Optimization and Characterization of PEG Extraction Process for Tartary Buckwheat-Derived Nanoparticles

被引:2
作者
Zhang, Jiyue [1 ]
Zhou, Chuang [1 ]
Tan, Maoling [1 ]
Cao, Yanan [1 ]
Ren, Yuanhang [1 ]
Peng, Lianxin [1 ]
机构
[1] Chengdu Univ, Minist Agr & Rural Affairs, Key Lab Coarse Cereal Proc, Chengdu 610106, Peoples R China
关键词
Tartary-buckwheat-derived nanoparticles; PEG precipitation; process optimization; characterization; antioxidant activity; DRUG-DELIVERY; NANOVESICLES; PLANT; PRECIPITATION; YIELD; CELLS; SIRNA;
D O I
10.3390/foods13162624
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
Plant-derived edible nanovesicles serve as crucial nanocarriers for targeted delivery of bioactive substances, including miRNAs and phytochemicals, to specific tissues. They have emerged as a significant focus in precision nutrient delivery research. In this study, Tartary-buckwheat-derived nanoparticles (TBDNs) were isolated and purified using a combination of differential centrifugation and PEG precipitation. A response surface test was employed to optimize the extraction process of TBDNs in terms of yield, total phenol and flavonoid content, as well as antioxidant activity. The results demonstrated that TBDNs exhibited the highest yield and activity at a 10% concentration of PEG, pH 5, and centrifugation temperature of 4 degrees C. Under these conditions, the measured yield of TBDNs was 1.7795 g/kg, with a total phenol content of 178.648 mg/100 g, total flavonoid content of 145.421 mg/100 g, and DPPH-radical-scavenging rate reaching 86.37%. Characterization through a transmission electron microscope and nanoparticle-size-tracking analyzer revealed that TBDNs possessed a teato-type vesicle structure with dispersed vesicle clusters present within them. Furthermore, the extracted TBDNs were found to have an average particle size of 182.8 nm with the main peak observed at 162.8 nm when tested for particle size distribution analysis. These findings provide a novel method for extracting TBDNs while laying the groundwork for future investigations into their activities.
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页数:14
相关论文
共 39 条
[31]   Role of MicroRNAs in Dietary Interventions for Obesity and Obesity-Related Diseases [J].
Zhang, Ji-Yue ;
Ren, Chao-Qin ;
Cao, Ya-Nan ;
Ren, Yuanhang ;
Zou, Liang ;
Zhou, Chuang ;
Peng, Lian-Xin .
JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2023, 71 (40) :14396-14412
[32]   Oral administration of ginger-derived nanolipids loaded with siRNA as a novel approach for efficient siRNA drug delivery to treat ulcerative colitis [J].
Zhang, Mingzhen ;
Wang, Xiaoyu ;
Han, Moon Kwon ;
Collins, James F. ;
Merlin, Didier .
NANOMEDICINE, 2017, 12 (16) :1927-1943
[33]   Edible ginger-derived nanoparticles: A novel therapeutic approach for the prevention and treatment of inflammatory bowel disease and colitis-associated cancer [J].
Zhang, Mingzhen ;
Viennois, Emilie ;
Prasad, Meena ;
Zhang, Yunchen ;
Wang, Lixin ;
Zhang, Zhan ;
Han, Moon Kwon ;
Xiao, Bo ;
Xu, Changlong ;
Srinivasan, Shanthi ;
Merlin, Didier .
BIOMATERIALS, 2016, 101 :321-340
[34]  
Zhang S.-Y., 2022, Chem. Bioeng, V39, P32
[35]  
Zhao W.J., 2021, Masters Thesis
[36]   Effect of pH on the isolation of urinary exosome [J].
Zhao, Yao ;
Chen, Kaiyong ;
Li, Haining ;
Wu, Huiyi .
INTERNATIONAL UROLOGY AND NEPHROLOGY, 2017, 49 (01) :165-169
[37]   Ginger-derived nanoparticles protect against alcohol-induced liver damage [J].
Zhuang, Xiaoying ;
Deng, Zhong-Bin ;
Mu, Jingyao ;
Zhang, Lifeng ;
Yan, Jun ;
Miller, Donald ;
Feng, Wenke ;
McClain, Craig J. ;
Zhang, Huang-Ge .
JOURNAL OF EXTRACELLULAR VESICLES, 2015, 4
[38]  
Zhuo Wei-Wei, 2021, Food Research and Development, V42, P126, DOI 10.12161/j.issn.1005-6521.2021.19.018
[39]   'Green' nanotherapeutics from tea leaves for orally targeted prevention and alleviation of colon diseases [J].
Zu, Menghang ;
Xie, Dengchao ;
Canup, Brandon S. B. ;
Chen, Nanxi ;
Wang, Yajun ;
Sun, Ruxin ;
Zhang, Zhan ;
Fu, Yuming ;
Dai, Fangyin ;
Xiao, Bo .
BIOMATERIALS, 2021, 279 (279)