Identification of a C3b-specific nanobody that does not bind C3 and blocks alternative pathway convertases
The human complement system is a protein network in blood and other body fluids that fights invading pathogens and is involved in maintaining homeostasis. A central step in the complement cascade is the conversion of complement protein C3 to C3b by convertase enzymes. Upon cleavage of C3, the nascent C3b molecule undergoes a large conformational change which exposes new epitopes. Molecules that discriminate between C3b and C3 could provide a powerful tool to selectively bind surface-bound complement activation products while leaving the circulating precursors untouched. In this study, we developed C3b-specific nanobodies by generating phage libraries from llamas immunized with purified and surface-bound C3b. We describe UNbC3b-1 as a high-affinity binder that recognizes soluble and surface-bound C3b molecules but does not bind to C3 in its native state. A 4.2 [A] structure of the UNbC3b-1:C3b complex generated by cryogenic electron microscopy shows that UNbC3b-1 binds C3b at the interface of MG3, MG4, and MG6, overlapping with the complement receptor immunoglobulin (CRIg) binding site. Functionally, we show that UNbC3b-1 inhibits complement activity in the alternative pathway (AP), likely by preventing association between substrate C3 and the AP C3 convertase (C3bBb). Altogether, nanobody UNbC3b-1 is a valuable tool to specifically bind C3b molecules and to selectively inhibit the AP convertases of the complement system.