindl-Schwaighofer2, Farsad Eskandary2
1Research Laboratory, IIIrd Department of Internal Medicine and MTA-SE Research Group of Immunology and Hematology, Hungarian Academy of Sciences and Semmelweis University, Budapest, Hungary.
Insights
Complement genetics influence antibody-mediated rejection (AMR) in kidney transplants. High-activity alternative pathway (AP) genotypes correlate with inflammation and increased graft loss risk in DSA-positive patients.
Area of Science:
- Immunology
- Transplantation Biology
- Genetics
Background:
- Donor-specific antibodies (DSA) can trigger transplant injury via complement activation.
- The role of intrinsic complement pathway strength in DSA pathogenicity remains unclear.
Purpose of the Study:
- To investigate the relationship between classical and alternative pathway (AP) complement genetic strength and DSA pathogenicity.
- To determine if complement genetics influence antibody-mediated rejection (AMR) and long-term kidney transplant outcomes.
Main Methods:
- Defined high-activity classical and AP genotypes based on C4 gene copy number and specific polymorphisms (C3, fB, fH).
- Evaluated associations with complement profiles, rejection features (AMR), and graft survival in kidney transplant recipients (n=741, DSA+ n=83, long-term n=660).
Main Results:
- High-activity AP complotype associated with complement consumption and enhanced microcirculation inflammation in DSA-positive patients.
- This AP complotype was linked to a slightly increased risk of graft loss in the broader transplant cohort.
Conclusions:
- Complement genetics contribute to the phenotypic presentation of AMR.
- Further research is needed to clarify the association between AP strength and antibody-triggered injury impacting graft survival.
Background:
Complement may contribute to donor-specific antibody (DSA)-triggered transplant injury. Here, we investigated whether the intrinsic strength of classical pathway and alternative pathway (AP) relates to the pathogenicity of DSA.
Methods:
Classical pathway and AP high-activity genotypes were defined according to C4 gene copy number and the presence of functional polymorphisms in C3 (C3102G), factor B (fB32R), and factor H (fH62V) genes. Associations of these genotypes with blood complement profiles and morphologic/molecular rejection features were evaluated in a cohort of 83 DSA-positive patients (antibody-mediated rejection [AMR], n = 47) identified upon cross-sectional screening of 741 kidney allograft recipients ≥180 days posttransplantation. Associations with long-term graft survival were evaluated in a larger kidney transplant cohort (n = 660) not enriched for a specific type of rejection.
Results:
In the cohort of DSA-positive subjects, the number of C4 gene copies was related to C4 protein levels in serum and capillary C4d staining, but not AMR activity. Patients with a high-activity AP complotype, which was associated with complement consumption in serum, showed enhanced microcirculation inflammation (median glomerulitis plus peritubular capillaritis score, 2 [interquartile range, 0-4 versus 1 0-2]; P = 0.037). In the larger transplant cohort, this complotype was associated with a slightly increased risk of graft loss (hazard ratio, 1.52; 95% confidence interval, 1.02-2.25; P = 0.038 and multivariable Cox model, 1.55; 1.04-2.32; P = 0.031).
Conclusions:
Our study suggests a contribution of complement genetics to the phenotypic presentation of AMR. Future studies will have to clarify whether a possible association of AP strength with graft survival relates to enhanced antibody-triggered injury.
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