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1.
Molecules ; 29(9)2024 Apr 26.
Article in English | MEDLINE | ID: mdl-38731484

ABSTRACT

In this study, we developed a green and multifunctional bioactive nanoemulsion (BBG-NEs) of Blumea balsamifera oil using Bletilla striata polysaccharide (BSP) and glycyrrhizic acid (GA) as natural emulsifiers. The process parameters were optimized using particle size, PDI, and zeta potential as evaluation parameters. The physicochemical properties, stability, transdermal properties, and bioactivities of the BBG-NEs under optimal operating conditions were investigated. Finally, network pharmacology and molecular docking were used to elucidate the potential molecular mechanism underlying its wound-healing properties. After parameter optimization, BBG-NEs exhibited excellent stability and demonstrated favorable in vitro transdermal properties. Furthermore, it displayed enhanced antioxidant and wound-healing effects. SD rats wound-healing experiments demonstrated improved scab formation and accelerated healing in the BBG-NE treatment relative to BBO and emulsifier groups. Pharmacological network analyses showed that AKT1, CXCL8, and EGFR may be key targets of BBG-NEs in wound repair. The results of a scratch assay and Western blotting assay also demonstrated that BBG-NEs could effectively promote cell migration and inhibit inflammatory responses. These results indicate the potential of the developed BBG-NEs for antioxidant and skin wound applications, expanding the utility of natural emulsifiers. Meanwhile, this study provided a preliminary explanation of the potential mechanism of BBG-NEs to promote wound healing through network pharmacology and molecular docking, which provided a basis for the mechanistic study of green multifunctional nanoemulsions.


Subject(s)
Antioxidants , Emulsifying Agents , Emulsions , Glycyrrhizic Acid , Molecular Docking Simulation , Wound Healing , Wound Healing/drug effects , Animals , Emulsions/chemistry , Emulsifying Agents/chemistry , Emulsifying Agents/pharmacology , Rats , Antioxidants/pharmacology , Antioxidants/chemistry , Antioxidants/chemical synthesis , Glycyrrhizic Acid/pharmacology , Glycyrrhizic Acid/chemistry , Polysaccharides/chemistry , Polysaccharides/pharmacology , Green Chemistry Technology , Humans , Rats, Sprague-Dawley , Nanoparticles/chemistry , Plant Oils/chemistry , Plant Oils/pharmacology , Fabaceae/chemistry , Male , Particle Size , Cell Movement/drug effects
2.
Molecules ; 29(9)2024 Apr 26.
Article in English | MEDLINE | ID: mdl-38731501

ABSTRACT

Bacterial infection is a thorny problem, and it is of great significance to developing green and efficient biological antibacterial agents that can replace antibiotics. This study aimed to rapidly prepare a new type of green antibacterial nanoemulsion containing silver nanoparticles in one step by using Blumea balsamifera oil (BBO) as an oil phase and tea saponin (TS) as a natural emulsifier and reducing agent. The optimum preparation conditions of the AgNPs@BBO-TS NE were determined, as well as its physicochemical properties and antibacterial activity in vitro being investigated. The results showed that the average particle size of the AgNPs@BBO-TS NE was 249.47 ± 6.23 nm, the PDI was 0.239 ± 0.003, and the zeta potential was -35.82 ± 4.26 mV. The produced AgNPs@BBO-TS NE showed good stability after centrifugation and 30-day storage. Moreover, the AgNPs@BBO-TS NE had an excellent antimicrobial effect on Staphylococcus aureus, Escherichia coli, and Pseudomonas aeruginosa. These results demonstrated that the AgNPs@BBO-TS NE produced in this study can be used as an efficient and green antibacterial agent in the biomedical field.


Subject(s)
Anti-Bacterial Agents , Emulsions , Green Chemistry Technology , Metal Nanoparticles , Microbial Sensitivity Tests , Particle Size , Silver , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/chemistry , Silver/chemistry , Silver/pharmacology , Metal Nanoparticles/chemistry , Staphylococcus aureus/drug effects , Plant Oils/chemistry , Plant Oils/pharmacology , Pseudomonas aeruginosa/drug effects , Escherichia coli/drug effects , Escherichia coli/growth & development , Saponins/chemistry , Saponins/pharmacology
3.
Bioresour Technol ; 267: 84-92, 2018 Nov.
Article in English | MEDLINE | ID: mdl-30015002

