Pantothenate kinase: A promising therapeutic target against pathogenic Clostridium species

Soharth Hasnat1,2,3, M Nazmul Hoque2, M Murshida Mahbub3

  • 1Institute of Biotechnology and Genetic Engineering (IBGE), Bangabandhu Sheikh Mujibur Rahman Agricultural University (BSMRAU), Gazipur, 1706, Bangladesh.

Heliyon
|August 12, 2024
PubMed

Insights

Researchers identified a common drug target, CoaX, in four dangerous Clostridium species. This discovery offers a potential new treatment strategy to combat clostridial infections, addressing antimicrobial resistance challenges.

Area of Science:

  • Microbiology
  • Genomics
  • Drug Discovery

Background:

  • Current treatments for clostridial infections, including antibiotics and antitoxins, face limitations due to ineffectiveness against all species and rising antimicrobial resistance (AMR).
  • The need for novel therapeutic strategies against pathogenic *Clostridium* species is critical for public health.

Purpose of the Study:

  • To identify a conserved drug target across four pathogenic *Clostridium* species (*C. botulinum*, *C. difficile*, *C. tetani*, *C. perfringens*) using an *in-silico* core genomic approach.
  • To evaluate the potential of identified targets for novel drug development against these clostridial pathogens.

Main Methods:

  • Comparative genomics analysis of four *Clostridium* species reference genomes to identify core proteins.
  • Subtractive screening of core proteins to pinpoint potential drug targets.
  • Druggability assessment and molecular screening of compounds against the identified target.

Main Results:

  • 1484 core genomic proteins were identified, leading to the selection of type III pantothenate kinase (CoaX) as a key drug target.
  • CoaX, essential for coenzyme A biosynthesis, was confirmed as a promising target through druggability analysis.
  • Molecular screening identified Vibegron and tazobactam as compounds with inhibitory activity against clostridial CoaX.

Conclusions:

  • CoaX represents a viable single drug target effective against *Clostridium botulinum*, *C. difficile*, *C. tetani*, and *C. perfringens*.
  • This finding provides a foundation for developing novel, cost-effective treatments for multispecies clostridial infections, potentially overcoming AMR challenges.