Structure and inhibition of a quorum sensing target from Streptococcus pneumoniae

Vipender Singh1, Wuxian Shi, Steven C Almo

  • 1Department of Biochemistry, Albert Einstein College of Medicine, Bronx, New York 10461, USA.

Biochemistry
|October 25, 2006
PubMed

Insights

Streptococcus pneumoniae 5'-methylthioadenosine/S-adenosylhomocysteine hydrolase (MTAN) is a bacterial enzyme and antibiotic target. Novel DADMe-Immucillin inhibitors reveal distinct transition state structures and lower catalytic efficiency compared to E. coli MTAN.

Area of Science:

  • Biochemistry
  • Enzymology
  • Structural Biology
  • Drug Discovery

Background:

  • Streptococcus pneumoniae 5 -methylthioadenosine/S-adenosylhomocysteine hydrolase (MTAN) is crucial for bacterial growth and pathogenicity, making it a viable antibiotic target.
  • MTAN is absent in mammals, further enhancing its potential as a selective antimicrobial target.
  • Previous studies on E. coli MTAN identified a dissociative S(N)1 transition state, with transition state analogues serving as potent inhibitors.

Purpose of the Study:

  • To investigate the kinetic and inhibitory properties of S. pneumoniae MTAN, comparing them with its E. coli counterpart.
  • To characterize the transition state structure of S. pneumoniae MTAN using novel inhibitor analogues.
  • To elucidate the structural basis for differences in catalytic efficiency and inhibitor binding between S. pneumoniae and E. coli MTAN.

Main Methods:

  • Enzyme kinetics assays were performed to determine inhibition constants (K(i)) for various Immucillin and DADMe-Immucillin analogues against S. pneumoniae MTAN.
  • X-ray crystallography was employed to determine the structure of S. pneumoniae MTAN in complex with inhibitors.
  • Comparative analysis of kinetic data and structural information was conducted between S. pneumoniae and E. coli MTAN.

Main Results:

  • S. pneumoniae MTAN exhibits distinct kinetic and inhibitory properties compared to E. coli MTAN, with significantly lower catalytic efficiency (k(cat)/K(m)).
  • DADMe-Immucillin analogues, designed as mimics of a fully dissociated transition state, demonstrated potent inhibition of S. pneumoniae MTAN, with K(i) values as low as 0.36 nM.
  • X-ray structures revealed differences in active site interactions and flexibility, particularly concerning the methylthio group, which contribute to altered inhibitor binding affinities.

Conclusions:

  • The inhibitory profiles of DADMe-Immucillins support a fully dissociated transition state structure for S. pneumoniae MTAN.
  • Significant differences in catalytic site efficiency and inhibitor binding exist between S. pneumoniae and E. coli MTAN, despite sequence homology.
  • Understanding these differences is crucial for the rational design of novel antibiotics targeting bacterial MTAN.

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