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MARCKS-related protein (MRP) is a substrate for the Leishmania major surface protease leishmanolysin (gp63)
S Corradin1, A Ransijn, G Corradin
1Institute of Biochemistry, University of Lausanne, 1066 Epalinges, Switzerland. Sally.Corradin-Betz@ib.unil.ch
Abstract:
Myristoylated alanine-rich C kinase substrate (MARCKS) and MARCKS-related protein (MRP; MacMARCKS) are protein kinase C substrates in diverse cell types. Activation of murine macrophages by cytokines increases MRP expression, but infection with Leishmania promastigotes during activation results in MRP depletion. We therefore examined the effect of Leishmania major LV39 on recombinant MRP. Both live promastigotes and a soluble fraction of LV39 lysates degraded MRP to yield lower molecular weight fragments. Degradation was independent of MRP myristoylation and was inhibited by protein kinase C-dependent phosphorylation of MRP. MRP was similarly degraded by purified leishmanolysin (gp63), a Leishmania surface metalloprotease. Degradation was evident at low enzyme/substrate ratios, over a broad pH range, and was inhibited by 1,10-phenanthroline and by a hydroxamate dipeptide inhibitor of leishmanolysin. Using mass spectrometric analysis, cleavage was shown to occur within the effector domain of MRP between Ser(92) and Phe(93), in accordance with the substrate specificity of leishmanolysin. Moreover, an MRP construct in which the effector domain had been deleted was resistant to cleavage. Thus, Leishmania infection may result in leishmanolysin-dependent hydrolysis of MRP, a major protein kinase C substrate in macrophages.
Insights
Leishmania infection depletes Myristoylated alanine-rich C kinase substrate (MARCKS)-related protein (MRP) in macrophages. The parasite
Area of Science:
- Immunology
- Parasitology
- Molecular Biology
Background:
- Myristoylated alanine-rich C kinase substrate (MARCKS)-related protein (MRP) is crucial in cellular signaling and is regulated by protein kinase C.
- MRP expression increases with macrophage activation but is depleted during Leishmania infection.
Purpose of the Study:
- To investigate the mechanism behind MRP depletion during Leishmania major infection.
- To determine if Leishmania major proteases degrade MRP.
Main Methods:
- Incubation of recombinant MRP with live Leishmania promastigotes and parasite lysates.
- Enzymatic assays using purified leishmanolysin (gp63).
- Mass spectrometric analysis to identify cleavage sites.
Main Results:
- Leishmania major degraded MRP into lower molecular weight fragments.
- Degradation was mediated by leishmanolysin (gp63), a Leishmania surface metalloprotease.
- Cleavage occurred within MRP's effector domain, specifically between Ser(92) and Phe(93).
Conclusions:
- Leishmania infection leads to leishmanolysin-dependent hydrolysis of MRP.
- This degradation affects a key protein kinase C substrate in macrophages, potentially impacting host-pathogen interactions.