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Complement C3 vs C5 inhibition in severe COVID-19: Early clinical findings reveal differential biological efficacy
Dimitrios C Mastellos1, Bruno G P Pires da Silva2, Benedito A L Fonseca3
1National Center for Scientific Research 'Demokritos', Aghia Paraskevi, Athens, Greece.
Insights
Complement inhibitors targeting C3 or C5 effectively reduce inflammation and improve lung function in severe COVID-19 patients. C3 inhibition offers broader control by impacting more pathways, suggesting potential for greater therapeutic benefit in thromboinflammation.
Area of Science:
- Immunology
- Pharmacology
- Critical Care Medicine
Background:
- Complement system activation is implicated in COVID-19 immunopathology, driving hyper-inflammation and organ failure.
- Therapeutic strategies targeting complement are being explored for severe COVID-19.
- The comparative efficacy of blocking upstream (C3) versus terminal (C5) complement pathways is debated.
Purpose of the Study:
- To compare the efficacy of a C3 inhibitor (AMY-101) with a C5 inhibitor (eculizumab) in severe COVID-19 patients.
- To investigate the differential mechanistic effects of C3 and C5 inhibition on COVID-19-associated inflammation and thromboinflammation.
Main Methods:
- An exploratory study comparing eculizumab (C5 inhibitor) and AMY-101 (C3 inhibitor) in small cohorts of severe COVID-19 patients.
- Assessment of clinical outcomes including C-reactive protein, IL-6 levels, lung function, and ARDS resolution.
- Evaluation of complement activation markers (C3a, sC5b-9, Factor B consumption) and neutrophil activity (NETs, LDH, neutrophil counts).
Main Results:
- Both C3 and C5 inhibitors demonstrated robust anti-inflammatory effects, reducing IL-6 and C-reactive protein, improving lung function, and resolving ARDS.
- C3 inhibition (AMY-101) provided broader therapeutic control by attenuating C3a and sC5b-9 generation and preventing Factor B consumption.
- C3 inhibition was associated with greater reductions in neutrophil counts, NET release, and LDH levels, alongside more significant lymphocyte recovery.
Conclusions:
- Therapeutic complement inhibition is effective in mitigating COVID-19 hyper-inflammation and improving clinical outcomes.
- C3 inhibition may offer broader benefits than C5 inhibition in COVID-19 by targeting multiple inflammatory pathways.
- These findings support further investigation of C3 and C5 inhibitors in large prospective trials for COVID-19 treatment.
Abstract:
Growing clinical evidence has implicated complement as a pivotal driver of COVID-19 immunopathology. Deregulated complement activation may fuel cytokine-driven hyper-inflammation, thrombotic microangiopathy and NET-driven immunothrombosis, thereby leading to multi-organ failure. Complement therapeutics have gained traction as candidate drugs for countering the detrimental consequences of SARS-CoV-2 infection. Whether blockade of terminal complement effectors (C5, C5a, or C5aR1) may elicit similar outcomes to upstream intervention at the level of C3 remains debated. Here we compare the efficacy of the C5-targeting monoclonal antibody eculizumab with that of the compstatin-based C3-targeted drug candidate AMY-101 in small independent cohorts of severe COVID-19 patients. Our exploratory study indicates that therapeutic complement inhibition abrogates COVID-19 hyper-inflammation. Both C3 and C5 inhibitors elicit a robust anti-inflammatory response, reflected by a steep decline in C-reactive protein and IL-6 levels, marked lung function improvement, and resolution of SARS-CoV-2-associated acute respiratory distress syndrome (ARDS). C3 inhibition afforded broader therapeutic control in COVID-19 patients by attenuating both C3a and sC5b-9 generation and preventing FB consumption. This broader inhibitory profile was associated with a more robust decline of neutrophil counts, attenuated neutrophil extracellular trap (NET) release, faster serum LDH decline, and more prominent lymphocyte recovery. These early clinical results offer important insights into the differential mechanistic basis and underlying biology of C3 and C5 inhibition in COVID-19 and point to a broader pathogenic involvement of C3-mediated pathways in thromboinflammation. They also support the evaluation of these complement-targeting agents as COVID-19 therapeutics in large prospective trials.
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