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Mechanisms

Nephrotic syndrome flares triple Lp(a) binding to fibrin, revealing a competitive tug-of-war with plasminogen, a study of 61 children (Arterioscler Thromb Vasc Biol 2000)

Original title: Effect of individual plasma lipoprotein(a) variations in vivo on its competition with plasminogen for fibrin and cell binding: An in vitro study using plasma from children with idiopathic nephrotic syndrome

Arterioscler Thromb Vasc Biol · · 7

Soulat T, Loyau S, Baudouin V, Maisonneuve L, Hurtaud-Roux MF, Schlegel N, Loirat C, Anglés-Cano E

This study examined competitive binding of Lp(a) and plasminogen to fibrin and cell membranes in children with idiopathic nephrotic syndrome, comparing 61 cases during a disease flare-up with 33 after 6 weeks and 42 after 6 months of remission. At flare-up, low plasminogen (median 1.34 micromol/L) and high Lp(a) (median 0.27 g/L) were accompanied by increased Lp(a) binding to fibrin (3.13) and cells (1.53) compared with control children with normal plasminogen and low Lp(a) (fibrin binding 1.31, cell binding 1.05). After 6 weeks and 6 months of remission, Lp(a) binding to fibrin decreased (to 1.7 and 1.88, respectively), correlating with falling Lp(a) concentrations and rising plasminogen levels. The findings provide the first quantitative evidence that Lp(a) binding to lysine residues on fibrin and cell surfaces depends on circulating levels of both plasminogen and Lp(a), which compete as ligands for these surfaces, a mechanism potentially relevant to Lp(a) atherothrombotic role, particularly in nephrotic patients.

Read the paper (DOI)PubMed

Original abstract

Simultaneous natural changes in lipoprotein(a) [Lp(a)] and plasminogen occur in the nephrotic syndrome and offer a unique opportunity to investigate their effects on plasminogen activation under conditions fashioned in vivo. Plasminogen, Lp(a), and apolipoprotein(a) in plasma were characterized, and their competitive binding to carboxy-terminal lysine residues of fibrin and cell membrane proteins was determined in nephrotic children during a flare-up of the disease (61 cases) and after 6 weeks (33 cases) and 6 months (42 cases) of remission. Low plasminogen concentrations (median 1.34 micromol/L, range 0.39 to 1.96 micromol/L) and high Lp(a) levels (median 0.27 g/L, range 0.07 to 2. 57 g/L) were detected at flare-up. These changes were associated with an increased Lp(a) binding ratio onto fibrin (3.13+/-0.48) and cells (1.53+/-0.24) compared with binding ratios of control children (1.31+/-0.19 and 1.05+/-0.07, respectively) with normal plasminogen and low Lp(a) (median 0.071 g/L). After 6 weeks and 6 months of remission, the values for net decrease in Lp(a) binding to fibrin were 1.7+/-0.22 (after 6 weeks) and 1.88+/-0.38 (after 6 months) and were correlated with low Lp(a) concentrations (median 0.2 g/L, range 0.07 to 0.8 g/L; and median 0.12 g/L, range 0.07 to 1.34 g/L) and inversely associated with increased plasminogen levels (median 1.82 micromol/L, range 1.4 to 2.1 micromol/L; and median 1.58 micromol/L, range 1.1 to 2.1 micromol/L). These studies provide the first quantitative evidence that binding of Lp(a) to lysine residues of fibrin and cell surfaces is directly related to circulating levels of both plasminogen and Lp(a) and that these glycoproteins may interact as competitive ligands for these biological surfaces in vivo. This mechanism may be of relevance to the atherothrombotic role of Lp(a), particularly in nephrotic patients.

mechanismsthrombosis

Summary written by lp-a.org from the published abstract; figures as published. Page updated 18 August 2026. Methods.