Phosphorylation of myeloid-related proteins MRP-14 and MRP-8 during human neutrophil activation

F Guignard1, J Mauel, M Markert

  • 1Central Laboratory of Clinical Chemistry, Centre Hospitalier Universitaire Vaudois, Lausanne, Switzerland.

Insights

Myeloid-related proteins (MRP-8 and MRP-14) translocate to neutrophil membranes during activation. Phosphorylation, particularly via protein kinase C (PKC), appears to modulate this translocation process.

Area of Science:

  • Immunology
  • Cell Biology
  • Biochemistry

Background:

  • Myeloid-related proteins (MRP-8 and MRP-14) are calcium-binding proteins of the S100 family.
  • These proteins translocate to the membrane during human neutrophil activation, a process dependent on extracellular calcium.
  • The precise mechanisms regulating this translocation are not fully understood.

Purpose of the Study:

  • To investigate the role of protein phosphorylation in the membrane translocation of MRP-8 and MRP-14.
  • To determine the influence of protein kinase C (PKC) on the phosphorylation and translocation of these myeloid-related proteins.

Main Methods:

  • Neutrophil activation using calcium-dependent and -independent stimuli (e.g., opsonized zymosan, A23187, arachidonic acid, PMA).
  • Analysis of protein phosphorylation using Western blotting and detection of specific isoforms.
  • Inhibition of PKC activity using Cgp 41251 to assess its effect on phosphorylation and translocation.

Main Results:

  • MRP-14 isoforms were phosphorylated upon stimulation with both calcium-dependent and -independent stimuli.
  • Phosphorylated MRP-8 was detected in the cytosol of PMA-activated cells, but represented a small fraction of total MRP-8.
  • PKC inhibition significantly increased the membrane translocation of both MRP-14 and MRP-8.

Conclusions:

  • Phosphorylation of MRP-14 and MRP-8, potentially modulated by PKC, plays a role in regulating their translocation to the neutrophil membrane.
  • These findings suggest a complex interplay between phosphorylation, PKC activity, and S100 protein localization during neutrophil activation.

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