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At least 19 recordsLinked to original sources

Cerium dioxide nanoparticle exposure attenuates mobility-linked antibiotic resistome signatures across the soil-lettuce continuum.

Antibiotic resistance genes (ARGs) are contaminants of emerging concern in agricultural microbiomes. Their association with mobile genetic elements (MGEs) can enhance dissemination across soil-plant interfaces, creating potential environmental and food-chain exposure risks. However, how engineered nanoparticles modulate relative ARG abundance and mobility-linked resistome features in plant-associated microbiomes remains poorly understood. Here, we examined the effects of graded, experimentally elevated cerium dioxide nanoparticle (CeO2 NP) loadings in a soil-lettuce system by integrating compartment-resolved metagenomics, ARG-MGE co-occurrence analysis, putative host-reservoir profiling, transcriptomics, and functional assays. Metagenomic profiling identified 16 ARG types and 125 subtypes and revealed niche-dependent microbiome restructuring under CeO2 NP exposure. Rhizosphere relative ARG abundance showed a negative dose-associated trend, although overall inter-group differences were not significant, whereas leaf endophytes showed a weaker response. Relative MGE abundance decreased significantly in both compartments, and lower assembly-level ARG-MGE co-occurrence reflected fewer ARGs detected in MGE-associated genomic contexts, whereas fewer multi-ARG contigs suggested reduced ARG clustering and potential co-selection. Putative host-reservoir analysis associated key efflux determinants with bacterial families whose relative representation declined following CeO2 NP exposure. Transcriptomic profiling of representative putative ARG hosts revealed host-specific responses, including downregulation of genes involved in central metabolism and Sec-dependent trafficking. Complementary host assays showed reduced apparent envelope permeability and lower recovery of tetracycline-resistant recipient-identity colonies in the plasmid-associated host system. Together, under the tested elevated-loading conditions, CeO2 NP exposure was associated with lower relative ARG signals and weaker mobility-linked resistome features across the soil-lettuce continuum, providing mechanistic insight into nanoparticle-resistome interactions in soil-plant systems.

ARG dissemination↗

Pulmonary neoplasms in rats that inhaled cerium-144 dioxide.

The lung neoplasms induced in rats by inhaled, internally deposited 144CeO2 were described and classified using histologic criteria. F344 rats were exposed once or repeatedly by inhalation to 144CeO2 and observed for their life span. There was significant life shortening only in those rats with the highest radiation doses. In these rats, there was a high percentage of squamous cell carcinomas of the lung, as well as much lower percentages of adenocarcinomas of the lung, hemangiosarcomas of the lung, and pleural mesotheliomas. At lower doses, adenocarcinomas were the most predominant tumor. These adenocarcinomas were subdivided based on their histologic pattern: alveolar, papillary, tubular, or undifferentiated. Neither the mode of exposure (single or repeated) nor the sex of the rat influenced the lung tumor incidence or tumor type. The lung neoplasms induced by this beta-emitting radionuclide are similar in nature to those induced by alpha-emitting radionuclides deposited in the lung in rats. However, the radiation-induced squamous cell carcinomas of the lung differ from those induced by heavy particle loads of nonradioactive compounds. The radiation-induced squamous cell carcinomas occur in higher incidence and have a more malignant behavior than those induced by heavy particle loads.

Adenocarcinoma↗

The CeO(2)(+) Cation: Gas-Phase Reactivity and Electronic Structure.

"Bare" CeO(2)(+) ions can be prepared in the gas phase by consecutive oxidation of Ce(+) with O(2) and NO(2). The ability to activate saturated and unsaturated hydrocarbons is investigated by use of Fourier-transform ion cyclotron resonance mass spectrometry. In the reactions of CeO(2)(+) with linear and branched alkanes C-H bond activation is observed almost exclusively. In contrast, both oxygen-atom transfer and C-H bond activation processes occur when thermalized CeO(2)(+) cations react with simple alkenes and aromatic compounds. C-C bond activation is not observed at all. Insight into the structural and electronic properties of neutral CeO(2) and cationic CeO(2)(+) is provided by means of quasirelativistic density-functional and ab initio pseudopotential calculations. They reveal a (2)Sigma(u)(+) ground state for CeO(2)(+) which is best described as a linear cerium dioxide with a resonating pi bond. Finally, we discuss the influence of oxo ligands on the chemistry of the cationic CeO(n)()(+) (n = 0-2) species toward hydrocarbons.

Journal Article↗

CeOx-Induced Spatial and Electronic Modulation for General Direct Oxo Coupling in Transition Metal Hydroxides.

