PEG 400:Trehalose Coating Enhances Curcumin-Loaded PLGA Nanoparticle Internalization in Neuronal Cells

被引:2
|
作者
Caballero-Floran, Isaac H. [1 ,2 ]
Cortes, Hernan [3 ]
Borbolla-Jimenez, Fabiola V. [3 ]
Floran-Hernandez, Carla D. [4 ]
Del Prado-Audelo, Maria L. [5 ]
Magana, Jonathan J. [3 ,5 ]
Floran, Benjamin [4 ]
Leyva-Gomez, Gerardo [2 ]
机构
[1] Inst Politecn Nacl, Ctr Invest & Estudios Avanzados, Dept Farmacol, Mexico City 07360, Mexico
[2] Univ Nacl Autonoma Mexico, Fac Quim, Dept Farm, Ciudad Univ,Circuito Exterior S-N, Mexico City 04510, Mexico
[3] Inst Nacl Rehabil Luis Guillermo Ibarra Ibarra IN, Lab Med Genom, Dept Genom, Mexico City 14389, Mexico
[4] Inst Politecn Nacl, Ctr Invest & Estudios Avanzados, Dept Fisiol Biofis & Neurociencias, Mexico City 07360, DF, Mexico
[5] Tecnol Monterrey, Escuela Ingn & Ciencias, Campus Ciudad Mexico, Mexico City 14380, Mexico
关键词
trehalose; polyethylene glycol; PEG; nanoprecipitation; nanoparticles; PLGA; neurons; cell internalization; drug delivery; POLYMERIC NANOPARTICLES; ANHYDROUS FORM; DRUG-DELIVERY; TREHALOSE; OPTIMIZATION; CYTOTOXICITY; FORMULATION; FLUORESCENCE; MEMBRANE; KINETICS;
D O I
10.3390/pharmaceutics15061594
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
This work proposes a combination of polyethylene glycol 400 (PEG) and trehalose as a surface modification approach to enhance PLGA-based nanoparticles as a drug carrier for neurons. PEG improves nanoparticles' hydrophilicity, and trehalose enhances the nanoparticle's cellular internalization by inducing a more auspicious microenvironment based on inhibiting cell surface receptor denaturation. To optimize the nanoprecipitation process, a central composite design was performed; nanoparticles were adsorbed with PEG and trehalose. PLGA nanoparticles with diameters smaller than 200 nm were produced, and the coating process did not considerably increase their size. Nanoparticles entrapped curcumin, and their release profile was determined. The nanoparticles presented a curcumin entrapment efficiency of over 40%, and coated nanoparticles reached 60% of curcumin release in two weeks. MTT tests and curcumin fluorescence, with confocal imaging, were used to assess nanoparticle cytotoxicity and cell internalization in SH-SY5Y cells. Free curcumin 80 & mu;M depleted the cell survival to 13% at 72 h. Contrariwise, PEG:Trehalose-coated curcumin-loaded and non-loaded nanoparticles preserved cell survival at 76% and 79% under the same conditions, respectively. Cells incubated with 100 & mu;M curcumin or curcumin nanoparticles for 1 h exhibited 13.4% and 14.84% of curcumin's fluorescence, respectively. Moreover, cells exposed to 100 & mu;M curcumin in PEG:Trehalose-coated nanoparticles for 1 h presented 28% fluorescence. In conclusion, PEG:Trehalose-adsorbed nanoparticles smaller than 200 nm exhibited suitable neural cytotoxicity and increased cell internalization proficiency.
引用
收藏
页数:24
相关论文
共 27 条
  • [1] Optimization of Curcumin-Loaded PEG-PLGA Nanoparticles by GSH Functionalization: Investigation of the Internalization Pathway in Neuronal Cells
    Paka, Ghislain Djiokeng
    Ramassamy, Charles
    MOLECULAR PHARMACEUTICS, 2017, 14 (01) : 93 - 106
  • [2] The production of curcumin-loaded PLGA/PEG nanoparticle for the treatment of Alzheimer's disease
    Guler, Ece
    Cam, Muhammet Emin
    JOURNAL OF RESEARCH IN PHARMACY, 2023, 27 (06): : 2399 - 2404
  • [3] Odorranalectin modified PEG-PLGA/PEG-PBLG curcumin-loaded nanoparticle for intranasal administration
    Li Xinrui
    Su Jing
    Kamal, Zul
    Guo Pengcheng
    Wu Xinyi
    Lu Lina
    Wu Hongbing
    Qiu Mingfeng
    DRUG DEVELOPMENT AND INDUSTRIAL PHARMACY, 2020, 46 (06) : 899 - 909
  • [4] Pharmacokinetics of curcumin-loaded PLGA and PLGA-PEG blend nanoparticles after oral administration in rats
    Khalil, Najeh Maissar
    Frabel do Nascimento, Thuane Castro
    Casa, Diani Meza
    Dalmolin, Luciana Facco
    de Mattos, Ana Cristina
    Hoss, Ivonete
    Romano, Marco Aurelio
    Mainardes, Rubiana Mara
    COLLOIDS AND SURFACES B-BIOINTERFACES, 2013, 101 : 353 - 360
  • [5] Curcumin-loaded PLGA-PEG-PLGA triblock copolymeric micelles: Preparation, pharmacokinetics and distribution in vivo
    Song, Zhimei
    Feng, Runliang
    Sun, Min
    Guo, Chenyu
    Gao, Yan
    Li, Lingbing
    Zhai, Guangxi
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2011, 354 (01) : 116 - 123
  • [6] Advancements in curcumin-loaded PLGA nanoparticle delivery systems: progressive strategies in cancer therapy
    Keshavarz Shahbaz, Sanaz
    Koushki, Khadijeh
    Izadi, Omid
    Penson, Peter E.
    Sukhorukov, Vasily N.
    Kesharwani, Prashant
    Sahebkar, Amirhossein
    JOURNAL OF DRUG TARGETING, 2024, 32 (10) : 1207 - 1232
  • [7] Curcumin-loaded PLGA nanoparticles coating onto metal stent by electrophoretic deposition techniques
    School of Chemistry and Molecular Engineering, Seoul National University, Seoul 151-742, Korea, Republic of
    Bulletin of the Korean Chemical Society, 2007, 28 (03) : 397 - 402
  • [8] Curcumin-loaded PLGA nanoparticles coating onto metal stent by electrophoretic deposition techniques
    Nam, So Hee
    Nam, Hye Yeong
    Joo, Jae Ryang
    Back, In Su
    Park, Jong-Sang
    BULLETIN OF THE KOREAN CHEMICAL SOCIETY, 2007, 28 (03): : 397 - 402
  • [9] Investigating a Curcumin-Loaded PLGA-PEG-PLGA Thermo-Sensitive Hydrogel for the Prevention of Alzheimer's Disease
    Lin, Yi-Wen
    Fang, Chih-Hsiang
    Yang, Ching-Yun
    Liang, Ya-Jyun
    Lin, Feng-Huei
    ANTIOXIDANTS, 2022, 11 (04)
  • [10] Anticancer Activity of Curcumin-Loaded PLGA Nanoparticles on PC3 Prostate Cancer Cells
    Azandeh, Seyed Saeed
    Abbaspour, Mohammadreza
    Khodadadi, Ali
    Khorsandi, Layasadat
    Orazizadeh, Mahmoud
    Heidari-Moghadam, Abbas
    IRANIAN JOURNAL OF PHARMACEUTICAL RESEARCH, 2017, 16 (03): : 868 - 879