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Comparative Phosphoproteomics Reveals the Role of AmpC β-lactamase Phosphorylation in the Clinical Imipenem-resistant Strain Acinetobacter baumannii SK17*

https://doi.org/10.1074/mcp.M115.051052Get rights and content
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Nosocomial infectious outbreaks caused by multidrug-resistant Acinetobacter baumannii have emerged as a serious threat to human health. Phosphoproteomics of pathogenic bacteria has been used to identify the mechanisms of bacterial virulence and antimicrobial resistance. In this study, we used a shotgun strategy combined with high-accuracy mass spectrometry to analyze the phosphoproteomics of the imipenem-susceptible strain SK17-S and -resistant strain SK17-R. We identified 410 phosphosites on 248 unique phosphoproteins in SK17-S and 285 phosphosites on 211 unique phosphoproteins in SK17-R. The distributions of the Ser/Thr/Tyr/Asp/His phosphosites in SK17-S and SK17-R were 47.0%/27.6%/12.4%/8.0%/4.9% versus 41.4%/29.5%/17.5%/6.7%/4.9%, respectively. The Ser-90 phosphosite, located on the catalytic motif S88VS90K of the AmpC β-lactamase, was first identified in SK17-S. Based on site-directed mutagenesis, the nonphosphorylatable mutant S90A was found to be more resistant to imipenem, whereas the phosphorylation-simulated mutant S90D was sensitive to imipenem. Additionally, the S90A mutant protein exhibited higher β-lactamase activity and conferred greater bacterial protection against imipenem in SK17-S compared with the wild-type. In sum, our results revealed that in A. baumannii, Ser-90 phosphorylation of AmpC negatively regulates both β-lactamase activity and the ability to counteract the antibiotic effects of imipenem. These findings highlight the impact of phosphorylation-mediated regulation in antibiotic-resistant bacteria on future drug design and new therapies.

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Author contributions: J. Lai and S.W. designed research; J. Lai, J.Y., and J.C. performed research; T.C., S.T., S.L., C.C., and S.W. contributed new reagents or analytic tools; J. Lai and J. Liao analyzed data; J. Lai wrote the paper; W.W., J. Liao, and S.W. guided the first author to solve the exp. problems.

*

This work was financially supported by Ministry of Science and Technology (NSC 101-2923-B-001-005-MY3).

This article contains supplemental Fig. S1 to S11 and Tables S1 to S12.

1

The abbreviations used are:

    ADC

    Acinetobacter-derived cephalosporinase SK17-S, A. baumannii SK17-S

    SK17-R

    A. baumannii SK17-R

    TiO2

    titanium dioxide

    TFA

    trifluoroacetic acid

    ACN

    acetonitrile

    HAMMOC

    hydroxy-acid-modified metal-oxide chromatography

    FA

    formic acid

    CD

    circular dichroism

    MDRAB

    multidrug resistant A. baumannii

    IR-MDRAB

    imipenem-resistant multidrug-resistant A. baumannii

    ICU

    intensive care units.