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1.
J Hazard Mater ; 382: 121228, 2020 01 15.
Article in English | MEDLINE | ID: mdl-31561197

ABSTRACT

Vanadate contaminant in groundwater receives increasing attentions, but little is known on its biogeochemical transformation with gaseous electron donors. This study investigated bio-reduction of vanadate coupled with anaerobic methane oxidation and its relationship with nitrate reduction. Results showed 95.8 ±â€¯3.1% of 1 mM vanadate was removed within 7 days using methane as the sole electron donor. Tetravalent vanadium compounds were the main reduction products, which precipitated naturally in groundwater environment. The introduction of nitrate inhibited vanadate reduction, though both were reduced in parallel. Accumulations of volatile fatty acids (VFAs) were observed from methane oxidation. Preliminary microbial community structure and metabolite analyses indicated that vanadate was likely reduced via Methylomonas coupled with methane oxidation or through synergistic relationships between methane oxidizing bacteria and heterotrophic vanadate reducers with VFAs served as the intermediates.


Subject(s)
Groundwater/microbiology , Methane/metabolism , Nitrates/metabolism , Vanadates/metabolism , Water Pollutants, Chemical/metabolism , Anaerobiosis , Microbiota , Oxidation-Reduction
2.
Rev. bras. farmacogn ; 29(4): 445-448, July-Aug. 2019. graf
Article in English | LILACS | ID: biblio-1042279

ABSTRACT

Abstract Achillinoside was isolated from methanol extract of Achillea alpina L., Asteraceae. The structure of the compound was characterized based on various spectrum data, including IR, HR-ESI-MS, 1D and 2D NMR. The cardiovascular protective effect of achillinoside was tested on H2O2-induced H9c2 cells. In our research, achillinoside could increase the cell viability dose-dependently in H2O2-induced H9c2 cells. In addition, the levels of caspase-3/9 cells were significantly decreased in H2O2 and achillinoside incubated H9c2 cells.

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