Turmeric extract loaded nanoliposome as a potential antioxidant and antimicrobial nanocarrier for food applications
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K. Ganbarov | F. S. Kamounah | M. Yousefi | B. Yousefi | H. Kafil | H. Hamishehkar | B. Ghanbarzadeh | R. Mokarram | Z. Hojabri | Nayyer Karimi | F. Hajibonabi | S. Moaddab
[1] V. Jabbari,et al. Application of Salvia multicaulis essential oil-containing nanoemulsion against food-borne pathogens , 2017 .
[2] Y. Yao,et al. Delivery systems of antimicrobial compounds to food , 2016 .
[3] M. Yousefi,et al. Gentamicin induces efaA expression and biofilm formation in Enterococcus faecalis. , 2016, Microbial pathogenesis.
[4] Jian-Guo Jiang,et al. Curcumin liposomes prepared with milk fat globule membrane phospholipids and soybean lecithin. , 2016, Journal of dairy science.
[5] A. Bilia,et al. Enhanced curcumin permeability by SLN formulation: The PAMPA approach , 2016 .
[6] M. Yousefi,et al. Survey of the Antibiofilm and Antimicrobial Effects of Zingiber officinale (in Vitro Study) , 2016, Jundishapur journal of microbiology.
[7] B. Aliakbarian,et al. An efficient liposome based method for antioxidants encapsulation. , 2015, Colloids and surfaces. B, Biointerfaces.
[8] H. Hamishehkar,et al. Phytosome and Liposome: The Beneficial Encapsulation Systems in Drug Delivery and Food Application , 2015 .
[9] H. Kafil,et al. Spread of Enterococcal Surface Protein in Antibiotic Resistant Entero-coccus faecium and Enterococcus faecalis isolates from Urinary Tract Infections , 2015, The open microbiology journal.
[10] Mohamad G. Abiad,et al. Green synthesis of curcumin conjugated nanosilver for the applications in nucleic acid sensing and anti-bacterial activity. , 2015, Colloids and surfaces. B, Biointerfaces.
[11] Chuanbin Wu,et al. Proniosome-derived niosomes for tacrolimus topical ocular delivery: in vitro cornea permeation, ocular irritation, and in vivo anti-allograft rejection. , 2014, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[12] K. Polasa,et al. In vitro evaluation on antioxidant and antimicrobial activity of spice extracts of ginger, turmeric and garlic , 2013 .
[13] M. Shahedi,et al. Nanostructured lipid carriers (NLC): A potential delivery system for bioactive food molecules , 2013 .
[14] F. Shahidi,et al. Hesperetin-Loaded Solid Lipid Nanoparticles and Nanostructure Lipid Carriers for Food Fortification: Preparation, Characterization, and Modeling , 2013, Food and Bioprocess Technology.
[15] X. An,et al. Temperature-dependent stability and DPPH scavenging activity of liposomal curcumin at pH 7.0. , 2012, Food chemistry.
[16] B. Aggarwal,et al. Multitargeting by curcumin as revealed by molecular interaction studies. , 2011, Natural product reports.
[17] Jian-guo Xu,et al. Essential oil composition and antimicrobial activity of Sphallerocarpus gracilis seeds against selected food-related bacteria , 2011 .
[18] Viness Pillay,et al. A Review on Composite Liposomal Technologies for Specialized Drug Delivery , 2011, Journal of drug delivery.
[19] P. Jain,et al. COMPARATIVE STUDIES ON THE ANTIMICROBIAL ACTIVITY OF BLACK PEPPER (PIPER NIGRUM) AND TURMERIC (CURCUMA LONGA) EXTRACTS , 2010 .
[20] N. Thanh,et al. Functionalisation of nanoparticles for biomedical applications , 2010 .
[21] Digvir S. Jayas,et al. Nanotechnology for the Food and Bioprocessing Industries , 2010, Food and bioprocess technology.
[22] Christie M. Sayes,et al. The relationship between pH and zeta potential of ∼ 30 nm metal oxide nanoparticle suspensions relevant to in vitro toxicological evaluations , 2009 .
