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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.
Abstract:
Current treatment of clostridial infections includes broad-spectrum antibiotics and antitoxins, yet antitoxins are ineffective against all Clostridiumspecies. Moreover, rising antimicrobial resistance (AMR) threatens treatment effectiveness and public health. This study therefore aimed to discover a common drug target for four pathogenic clostridial species, Clostridium botulinum, C. difficile, C. tetani, and C. perfringens through an in-silico core genomic approach. Using four reference genomes of C. botulinum, C. difficile, C. tetani, and C. perfringens, we identified 1484 core genomic proteins (371/genome) and screened them for potential drug targets. Through a subtractive approach, four core proteins were finally identified as drug targets, represented by type III pantothenate kinase (CoaX) and, selected for further analyses. Interestingly, the CoaX is involved in the phosphorylation of pantothenate (vitamin B5), which is a critical precursor for coenzyme A (CoA) biosynthesis. Investigation of druggability analysis on the identified drug target reinforces CoaX as a promising novel drug target for the selected Clostridium species. During the molecular screening of 1201 compounds, a known agonist drug compound (Vibegron) showed strong inhibitory activity against targeted clostridial CoaX. Additionally, we identified tazobactam, a beta-lactamase inhibitor, as effective against the newly proposed target, CoaX. Therefore, identifying CoaX as a single drug target effective against all four clostridial pathogens presents a valuable opportunity to develop a cost-effective treatment for multispecies clostridial infections.
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.
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