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Perchlorate is a widely detected environmental contaminant in surface and underground water, that seriously impacts human health by inhibiting the uptake of thyroidal radioiodine. Perchlorate reduction due to saline lake microorganisms is not as well understood as that in marine environments. In this study, we enriched a perchlorate-reducing microbial consortium collected from saline lake sediments and found that the perchlorate reduction kinetics of the enriched consortium fit the Michaelis-Menten kinetics well, with a maximum specific substrate reduction rate (q) of 0.596 ± 0.001 mg ClO/mg DW/h and half-saturation constant (K) of 16.549 ± 0.488 mg ClO/L. Furthermore, we used improved metagenome binning to reconstruct high-quality metagenome-assembled genomes from the metagenomes of the microbial consortia, including the perchlorate-reducing bacteria (PRB) Dechloromonas agitata and Wolinella succinogenes, with the genome of W. succinogenes harboring complete functional genes for perchlorate reduction being the first recovered. Given that the electrons were directly transferred to the electronic carrier cytochrome c-553 from the quinone pool, the electron transfer pathway of W. succinogenes was shorter and more efficient than the canonical pattern. This finding provides a theoretical basis for microbial remediation of sites contaminated by high concentrations of perchlorate. Metagenomic binning and metatranscriptomic analyses revealed the gene transcription variation of perchlorate reductase pcr and chlorite dismutase cld by PRB and the synergistic metabolic mechanism.
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http://dx.doi.org/10.1016/j.watres.2022.119343 | DOI Listing |
Inorg Chem
August 2025
Department of Chemistry, Brown University, Providence, Rhode Island 02912, United States.
Nitrate (NO) and perchlorate (ClO) are persistent groundwater contaminants due to their high stability and solubility. Microorganisms reduce these anions using molybdenum-containing enzymes such as nitrate reductases and perchlorate reductases. Reported here is a bioinspired dinuclear Mo(V) catalyst, [MoO(L)(THF)] (), where L = 5-Bromo-2-hydroxybenzaldehyde thiosemicarbazone, and its reactivity with nitrate and perchlorate.
View Article and Find Full Text PDFJ Am Chem Soc
August 2025
Universite d'Angers, CNRS, MOLTECH-Anjou, SFR MATRIX, Angers F-49000, France.
Both enantiomers () and () of the chiral mixed-valence radical cation salts (DM-EDT-TTF)XO (X = Cl or Re) have been prepared by electrocrystallization. Single-crystal high-quality synchrotron radiation data allowed for the very accurate determination of their 298 and 18 K structures. At room temperature, they crystallize in the enantiomorphic space groups 22 and 22 for the () and () enantiomers, respectively, while at 18 K, the structures have been solved in the and space groups, respectively.
View Article and Find Full Text PDFJ Phys Chem Lett
August 2025
SISSA─Scuola Internazionale Superiore di Studi Avanzati, 34136 Trieste, Italy.
Water inherently contains trace amounts of various salts, yet the microscopic processes by which salts influence some of its physical properties remain elusive. Notably, the mechanisms that reduce the dielectric constant of water upon salt addition are still debated. The primary absorption peak for electromagnetic radiation─commonly used in microwave heating─shifts toward higher frequencies in saline solutions, suggesting faster water molecular dynamics.
View Article and Find Full Text PDFLangmuir
July 2025
School of Chemistry and Chemical Engineering, Nanjing University of Science and Technology, Nanjing 210094, Jiangsu, China.
The development of efficient catalysts to regulate the thermal decomposition and combustion behavior of ammonium perchlorate (AP) is essential for improving the energy output of solid propellants. In this study, a LaFeCoO/Ni-Fe Prussian Blue Analogue (PBA) composite was designed to synergistically enhance the decomposition kinetics and combustion performance of AP. The composite integrates perovskite-type oxides with a conductive PBA framework, forming a bifunctional electronic-geometric catalytic interface.
View Article and Find Full Text PDFInorg Chem
July 2025
Frumkin Institute of Physical Chemistry and Electrochemistry Russian Academy of Sciences, 31-4, Leninsky prospect, 119071 Moscow, Russia.
Uranyl complexes with carbohydrazide (CHZ) and nitrate, perchlorate, perrhenate, or chloride counterions have been synthesized; their crystal structures, along with that of the CHZ condensation product, have been determined by X-ray diffraction. The complexes are identified as , , , and . All synthesized compounds feature a complex cation, [UO(CHZ)], where the molecular ligand CHZ coordinates with the uranium atom through its carbonyl O and amino group N atoms.
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