Molecular Cloning and Docking of speB Gene Encoding Cysteine Protease With Antibiotic Interaction in Streptococcus

Natesan Balasubramanian1, Govintharaj Varatharaju2, Vellasamy Shanmugaiah2

  • 1Department of Immunology, School of Biological Sciences, Madurai Kamaraj University, Madurai, India.

Insights

This study investigated antibiotic resistance in Streptococcus pyogenes, finding the NBMKU12 isolate resistant to penicillin-G. The speB gene encoding cysteine protease showed interactions with antibiotics, potentially explaining resistance mechanisms.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Biochemistry

Background:

  • Streptococcus pyogenes causes significant morbidity and mortality.
  • Antibiotic resistance in S. pyogenes is a growing public health concern.
  • Cysteine proteases play roles in bacterial virulence and pathogenesis.

Purpose of the Study:

  • To investigate antibiotic resistance patterns in S. pyogenes isolates.
  • To characterize the speB gene encoding cysteine protease in S. pyogenes NBMKU12.
  • To explore the interaction between cysteine protease and antibiotics.

Main Methods:

  • Isolation and identification of S. pyogenes from clinical samples.
  • Antibiotic susceptibility testing and detection of resistance genes (TEM).
  • Cloning, sequencing, and molecular docking of the speB gene and its encoded protein.

Main Results:

  • Seven S. pyogenes isolates were identified, with 29.1% exhibiting penicillin-G resistance.
  • The S. pyogenes NBMKU12 isolate possessed the TEM gene and expressed active cysteine protease (SpeB).
  • Molecular docking revealed strong interactions of erythromycin and chloramphenicol, but weak interaction with penicillin-G.

Conclusions:

  • The speB gene encodes a functional cysteine protease in S. pyogenes NBMKU12.
  • Weak interaction between penicillin-G and cysteine protease may contribute to penicillin-G resistance.
  • Understanding these interactions can inform strategies against S. pyogenes infections.

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