Electrochemical water splitting has emerged as a sustainable paradigm for hydrogen generation, where sluggish kinetics of the oxygen evolution reaction (OER) catalyzed by transition metal-based materials remain the critical bottleneck. Herein, we present a strategy that anchors CeOx nanoparticles (∼2 nm) onto two-dimensional Ni(OH)2 nanosheets, enabling dual modulation of spatial configuration and electronic states to accelerate O-O coupling. Spatially, interfacial lattice distortion between CeOx and Ni(OH)2 optimizes Ni-Ni dual-metal sites with reduced interatomic spacing. Electronically, dynamic modulation through reversible Ce3+/Ce4+ redox cycling positions Ce as an electronic regulation hub, stabilizing Ni species at the catalytically favorable +3 oxidation state through Ce─O─Ni interactions. This synergistic effect shifts the pathway from adsorbate evolution mechanism (AEM) to oxide pathway mechanism (OPM). The prepared CeOx@Ni(OH)2 achieves an overpotential of 152 mV at 10 mA cm-2 and operates continuously over 2000 h with limited performance decay. When integrated into an alkaline anion exchange membrane water electrolyzer (AEMWE), it requires 1.91 V to attain 1 A cm-2 and maintains stable operation for 450 h. This OPM activation strategy shows potential applicability across CeOx-loaded transition metal hydroxides, including Ni(OH)2, Co(OH)2, NiCo, and NiFe layered double hydroxides, offering a promising approach for alkaline OER enhancement.

alkaline water oxidation↗

Light microscopical localization of enzymes by means of cerium-based methods. III. Visualization techniques for cerium phosphate.

Cerium-based methods are more and more used for the electron microscopic localization of phosphohydrolases. By means of the earlier described Ce-Pb-technique, it is possible to localize these enzymes on the light microscopical level. The final product of this reaction is lead sulfide. In addition to this technique, other visualization methods for the light microscopically not visible cerium phosphate are proposed. 3 successful techniques are described in the report: The cerium perhydroxide reaction. By means of H2O2 cerium phosphate is converted into cerium perhydroxide which has an orange-yellowish colour. The manganese dioxide reaction with the conversion of cerium phosphate into cerium oxalate, which is able to reduce permanganate into the hardly soluble brown coloured manganese dioxide. A silver technique (Ce-Pb-AgS-method), which is characterized by the conversion of cerium phosphate into lead phosphate and in a second step to lead sulfide. At the active sites of the lead sulfide, the reduction of silver ions takes place. The reduced silver is converted in a final step into silver sulfide. The enzyme activity is represented by a brown or black coloured staining.

Acid Phosphatase↗

Uteroplacental blood flow during alkalosis in the sheep.

Uteroplacental blood flow was measured by the radioactive-microsphere technique in eight near-term pregnant ewes during a normal control period and during maternal metabolic alkalosis. All measurements were made on awake, unanesthetized animals. Alkalosis, defined for this study as an arterial pH of 7.60 or greater, was produced by the oral administration of sodium bicarbonate, 3 g/kg body wt. The rise in pH thus produced was unaccompanied by significant changes in systemic arterial blood pressure and cardiac output, while maternal arterial Pco2 rose slightly from control levels. Cotyledonary blood flow declined from a control value of 1,177 ml/min to 1,025 ml/min during alkalosis. This decline of 13 percent in cotyledonary blood flow is significant (P smaller than 0.002). Blood flow to the remaining uterine tissue, or noncotyledonary uterus, did not change with alkalosis, being maintained at approximately 195 ml/min. It is concluded that maternal alkalosis, unaccompained by major changes in Pco2 and systemic arterial pressure, causes a small increase in the resistance of the uteroplacental circulation.

Alkalosis↗

Cerium-induced light-microscopic demonstration of 5'-nucleotidase activity in the lymphatic capillaries of the proximal oesophagus of the rat.

Lymphatic capillaries with narrow lumina cannot be identified with certainty by means of conventional light microscopy. This, however, can be achieved with great precision by means of labelling the 5'-nucleotidase activity which is high in lymphatic capillaries. In blood capillaries, on the other hand, it is either lacking or much less pronounced depending on the organ. The reactions performed thus far occurred primarily in the presence of lead ions which had a toxic effect on the enzymes. In cerium, however, this inhibiting influence can be neglected. 2 light-microscopic procedures of labelling the 5'-nucleotidase activity, which make use of cerium, are presented and compared here for the first time. The cerium perhydroxide technique is especially suited for demonstrating the lymphatic capillaries. In comparison to the previous enzyme histochemical methods, a definitely more precise demonstration of the endothelia of small lymphatics now is possible. The reason for this is that this method only reacts to regions of high enzyme activity. As opposed to previous tests on cryostat sections, the lumen of the lymphatic capillary is nearly always identifiable as such if employing this type of reaction. These properties of the cerium-perhydroxide reaction allow definite statements regarding the distribution of the lymphatic capillaries in the tissue. Its simple and rapid course of reaction favour the use of this method in clinical problems. In the other technique presented, the manganese dioxide technique, the demonstration of lymphatic capillaries is by far less exact due to its greater sensitivity even to low enzyme activities.

5'-Nucleotidase↗