ABSTRACT

The specific inhibitory effects of sulfonamides on anaerobic ammonium oxidation (anammox) process remain unknown. This study investigated the inhibitory characteristics of sulfadimethoxine (SDM) and sulfamethazine (SM) in two anammox bioreactors with NH4+-N (160 mg/L) and NO2--N (210 mg/L) in influent. Results indicate that anammox bacteria in both bioreactors adapted to low antibiotic concentrations (less than 3 mg/L). At concentrations between 5 and 7 mg/L, SDM inhibited the growth of anammox bacteria and resulted in a decrease of Candidatus Brocadia abundance from 2.57% to 0.39%. In contrast, at concentrations of 5-9 mg/L, SM inhibited the denitrification process more severely than SDM, resulting in higher accumulation of nitrite and nitrate. The purpose of this study was to elucidate the inhibitory effects of sulfonamides on the anammox process and to provide a reference for the stable operation of anammox bioreactors for the treatment of sulfonamide-containing wastewater.


Subject(s)
Bioreactors , Sulfadimethoxine , Sulfamethazine , Ammonium Compounds , Anaerobiosis , Denitrification , Nitrogen , Oxidation-Reduction
4.
Bioresour Technol ; 264: 253-260, 2018 Sep.
Article in English | MEDLINE | ID: mdl-29852414

ABSTRACT

The anaerobic ammonia oxidation (anammox) and sulfocompound-oxidizing autotrophic denitrification coupling system (A/SAD) was initiated in an expanded granular sludge bed (EGSB) reactor for nitrogen removal from high-strength wastewater. Owing to cooperation between anammox and partial sulfocompound-oxidation autotrophic denitrification coupling system (PSAD), the highest nitrogen removal efficiency (NRE) of 98.1% ±â€¯0.4% achieved at the optimal influent conditions of conversion efficiency of ammonium (CEA) of 55% and S2O32--S/NO3--N (S/N) of 1.4 mol mol-1. The activity of the short-cut sulfocompound-oxidizing autotrophic denitrification (SSAD) was also regulated to cope with dynamic CEA in the influent by changing the S/N, which was demonstrated to be effective in alleviating nitrite accumulation when the CEA was between 57% and 61%. Both the anammox and SAD bacteria enriched in the reactor after long-term incubation. Candidatus Brocadia and Candidatus Jettenia might be potentially contributing the most to anammox, while the Thiobacillus was the dominant taxa related to SAD.


Subject(s)
Bioreactors , Denitrification , Anaerobiosis , Autotrophic Processes , Nitrogen , Oxidation-Reduction , Sewage
5.
Appl Microbiol Biotechnol ; 101(20): 7729-7739, 2017 Oct.
Article in English | MEDLINE | ID: mdl-28929287

ABSTRACT

Ammonia is widely distributed in sulfate-reducing bioreactor dealing with sulfate wastewater, which shows potential effect on the metabolic pathway of sulfate and ammonia. This study investigates the sulfate-reducing efficiency and microbial community composition in the sulfate-reducing EGSB reactor with the increasing ammonia loading. Results indicated that, compared with low ammonia loading (166-666 mg/L), the sulfate and organic matter removal efficiencies were improved gradually with the appropriate ammonia loading (1000-2000 mg/L), which increased from 63.58 ± 3.81 to 71.08 ± 1.36% and from 66.24 ± 1.32 to 81.88 ± 1.83%, respectively. Meanwhile, with the appropriate ratio of ammonia and sulfate (1.5-3.0) and hydraulic retention time (21 h), the sulfate-reducing anaerobic ammonia oxidation (SRAO) process was occurred efficiently, inducing the accumulation of S0 (270 mg/L) and the simultaneous ammonia removal (70.83%) in EGSB reactor. Moreover, the key sulfate-reducing bacteria (SRB) (Desulfovibrio) and denitrification bacteria (Pseudomonas and Alcaligenes) were responsible for the sulfate and nitrogen removal in these phases, which accounted for 3.66-5.54 and 3.85-9.13%, respectively. However, as the ammonia loading higher than 3000 mg/L (phases 9 and 10), the sulfate-reducing efficiency was decreased to only 28.3 ± 1.26% with the ammonia removal rate of 18.4 ± 3.37% in the EGSB reactor. Meanwhile, the predominant SRB in phases 9 and 10 were Desulfomicrobium (1.22-1.99%) and Desulfocurvus (4.0-5.46%), and the denitrification bacteria accounted for only 0.88% (phase 10), indicating the low nitrogen removal rate.


Subject(s)
Ammonia/metabolism , Bacteria/classification , Bacteria/metabolism , Bioreactors/microbiology , Biota , Sulfates/metabolism , Anaerobiosis , Organic Chemicals/metabolism , Oxidation-Reduction
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