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Generation of a Gene-disrupted Streptococcus mutans Strain Without Gene Cloning
Published on: October 23, 2017
Inactivation of glutamate racemase (MurI) eliminates virulence in Streptococcus mutans
Jianying Zhang1, Jia Liu1, Junqi Ling1
1Guangdong Province Key Laboratory of Stomatology, Sun Yat-Sen University, 74 Zhong Shan ER Road, Guangzhou 510080, China; Department of Operative Dentistry and Endodontics, Guanghua School of Stomatology, Hospital of Stomatology, Sun Yat-Sen University, 56 Lingyuanxi Road, Guangzhou 510055, China.
Abstract:
Inhibition of enzymes required for bacterial cell wall synthesis is often lethal or leads to virulence defects. Glutamate racemase (MurI), an essential enzyme in peptidoglycan biosynthesis, has been an attractive target for therapeutic interventions. Streptococcus mutans, one of the many etiological factors of dental caries, possesses a series of virulence factors associated with cariogenicity. However, little is known regarding the mechanism by which MurI influences pathogenesis of S. mutans. In this work, a stable mutant of S. mutans deficient in glutamate racemase (S. mutans FW1718) was constructed to investigate the impact of murI inactivation on cariogenic virulence in S. mutans UA159. Microscopy revealed that the murI mutant exhibited an enlarged cell size, longer cell chains, diminished cell⬜cell aggregation, and altered cell surface ultrastructure compared with the wild-type. Characterization of this mutant revealed that murI deficiency weakened acidogenicity, aciduricity, and biofilm formation ability of S. mutans (P<0.05). Real-time quantitative polymerase chain reaction (qRT-PCR) analysis demonstrated that the deletion of murI reduced the expression of the acidogenesis-related gene ldh by 44-fold (P<0.0001). The expression levels of the gene coding for surface protein antigen P (spaP) and the acid-tolerance related gene (atpD) were down-regulated by 99% (P<0.0001). Expression of comE, comD, gtfB and gtfC, genes related to biofilm formation, were down-regulated 8-, 43-, 85- and 298-fold in the murI mutant compared with the wild-type (P<0.0001), respectively. Taken together, the current study provides the first evidence that MurI deficiency adversely affects S. mutans virulence properties, making MurI a potential target for controlling dental caries.
Insights
Glutamate racemase (MurI) deficiency in Streptococcus mutans impairs bacterial cell wall synthesis, weakening virulence factors crucial for dental caries development. This finding highlights MurI as a potential therapeutic target for controlling caries.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Enzyme Function
Background:
- Bacterial cell wall synthesis inhibition can be lethal or reduce virulence.
- Glutamate racemase (MurI) is essential for peptidoglycan biosynthesis and a potential therapeutic target.
- Streptococcus mutans causes dental caries but the role of MurI in its pathogenesis is unclear.
Purpose of the Study:
- To investigate the impact of glutamate racemase (MurI) deficiency on the cariogenic virulence of Streptococcus mutans.
- To characterize a stable murI mutant of S. mutans.
Main Methods:
- Construction of a stable murI-deficient mutant of S. mutans (S. mutans FW1718).
- Microscopy to assess cell morphology and ultrastructure.
- Phenotypic characterization of acidogenicity, aciduricity, and biofilm formation.
- Real-time quantitative polymerase chain reaction (qRT-PCR) to analyze gene expression.
Main Results:
- The murI mutant showed altered cell morphology, including enlarged size and longer chains.
- MurI deficiency significantly reduced S. mutans acidogenicity, aciduricity, and biofilm formation (P<0.05).
- qRT-PCR revealed significant down-regulation of virulence-associated genes, including ldh, spaP, atpD, comE, comD, gtfB, and gtfC.
Conclusions:
- MurI deficiency adversely affects Streptococcus mutans virulence properties.
- Inactivation of MurI significantly compromises key virulence factors essential for dental caries.
- MurI is a promising therapeutic target for developing novel strategies to control dental caries.
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