[23] Makoto Takahashi,et al. Evaluation of an oral carrier system in rats: bioavailability and antioxidant properties of liposome-encapsulated curcumin. , 2009, Journal of agricultural and food chemistry.
[24] S. Chakrabarti,et al. Curcumin prevents diabetes-associated abnormalities in the kidneys by inhibiting p300 and nuclear factor-kappaB. , 2009, Nutrition.
[25] D. Mcclements,et al. Solid Lipid Nanoparticles as Delivery Systems for Bioactive Food Components , 2008 .
[26] D. Panda,et al. Curcumin inhibits FtsZ assembly: an attractive mechanism for its antibacterial activity. , 2008, The Biochemical journal.
[27] M. R. Mozafari,et al. Recent trends in the lipid-based nanoencapsulation of antioxidants and their role in foods , 2006 .
[28] Francesca Patrignani,et al. Use of natural aroma compounds to improve shelf-life and safety of minimally processed fruits , 2004 .
[29] P. Coutinho,et al. Effect of pH on the Control Release of Microencapsulated Dye in Lecithin Liposomes. II , 2003, Journal of liposome research.
[30] Hong-yu Zhang,et al. Theoretical elucidation on the antioxidant mechanism of curcumin: a DFT study. , 2002, Organic letters.
[31] R. Govinden,et al. Spice oils for the control of co-occurring mycotoxin-producing fungi. , 2002, Journal of food protection.
[32] M. Rao,et al. Structure‐Activity Relationships for the Inhibition of Lipid Peroxidation and the Scavenging of Free Radicals by Synthetic Symmetrical Curcumin Analogues , 2000, The Journal of pharmacy and pharmacology.
[33] T. Osawa,et al. Involvement of the beta-diketone moiety in the antioxidative mechanism of tetrahydrocurcumin. , 1996, Biochemical pharmacology.
[34] T. Osawa,et al. Antioxidative activity of tetrahydrocurcuminoids. , 1995, Bioscience, biotechnology, and biochemistry.
[35] M. Rao,et al. Curcuminoids as Potent Inhibitors of Lipid Peroxidation , 1994, The Journal of pharmacy and pharmacology.
[36] P. Regueiro,et al. Preparation of a protein‐free total brain white matter lipid fraction: Characterization of liposomes , 1992, Journal of neuroscience research.
[37] B. Mehramuz,et al. Antioxidant, Antimicrobial and Physicochemical Properties of Turmeric Extract-Loaded Nanostructured Lipid Carrier (NLC) , 2018 .
[38] Yunpeng Fan,et al. Antioxidative and immunological activities of ophiopogon polysaccharide liposome from the root of Ophiopogon japonicus. , 2016, Carbohydrate polymers.
[39] H. Rachmawati,et al. Formation of Phytosome Containing Silymarin Using Thin Layer-Hydration Technique Aimed for Oral Delivery , 2016 .
[40] Chaoyang Ma,et al. Preparation, physicochemical characterization and application of acetylated lotus rhizome starches. , 2016, Carbohydrate polymers.
[41] M. Lacroix,et al. In vitro evaluation of antimicrobial activities of various commercial essential oils, oleoresin and pure compounds against food pathogens and application in ham. , 2014, Meat science.
[42] M Novič,et al. Classification of dry-cured hams according to the maturation time using near infrared spectra and artificial neural networks. , 2014, Meat science.
[43] Vinod Kr,et al. Preclinical studies of a novel polyherbal phyto–complex hair growth promoting cream , 2012 .
[44] M. Gulati,et al. A review of Curcumin in reference to its use in oral diseases , 2012 .
[45] J. S. Dua,et al. LIPOSOME: METHODS OF PREPARATION AND APPLICATIONS , 2012 .
[46] K. Usmanghani,et al. CURCUMA LONGA AND CURCUMIN: A REVIEW ARTICLE , 2010 .
[47] I. Bakker-Woudenberg,et al. Liposomes as carriers of antimicrobial agents or immunomodulatory agents in the treatment of infections , 2006, European Journal of Clinical Microbiology and Infectious Diseases.
[48] B. Keller. Liposomes in nutrition , 2001 .