Lesions in teichoic acid biosynthesis in Staphylococcus aureus lead to a lethal gain of function in the otherwise dispensable pathway

被引:154
作者
D'Elia, Michael A.
Pereira, Mark P.
Chung, Yu Seon
Zhao, Wenjun
Chau, Andrew
Kenney, Teresa J.
Sulavik, Mark C.
Black, Todd A.
Brown, Eric D.
机构
[1] McMaster Univ, Hlth Sci Ctr 4H32, Dept Biochem & Biomed Sci, Hamilton, ON L8N 3Z5, Canada
[2] McMaster Univ, Antimicrobial Res Ctr, Hamilton, ON L8N 3Z5, Canada
[3] Schering Plough Res Inst, Kenilworth, NJ 07033 USA
关键词
D O I
10.1128/JB.00197-06
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
An extensive study of teichoic acid biosynthesis in the model organism Bacillus subtilis has established teichoic acid polymers as essential components of the gram-positive cell wall. However, similar studies pertaining to therapeutically relevant organisms, such as Staphylococcus aureus, are scarce. In this study we have carried out a meticulous examination of the dispensability of teichoic acid biosynthetic enzymes in S. aureus. By use of an allelic replacement methodology, we examined all facets of teichoic acid assembly, including intracellular polymer production and export. Using this approach we confirmed that the first-acting enzyme (TarO) was dispensable for growth, in contrast to dispensability studies in B. subtilis. Upon further characterization, we demonstrated that later-acting gene products (TarB, TarD, TarF, TarIJ, and TarH) responsible for polymer formation and export were essential for viability. We resolved this paradox by 14 demonstrating that all of the apparently indispensable genes became dispensable in a tarO null genetic background. This work suggests a lethal gain-of-function mechanism where lesions beyond the initial step in wall teichoic acid binsynthesis render S. aureus nonviable. This discovery poses questions regarding the conventional understanding of essential gene sets, garnered through single-gene knockout experiments in bacteria and higher organisms, and points to a novel drug development strategy targeting late steps in teichoic acid synthesis for the infectious pathogen S. aureus.
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页码:4183 / 4189
页数:7
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