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控制变形链球菌乳糖代谢中果糖特异性记忆和分解代谢物阻遏的分子机制。

Molecular mechanisms controlling fructose-specific memory and catabolite repression in lactose metabolism by Streptococcus mutans.

机构信息

Department of Oral Biology, College of Dentistry, University of Florida, Gainesville, FL, USA.

出版信息

Mol Microbiol. 2021 Jan;115(1):70-83. doi: 10.1111/mmi.14597. Epub 2020 Sep 25.

Abstract

Lactose is an abundant dietary carbohydrate metabolized by the dental pathogen Streptococcus mutans. Lactose metabolism presents both classic diauxic behaviors and long-term memory, where the bacteria can pause for >11 h before initiating growth on lactose. Here, we explored mechanisms contributing to unusual aspects of regulation of the lac operon. The fructose-phosphate metabolites, F-1-P and F-6-P, could modulate the DNA-binding activities of the lactose repressor. Recombinant LacR proteins bound upstream of lacA and Gal-6-P induced the formation of different LacR-DNA complexes. Deletion of lacR resulted in strain-specific growth phenotypes on lactose, but also on a number of mono- and di-saccharides that involve the glucose-PTS or glucokinase in their catabolism. The phenotypes were consistent with the novel findings that loss of LacR altered glucose-PTS activity and expression of the gene for glucokinase. CcpA was also shown to affect lactose metabolism in vivo and to bind to the lacA promoter region in vitro. Collectively, our study reveals complex molecular circuits controlling lactose metabolism in S. mutans, where LacR and CcpA integrate cellular and environmental cues to regulate metabolism of a variety of carbohydrates that are critical to persistence and pathogenicity of S. mutans.

摘要

乳糖是一种丰富的膳食碳水化合物,被口腔病原体变异链球菌代谢。乳糖代谢表现出典型的双重发酵行为和长期记忆,细菌可以在开始利用乳糖之前暂停超过 11 小时。在这里,我们探讨了参与调节 lac 操纵子的不寻常方面的机制。果糖-磷酸代谢物 F-1-P 和 F-6-P 可以调节乳糖阻遏物的 DNA 结合活性。重组 LacR 蛋白结合在 lacA 和 Gal-6-P 的上游,诱导形成不同的 LacR-DNA 复合物。lacR 的缺失导致在乳糖上以及在许多涉及葡萄糖-PTS 或葡激酶分解代谢的单糖和二糖上出现特定于菌株的生长表型。表型与新发现一致,即 LacR 的缺失改变了葡萄糖-PTS 活性和葡激酶基因的表达。CcpA 也被证明可以在体内影响乳糖代谢,并在体外结合到 lacA 启动子区域。总的来说,我们的研究揭示了控制变异链球菌乳糖代谢的复杂分子电路,其中 LacR 和 CcpA 整合细胞和环境线索来调节对变异链球菌持久性和致病性至关重要的各种碳水化合物的代谢。

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