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Liver factor B silencing to cure C3 glomerulopathy: Evidence from a mouse model of complement dysregulation
Cristina Zanchi1, Monica Locatelli1, Daniela Corna1
1Istituto di Ricerche Farmacologiche Mario Negri IRCCS, Centro Anna Maria Astori Science and Technology Park Kilometro Rosso, Bergamo, Italy.
Insights
Targeting complement factor B (FB) with siRNA shows promise for C3 glomerulopathy (C3G) in mouse models with partial complement factor H (FH) loss. This approach normalized C3 levels and reduced glomerular deposits, suggesting a potential therapy for FH-haploinsufficient C3G.
Area of Science:
- Nephrology and Immunology
- Complement System Biology
- RNA Interference Therapeutics
Background:
- C3 glomerulopathy (C3G) is a rare kidney disease driven by uncontrolled alternative pathway (AP) complement activation.
- Current treatments for C3G are limited, highlighting the need for targeted therapies.
- Complement factor B (FB) is crucial for AP amplification and a potential therapeutic target.
Purpose of the Study:
- To investigate the efficacy of targeting liver FB expression using GalNAc-conjugated siRNA in mouse models of C3G.
- To evaluate the therapeutic potential of FB inhibition in complete (Cfh-/-) and partial (Cfh+/-) complement factor H (FH) deficiency models.
Main Methods:
- Utilized GalNAc-conjugated siRNA to selectively suppress hepatic FB expression.
- Employed two mouse models: complete FH deficiency (Cfh-/-) and partial FH deficiency (Cfh+/-).
- Assessed serum C3 levels, glomerular C3 deposition, and ultrastructural changes.
Main Results:
- FB siRNA treatment failed to improve C3 levels or reduce glomerular C3 deposition in Cfh-/- mice.
- In Cfh+/- mice, FB siRNA normalized circulating C3 levels and significantly reduced glomerular and mesangial C3 deposits.
- FB siRNA demonstrated a therapeutic benefit in the partial FH deficiency model, suggesting a role in FH-haploinsufficient C3G.
Conclusions:
- FB-targeted inhibition via liver-directed siRNA shows potential as a therapeutic strategy for C3G, particularly in cases of FH haploinsufficiency.
- The efficacy of FB inhibition may depend on the degree of complement dysregulation, as seen in the differential responses between Cfh-/- and Cfh+/- mice.
- RNA interference-mediated FB silencing presents a promising avenue for treating specific C3G patient populations.
Abstract:
Uncontrolled activation of the alternative pathway (AP) of complement, due to genetic and/or acquired defects, plays a primary pathogenetic role in C3 glomerulopathy (C3G), a rare and heterogeneous disease characterised by predominant C3 fragment deposition within the glomerulus, as well as glomerular damage. There are currently no approved disease-specific treatments for C3G, but new drugs that directly counteract AP dysregulation, targeting components of the pathway, have opened promising new perspectives for managing the disease. Complement factor B (FB), which is primarily synthesised by hepatocytes, is a key component of the AP, as it drives the central amplification loop of the complement system. In this study we used a GalNAc (N-Acetylgalactosamine)-conjugated siRNA to selectively target and suppress liver FB expression in two mouse models characterised by the complete (Cfh-/- mice) or partial (Cfh+/-) loss of function of complement factor H (FH). Homozygous deletion of FH induced a severe C3G phenotype, with strong dysregulation of the AP of complement, glomerular C3 deposition and almost complete C3 consumption. Mice with a heterozygous deletion of FH had intermediate C3 levels and exhibited slower disease progression, resembling human C3G more closely. Here we showed that FB siRNA treatment did not improve serum C3 levels, nor limit glomerular C3 deposition in Cfh-/- mice, while it did normalise circulating C3 levels, reduce glomerular C3 deposits, and limit mesangial electron-dense deposits in Cfh+/- mice. The present data provide important insights into the potential benefits and limitations of FB-targeted inhibition strategies and suggest RNA interference-mediated FB silencing in the liver as a possible therapeutic approach for treating C3G patients with FH haploinsufficiency.

