Aims: L-Selenaproline (L-selenazolidine-4-carboxylic acid) is a toxic analogue of L-proline that inhibits the growth of the urinary tract pathogen Escherichia coli in both laboratory culture media and normal human urine. The aim of this study was to identify the transport systems involved in its uptake.
Methods And Results: Deletion mutants from the Keio collection were tested for their susceptibility to L-selenaproline (SCA) and L-selenocystine (SeCys) on minimal salts agar medium. All single-gene mutants were sensitive to both compounds, but double mutants with deletions in fliY and ydjN or in yecS and ydjN were resistant to SCA and SeCys. The YdjN transporter active in strain JW1905 (ΔfliY::kan yecC(+) yecS(+) ydjN(+)) was inhibited by both SCA and SeCys, but the FliY YecS YecC ABC transporter system active in strain JW1718 (fliY(+) yecC(+) yecS(+) ΔydjN::kan) was best inhibited by these compounds in the presence of dithiothreitol.
Conclusions: L-selenaproline and L-selenocystine are accumulated by both the FliY YecC YecS and the YdjN L-cystine transporter systems in E. coli.
Significance And Impact Of The Study: Because susceptibility to selenium-containing analogues of L-proline and L-cystine is dependent on multiple transport systems, these compounds may be effective in the treatment of urinary tract infections.
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http://dx.doi.org/10.1111/jam.12623 | DOI Listing |
Microbiome
January 2025
Faculty of Infectious and Tropical Diseases, London School of Hygiene and Tropical Medicine, London, UK.
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Department of Family Medicine, Epidemiology & Community Health, School of Health Sciences, Kenyatta University, Nairobi, Kenya.
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Institute of Cancer Research, Shenzhen Bay Laboratory, Shenzhen, Guangdong, 518107, China.
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Centre for Marine Magnetism (CM2, Department of Ocean Science and Engineering, Southern University of Science and Technology, Shenzhen, 518055, China.
Under sustained global warming, Arctic climate is projected to become more responsive to changes in North Pacific meridional heat transport as a result of teleconnections between low and high latitudes, but the underlying mechanisms remain poorly understood. Here, we reconstruct subarctic humidity changes over the past 400 kyr to investigate the role of low-to-high latitude interactions in regulating Arctic hydroclimate. Our reconstruction is based on precipitation-driven sediment input variations in the Subarctic North Pacific (SANP), which reveal a strong precessional cycle in subarctic humidity under the relatively low eccentricity variations that dominated the past four glacial-interglacial cycles.
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Division of Biology and Biological Engineering, California Institute of Technology, Pasadena, CA, USA.
Cells use 'active' energy-consuming motor and filament protein networks to control micrometre-scale transport and fluid flows. Biological active materials could be used in dynamically programmable devices that achieve spatial and temporal resolution that exceeds current microfluidic technologies. However, reconstituted motor-microtubule systems generate chaotic flows and cannot be directly harnessed for engineering applications.
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