Literature DB >> 16227503

Fluorescence measurement of intracellular sodium concentration in single Escherichia coli cells.

Chien-Jung Lo1, Mark C Leake, Richard M Berry.   

Abstract

The energy-transducing cytoplasmic membrane of bacteria contains pumps and antiports maintaining the membrane potential and ion gradients. We have developed a method for rapid, single-cell measurement of the internal sodium concentration ([Na(+)](in)) in Escherichia coli using the sodium ion fluorescence indicator, Sodium Green. The bacterial flagellar motor is a molecular machine that couples the transmembrane flow of ions, either protons (H(+)) or sodium ions (Na(+)), to flagellar rotation. We used an E. coli strain containing a chimeric flagellar motor with H(+)- and Na(+)-driven components that functions as a sodium motor. Changing external sodium concentration ([Na(+)](ex)) in the range 1-85 mM resulted in changes in [Na(+)](in) between 5-14 mM, indicating a partial homeostasis of internal sodium concentration. There were significant intercell variations in the relationship between [Na(+)](in) and [Na(+)](ex), and the internal sodium concentration in cells not expressing chimeric flagellar motors was 2-3 times lower, indicating that the sodium flux through these motors is a significant fraction of the total sodium flux into the cell.

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Year:  2005        PMID: 16227503      PMCID: PMC1367033          DOI: 10.1529/biophysj.105.071332

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  25 in total

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4.  The proton flux through the bacterial flagellar motor.

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6.  Quantitative measurements of proton motive force and motility in Bacillus subtilis.

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7.  Na+-driven flagellar motors of an alkalophilic Bacillus strain YN-1.

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8.  Quantitative measurements of membrane potential in Escherichia coli.

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