RhoA/ROCK downregulates FPR2-mediated NADPH oxidase activation in mouse bone marrow granulocytes

Julia V Filina1, Aida G Gabdoulkhakova1, Valentina G Safronova2

  • 1Kazan State Medical Academy, 11 Moushtary St, 420012 Kazan, Russian Federation.

Cellular Signalling
|June 1, 2014
PubMed

Insights

The RhoA/ROCK pathway differentially regulates neutrophil respiratory burst via mFPR1 and mFPR2 receptors. While activating mFPR1 increases NADPH oxidase, mFPR2 signaling, involving cytoskeleton, down-regulates it, protecting tissues.

Area of Science:

  • Immunology
  • Cell Biology
  • Biochemistry

Background:

  • Polymorphonuclear neutrophils (PMNs) utilize formylated peptide receptors (FPRs), including mFPR1 and mFPR2, to detect stimuli.
  • The RhoA/ROCK pathway is recognized for its role in cell motility and oxidase activity, but its precise regulation of NADPH oxidase via FPRs is debated.
  • Previous research indicated divergent Rho GTPase signaling through mFPR1 and mFPR2 in PMNs at inflammatory sites.

Purpose of the Study:

  • To investigate the specific role of the RhoA/ROCK pathway in the respiratory burst response activated by mFPR1 and mFPR2 in mouse bone marrow PMNs.
  • To elucidate the differential signaling mechanisms of RhoA/ROCK pathway downstream of mFPR1 and mFPR2 activation.

Main Methods:

  • Stimulation of bone marrow PMNs with fMLF (for mFPR1) and WKYMVM (for mFPR2).
  • Assessment of RhoA activation kinetics and translocation using specific inhibitors (CT04 for RhoA, Y27632 for ROCK).
  • Evaluation of respiratory burst activity and its modulation by cytoskeleton disruption (cytochalasin D).

Main Results:

  • Distinct RhoA activation kinetics were observed for mFPR1 and mFPR2.
  • Inhibition of RhoA or ROCK partially reduced mFPR1-induced respiratory burst but significantly enhanced mFPR2-induced burst.
  • ROCK's regulation of the mFPR2 response was dependent on an intact cytoskeleton, unlike mFPR1.

Conclusions:

  • RhoA acts as a signal transduction component in the respiratory burst activated by both mFPR1 and mFPR2 in mouse bone marrow PMNs.
  • mFPR1 signaling via RhoA/ROCK enhances NADPH oxidase activity.
  • mFPR2 signaling through RhoA/ROCK, in conjunction with cytoskeleton-linked systems, down-regulates NADPH oxidase, potentially preventing self-tissue damage.

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