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Bioluminescence Imaging of NADPH Oxidase Activity in Different Animal Models
Published on: October 22, 2012
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.
Abstract:
Polymorphonuclear neutrophils (PMNs) express the high and low affinity receptors to formylated peptides (mFPR1 and mFPR2 in mice, accordingly). RhoA/ROCK (Rho activated kinase) pathway is crucial for cell motility and oxidase activity regulated via FPRs. There are contradictory data on RhoA-mediated regulation of NADPH oxidase activity in phagocytes. We have shown divergent Rho GTPases signaling via mFPR1 and mFPR2 to NADPH oxidase in PMNs from inflammatory site. The present study was aimed to find out the role of RhoA/ROCK in the respiratory burst activated via mFPR1 and mFPR2 in the bone marrow PMNs. Different kinetics of RhoA activation were detected with 0.1μM fMLF and 1μM WKYMVM operating via mFPR1 and mFPR2, accordingly. RhoA was translocated in fMLF-activated cells towards the cell center and juxtamembrane space versus uniform allocation in the resting cells. Specific inhibition of RhoA by CT04, Rho inhibitor I, weakly depressed the respiratory burst induced via mFPR1, but significantly increased the one induced via mFPR2. Inhibition of ROCK, the main effector of RhoA, by Y27632 led to the same effect on the respiratory burst. Regulation of mFPR2-induced respiratory response by ROCK was impossible under the cytoskeleton disruption by cytochalasin D, whereas it persisted in the case of mFPR1 activation. Thus we suggest RhoA to be one of the regulatory and signal transduction components in the respiratory burst through FPRs in the mouse bone marrow PMNs. Both mFPR1 and mFPR2 binding with a ligand trigger the activation of RhoA. FPR1 signaling through RhoA/ROCK increases NADPH-oxidase activity. But in FPR2 action RhoA/ROCK together with cytoskeleton-linked systems down-regulates NADPH-oxidase. This mechanism could restrain the reactive oxygen species dependent damage of own tissues during the chemotaxis of PMNs and in the resting cells.
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.

