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Published on: January 17, 2014
SP-CHAP, an endolysin with enhanced activity against biofilm pneumococci and nasopharyngeal colonization
Adit B Alreja1, Amanda E Appel2, Jinyi C Zhu3
1Institute for Bioscience and Biotechnology Research, University of Maryland, Rockville, Maryland, USA.
Abstract:
Streptococcus pneumoniae (Spn), a Gram-positive bacterium, is responsible for causing a wide variety of invasive infections. The emergence of multi-drug antibiotic resistance has prompted the search for antimicrobial alternatives. Phage-derived peptidoglycan hydrolases, known as endolysins, are an attractive alternative. In this study, an endolysin active against Spn, designated SP-CHAP, was cloned, produced, purified, biochemically characterized, and evaluated for its antimicrobial properties. Cysteine, histidine-dependent amidohydrolase/peptidase (CHAP) domains are widely represented in bacteriophage endolysins but have never previously been reported for pneumococcal endolysins. Here, we characterize the first pneumococcal endolysin with a CHAP catalytic domain. SP-CHAP was antimicrobial against all Spn serovars tested, including capsular and capsule-free pneumococci, and it was found to be more active than the most widely studied pneumococcal endolysin, Cpl-1, while not affecting various oral or nasal commensal organisms tested. SP-CHAP was also effective in eradicating Spn biofilms at concentrations as low as 1.56 µg/mL. In addition, a Spn mouse nasopharyngeal colonization model was employed, which showed that SP-CHAP caused a significant reduction in Spn colony-forming units, even more than Cpl-1. These results indicate that SP-CHAP may represent a promising alternative to combating Spn infections.
Importance:
Considering the high rates of pneumococcal resistance reported for several antibiotics, alternatives are urgently needed. In the present study, we report a Streptococcus pneumoniae-targeting endolysin with even greater activity than Cpl-1, the most characterized pneumococcal endolysin to date. We have employed a combination of biochemical and microbiological assays to assess the stability and lytic potential of SP-CHAP and demonstrate its efficacy on pneumococcal biofilms in vitro and in an in vivo mouse model of colonization. Our findings highlight the therapeutic potential of SP-CHAP as an antibiotic alternative to treat Streptococcus pneumoniae infections.
Insights
A novel enzyme, SP-CHAP, shows potent antimicrobial activity against Streptococcus pneumoniae (Spn), offering a promising alternative to antibiotics. This endolysin effectively combats Spn infections, including biofilms, and reduces colonization in a mouse model.
Area of Science:
- Microbiology
- Biochemistry
- Drug Discovery
Background:
- * *Streptococcus pneumoniae* (Spn) causes invasive infections, with rising antibiotic resistance necessitating novel treatments.
- * Bacteriophage-derived endolysins are explored as antimicrobial alternatives.
- * The Cysteine, Histidine-dependent Amidohydrolase/Peptidase (CHAP) domain is common in endolysins but not previously reported for pneumococcal endolysins.
Purpose of the Study:
- * To characterize SP-CHAP, the first pneumococcal endolysin with a CHAP catalytic domain.
- * To evaluate SP-CHAP's antimicrobial activity against *Spn*, its efficacy on biofilms, and its performance in a mouse colonization model.
- * To assess SP-CHAP as a potential therapeutic alternative for *Spn* infections.
Main Methods:
- * Cloning, production, and purification of the SP-CHAP endolysin.
- * Biochemical characterization and antimicrobial assays against *Spn* serovars and commensal organisms.
- * Evaluation of SP-CHAP's efficacy against *Spn* biofilms *in vitro* and in a mouse nasopharyngeal colonization model.
Main Results:
- * SP-CHAP demonstrated antimicrobial activity against all tested *Spn* serovars, exceeding the efficacy of Cpl-1.
- * SP-CHAP was effective in eradicating *Spn* biofilms at low concentrations (1.56 µg/mL).
- * *In vivo* studies showed SP-CHAP significantly reduced *Spn* colonization in a mouse model, outperforming Cpl-1.
Conclusions:
- * SP-CHAP is a potent pneumococcal endolysin with a novel CHAP catalytic domain.
- * SP-CHAP exhibits broad-spectrum activity against *Spn*, including biofilms, and shows therapeutic potential *in vivo*.
- * SP-CHAP represents a promising antibiotic alternative for combating *Streptococcus pneumoniae* infections.
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