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p38 MAPK associated with stereoselective priming by grepafloxacin on O2- production in neutrophils
Masayuki Niwa1, Koichi Hotta, Yutaka Kanamori
1Medical Education Development Center, Gifu University School of Medicine, Gifu, Japan. mniwa@cc.gifu-u.ac.jp
Abstract:
Grepafloxacin is an asymmetric fluoroquinolone derivative which possesses high tissue penetrability as well as strong, broad-spectrum antimicrobial activities. We recently found that grepafloxacin induced a priming effect on neutrophil respiratory burst induced by N-formylmethionylleucylphenylalanine. In this report, we elucidate the precise mechanism of the priming by grepafloxacin. The R(+) enantiomer of grepafloxacin induced a more potent priming effect than did S(-)-grepafloxacin. R(+)-Grepafloxacin also produced a more potent translocation of both p47- and p67-phox proteins to membrane fractions of neutrophils. Grepafloxacin-induced primed superoxide generation was significantly inhibited by pretreatment with PD169316 and SB203580, p38 mitogen-activated protein kinase (MAPK) inhibitors, but not with PD98059, a specific inhibitor of the upstream kinase that activates p44/42 MAPK, or SP600125, an inhibitor of stress-activated protein kinase/c-Jun N-terminal kinase (JNK). Grepafloxacin strongly phosphorylated p38 MAP kinase but not p44/42 MAPK or JNK. R(+)-Grepafloxacin showed more potent phosphorylation of p38 MAPK than did S(-)-grepafloxacin, in a time- and concentration-dependent manner. PD169316 significantly inhibited R(+)-grepafloxacin-induced translocation of p47-phox protein to the membrane fraction. Interestingly, grepafloxacin stereospecifically bound to the membrane fractions of neutrophils. These results strongly suggest that grepafloxacin stereospecifically primes neutrophil respiratory burst, and p38 MAPK activation is closely related to the grepafloxacin priming.
Insights
Grepafloxacin stereospecifically primes neutrophil respiratory burst. The R(+) enantiomer is more potent, involving p38 mitogen-activated protein kinase (MAPK) activation and protein translocation to neutrophil membranes.
Area of Science:
- Immunology
- Pharmacology
Background:
- Grepafloxacin, a fluoroquinolone, exhibits broad-spectrum antimicrobial activity and high tissue penetration.
- Previous studies indicated grepafloxacin primes neutrophil respiratory burst.
- This study investigates the precise mechanism behind grepafloxacin-induced neutrophil priming.
Purpose of the Study:
- To elucidate the mechanism of grepafloxacin-induced neutrophil respiratory burst priming.
- To determine the role of grepafloxacin enantiomers in this priming effect.
- To investigate the involvement of specific mitogen-activated protein kinase (MAPK) pathways.
Main Methods:
- Investigated the effect of R(+) and S(-) grepafloxacin enantiomers on neutrophil respiratory burst.
- Assessed the translocation of p47- and p67-phox proteins to neutrophil membrane fractions.
- Utilized specific inhibitors for p38 MAPK, p44/42 MAPK, and JNK pathways.
- Measured the phosphorylation of p38 MAPK, p44/42 MAPK, and JNK.
Main Results:
- The R(+) enantiomer of grepafloxacin demonstrated a more potent priming effect than the S(-) enantiomer.
- R(+)-Grepafloxacin enhanced the translocation of p47- and p67-phox proteins.
- p38 MAPK activation was strongly correlated with grepafloxacin-induced priming, unlike other MAPK pathways.
- Grepafloxacin exhibited stereospecific binding to neutrophil membrane fractions.
Conclusions:
- Grepafloxacin stereospecifically primes neutrophil respiratory burst.
- p38 MAPK activation is a key component of the grepafloxacin priming mechanism.
- The findings highlight the enantiomer-specific pharmacological activity of grepafloxacin on neutrophils.
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