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Real-time metabolic interactions between two bacterial species using a carbon-based pH microsensor as a scanning electrochemical microscopy (SECM) probe

机译:使用基于碳的pH微传感器作为扫描电化学显微镜(SECM)探针在两个细菌物种之间进行实时代谢相互作用

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摘要

We have developed a carbon-based, fast-response potentiometric pH microsensor for use as a scanning electrochemical microscopy (SECM) chemical probe to quantitatively map the microbial metabolic exchange between two bacterial species, commensal Streptococcus gordonii and pathogenic Streptococcus mutans. The 25-μm diameter H+ ion-selective microelectrode or pH microprobe showed a Nernstian slope of 59 mV/pH and high selectivity against major ions such Na+, K+, Ca2+ and Mg2+. In addition, the unique conductive membrane composition aided us in performing an amperometric approach curve to position the probe and obtain a high-resolution pH map of the microenvironment produced by the lactate-producing S. mutans biofilm. The x-directional pH scan over S. mutans also showed the influence of the pH profile on the metabolic activity of another species, H2O2-producing S. gordonii. When these bacterial species were placed in close spatial proximity, we observed an initial increase in the local H2O2 concentration of approximately 12±5 μM above S. gordonii, followed by a gradual decrease in H2O2 concentration (>30 min) to almost zero as lactate was produced, and a subsequent decrease in pH with a more pronounced metabolic output of S. mutans. These results were supported by gene expression and confocal fluorescence microscopic studies. Our findings illustrate that H2O2-producing S. gordonii is dominant while the buffering capacity of saliva is valid (~pH 6.0) but is gradually taken over by S. mutans as the latter species slowly starts decreasing the local pH to 5.0 or less by producing lactic acid. Our observations demonstrate the unique capability of our SECM chemical probes for studying real-time metabolic interactions between two bacterial species, which would not otherwise be achievable in traditional assays.
机译:我们已经开发出一种基于碳的快速响应电位pH值微传感器,可用作扫描电化学显微镜(SECM)化学探针,定量绘制两个细菌物种(共性的戈登链球菌和致病性变形链球菌)之间的微生物代谢交换。直径为25μm的H + 离子选择性微电极或pH微探针显示Nernstian斜率为59 mV / pH,并且对Na + ,K + ,Ca 2 + 和Mg 2 + 。此外,独特的导电膜成分有助于我们执行电流分析法曲线,以定位探针并获得由生产乳酸的变形链球菌生物膜产生的微环境的高分辨率pH图。对变形链球菌的x方向pH扫描也显示了pH分布图对另一种产生H2O2的S. gordonii菌的代谢活性的影响。当这些细菌在空间上靠近放置时,我们观察到局部H2O2浓度最初比戈登链球菌高出约12±5μM,然后逐渐降低(> 30分钟)H2O2浓度至乳酸为零产生,随后pH降低,变形链球菌的代谢输出更加明显。这些结果得到基因表达和共聚焦荧光显微镜研究的支持。我们的发现表明,产生H2O2的戈登氏链球菌占主导地位,而唾液的缓冲能力有效(〜pH 6.0),但逐渐被变形链球菌所接管,因为后者通过缓慢产生将当地pH值逐渐降低至5.0或更低。乳酸。我们的观察结果表明,我们的SECM化学探针具有独特的能力来研究两个细菌物种之间的实时代谢相互作用,而这在传统方法中是无法实现的。

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