FMLP activates Ras and Raf in human neutrophils. Potential role in activation of MAP kinase

G S Worthen1, N Avdi, A M Buhl

  • 1Department of Medicine, National Jewish Center for Immunology and Respiratory Medicine, Denver, Colorado 80206.

Insights

Chemoattractants activate the Ras/Raf/MAP kinase pathway in neutrophils via the Gi2 protein. This signaling cascade, involving Ras and Raf activation, is crucial for neutrophil responses to chemoattractants.

Area of Science:

  • Cellular Biology
  • Immunology
  • Signal Transduction

Background:

  • Chemoattractants trigger neutrophil functional responses by activating G-protein-coupled receptors.
  • Microtubule-associated protein (MAP) kinase activation is a key response, but its upstream pathways in neutrophils remain unclear.

Purpose of the Study:

  • To investigate the specific signaling pathway responsible for MAP kinase activation in neutrophils following chemoattractant stimulation.
  • To elucidate the role of the Ras/Raf pathway and its upstream regulators in mediating neutrophil activation by f-met-leu-phe (FMLP).

Main Methods:

  • Human neutrophils were stimulated with FMLP and analyzed for MAP kinase kinase activity.
  • Immunoprecipitation was used to detect activated Raf-1 kinase and Ras.
  • Pertussis toxin and dibutyryl cAMP were employed to investigate the involvement of specific signaling proteins and pathways.

Main Results:

  • FMLP stimulation induced MAP kinase kinase activity and activated Raf-1 kinase and Ras.
  • Activation of Ras and Raf was dependent on the Gi2 protein, as indicated by inhibition with pertussis toxin.
  • FMLP-induced Raf activation was independent of protein kinase C and was inhibited by dibutyryl cAMP.

Conclusions:

  • The study identifies the Gi2-mediated Ras/Raf/MAP kinase pathway as a primary response to chemoattractants in neutrophils.
  • This pathway is critical for regulating neutrophil functional responses to chemoattractant signals.

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