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The complement regulatory protein CD59: insights into attenuation of choroidal neovascularization
Gloriane Schnabolk1, Stephen Tomlinson, Bärbel Rohrer
1Ralph H. Johnson VA Medical Center, Division of Research, 29401, Charleston, SC, USA, faith@musc.edu.
Insights
Complement activation contributes to age-related macular degeneration (AMD). Targeting complement receptor 2 (CR2) with CD59 offers a promising strategy for site-specific inhibition of complement attack in AMD.
Area of Science:
- Immunology
- Ophthalmology
- Molecular Biology
Background:
- Complement activation, particularly the membrane attack complex (MAC), is implicated in age-related macular degeneration (AMD) pathogenesis.
- Retinal pigment epithelium (RPE) cells are key targets, with diminished CD59 expression correlating with AMD severity.
- Current therapeutic strategies focus on MAC inhibition, but soluble CD59 (sCD59) has limitations in cell protection.
Purpose of the Study:
- To explore novel therapeutic strategies for AMD by enhancing the efficacy of CD59-based complement inhibition.
- To investigate the potential of targeting CD59 to membranes undergoing complement attack via complement receptor 2 (CR2).
Main Methods:
- Review of existing literature on complement activation in AMD and strategies for sCD59 enhancement.
- Discussion of CR2-mediated targeting of CD59 to complement-activated membranes.
Main Results:
- Various strategies to improve sCD59 efficacy, including Fc fusion, membrane-targeting domains, and adenoviral vectors, have been explored.
- CR2-CD59 demonstrates potential for site-specific complement inhibition by binding to membranes with complement C3 breakdown fragments.
Conclusions:
- CR2-CD59 represents a potentially superior therapeutic approach for AMD due to its targeted delivery and regulated action.
- This strategy offers site-specific complement inhibition, crucial for inflammatory diseases like AMD with localized inflammation.
Abstract:
Complement activation is associated with age-related macular degeneration (AMD), with the retinal pigment epithelium (RPE) being one of the main target tissues. In AMD, disease severity is correlated with the formation of the membrane attack complex (MAC), the terminal step in the complement cascade, as well as diminished RPE expression of CD59, a membrane-bound regulatory protein of MAC formation. This has prompted the search for therapeutic strategies based on MAC inhibition, and soluble forms of CD59 (sCD59) have been investigated in mouse laser-induced choroidal neovascularization, a model for "wet" AMD. Unlike membrane-bound CD59, sCD59 provides relatively poor cell protection from complement, and different strategies to increase sCD59 activity at the cell membrane level have been investigated. These include increasing the circulatory half-life of sCD59 by the addition of an Fc moiety; increasing the half-life of sCD59 in target tissues by modifying CD59 with a (non-specific) membrane-targeting domain; and by locally overexpressing sCD59 via adenoviral vectors. Finally, a different strategy currently under investigation employs complement receptor (CR)2-mediated targeting of CD59 exclusively to membranes under complement attack. CR2 recognizes long-lasting membrane-bound breakdown activation fragments of complement C3. CR2-CD59 may have greater therapeutic potential than other complement inhibitory approaches, since it can be administered either systemically or locally, it will bind specifically to membranes containing activated complement activation fragments, and dosing can be regulated. Hence, this strategy might offer opportunities for site-specific inhibition of complement in diseases with restricted sites of inflammation such as AMD.
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