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Mannose-binding lectin-associated serine proteases (MASPs) are essential enzymatic components of the lectin pathway of the complement system, a key arm of the innate immune response. The family consists of three main proteases—MASP-1, MASP-2, and MASP-3—which circulate in plasma as complexes with pattern recognition molecules such as mannose-binding lectin (MBL) and ficolins (UniProt O00187, P48740). Upon recognition of specific carbohydrate patterns on pathogens or damaged host cells, MASP-2 is activated and cleaves complement components C4 and C2 to generate C3 convertase, while MASP-1 and MASP-3 provide essential amplification and cross-talk with the alternative pathway (PubMed: 30108568). Pathological overactivation of these enzymes is implicated in a variety of complement-mediated diseases, including IgA nephropathy, hematopoietic stem cell transplant-associated thrombotic microangiopathy (HSCT-TMA), and age-related macular degeneration (PubMed: 31551140). Therapeutic strategies targeting MASPs, particularly MASP-2, aim to selectively inhibit the lectin pathway while leaving the classical pathway intact to preserve some immune function. Clinical-stage inhibitors like narsoplimab have demonstrated potential in reducing inflammation and tissue injury in patients with rare complement-driven disorders (Omeros Corporation, 2024).
Inhibition of the lectin pathway of the complement system by blocking the proteolytic activity of MASP enzymes, thereby preventing the cleavage of complement components C4 and C2 (for MASP-2) or C2 and factor B (for MASP-1/3).
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