A bioactive acidic tea polysaccharide from yellow leaves of Wuyi rock tea was successively prepared via DEAE-52 and Superdex-200 columns. Nuclear magnetic resonance (NMR) analysis showed that the main glycosidic bonds were composed of α-l-Araf-(1→, →5)-α-l-Araf-(1→, →4)-α-d-Glcp-(1→, Arap-(1→, →6)-α-d-Glcp-(1→, →2,4)-α-l-Rhap-(1→, →3,4)-α-d-Glcp-(1→, →4)-α-d-GalAp-(1→, →4)-α-d-GalAp-(1→, α-d-Galp-(1→, →6)-β-d-Galp-(1→ and →4)-β-d-Galp-(1→. The molecular weight was 3.9285 × 104 Da. The hypoglycemic effect of acidic tea polysaccharides on streptozotocin-induced type2diabetesmellitus rats was evaluated through histopathology and biochemistry analysis. The acidic tea polysaccharide could improve plasma and liver lipid metabolism. Moreover, 16S rRNA gene sequencing revealed that the composition of the intestinal flora changed drastically after treatment, namely, blooms of Bifidobacterium, Blautia, Dorea, and Oscillospira, and a strong reduction in Desulfovibrio and Lactobacillus. The above results illustrated that tea polysaccharides might serve as an effective ingredient to ameliorate glucose metabolism disorders and intestinal flora in hyperglycemic rats.
The
effects of TiO2 and ZnO nanoparticles on soil bacteria
and enantioselective transformation of racemic-metalaxyl (rac-metalaxyl) in agricultural soil with or without Lolium perenne were investigated in an outdoor greenhouse.
After a 70-day exposure to 2‰ ZnO, microbial biomass carbon
decreased by 66% and bacterial community composition significantly
changed. Meanwhile, ZnO decreased chlorophyll cumulation in L. perenne by 34%. ZnO also inhibited the enantioselective
transformation of metalaxyl enantiomers and changed the enantiomer
fraction of metalaxyl. TiO2 showed similar effects but
to a lesser extent. L. perenne promoted
the transformation of rac-metalaxyl and ingested
TiO2 and ZnO. L. perenne changed the bacterial co-occurrence networks and biomarkers in native
soil and soil exposed to TiO2 and ZnO. L.
perenne reduced the inhibition effects of TiO2 and ZnO on the transformation of rac-metalaxyl.
The decrease in the relative abundance of soil keystone taxa such
as Acidobacteria and Gemmatimonas might respond to
the corresponding slow transformation of rac-metalaxyl
in soils exposed to TiO2 and ZnO, regardless of L. perenne. Our results demonstrated the existence
of mutual interactions among the impact of engineered nanoparticles
on different components (microbes, plants, and coexisting pollutants)
in the terrestrial ecosystem.
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