Endocytosis and interaction of poly (amidoamine) dendrimers with Caco-2 cells

被引:153
|
作者
Kitchens, Kelly M. [1 ]
Foraker, Amy B. [1 ]
Kolhatkar, Rohit B. [1 ]
Swaan, Peter W. [1 ]
Ghandehari, Hamidreza [1 ]
机构
[1] Univ Maryland, Sch Pharm, Dept Pharmaceut Sci, Ctr Nanomed & Cellular Delivery, Baltimore, MD 21201 USA
关键词
Caco-2; cells; intracellular trafficking; oral drug delivery; poly (amidoamine) dendrimers;
D O I
10.1007/s11095-007-9415-0
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
To investigate the internalization and subcellular trafficking of fluorescently labeled poly (amidoamine) (PAMAM) dendrimers in intestinal cell monolayers. PAMAM dendrimers with positive or negative surface charge were conjugated to fluorescein isothiocyanate (FITC) and visualized for colocalization with endocytosis markers using confocal microscopy. Effect of concentration, generation and charge on the morphology of microvilli was observed using transmission electron microscopy. Both cationic and anionic PAMAM dendrimers internalized within 20 min, and differentially colocalized with endocytosis markers clathrin, EEA-1, and LAMP-1. Transmission electron microscopy analysis showed a concentration-, generation- and surface charge-dependent effect on microvilli morphology. These studies provide visual evidence that endocytic mechanism(s) contribute to the internalization and subcellular trafficking of PAMAM dendrimers across the intestinal cells, and that appropriate selection of PAMAM dendrimers based on surface charge, concentration and generation number allows the application of these polymers for oral drug delivery.
引用
收藏
页码:2138 / 2145
页数:8
相关论文
共 50 条
  • [41] Investigation of the Cytotoxic Effects of Titanate Nanotubes on Caco-2 Cells
    Fenyvesi, Ferenc
    Konya, Zoltan
    Razga, Zsolt
    Vecsernyes, Miklos
    Kasa, Peter, Jr.
    Pintye-Hodi, Klara
    Bacskay, Ildiko
    AAPS PHARMSCITECH, 2014, 15 (04): : 858 - 861
  • [42] Transport kinetics of iron chelators and their chelates in Caco-2 cells
    Huang, XP
    Spino, M
    Thiessen, JJ
    PHARMACEUTICAL RESEARCH, 2006, 23 (02) : 280 - 290
  • [43] The Antioxidative Activity of Lingonberry Anthocyanin Liposomes on Caco-2 Cells
    Chen Y.
    Cuan R.
    Huang H.
    Zhong H.
    Sun Y.
    Zhang W.
    Journal of Chinese Institute of Food Science and Technology, 2023, 23 (06) : 56 - 63
  • [44] Transport and Metabolism of Equol by Caco-2 Human Intestinal Cells
    Walsh, Kelly R.
    Failla, Mark L.
    JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2009, 57 (18) : 8297 - 8302
  • [45] Inositol phosphates influence iron uptake in Caco-2 cells
    Skoglund, E
    Lönnerdal, B
    Sandberg, AS
    JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 1999, 47 (03) : 1109 - 1113
  • [46] Doxorubicin decreases paraquat accumulation and toxicity in Caco-2 cells
    Silva, Renata
    Carmo, Helena
    Vilas-Boas, Vania
    de Pinho, Paula Guedes
    Dinis-Oliveira, Ricardo Jorge
    Carvalho, Felix
    Silva, Isabel
    Correia-de-Sa, Paulo
    Bastos, Maria de Lourdes
    Remiao, Fernando
    TOXICOLOGY LETTERS, 2013, 217 (01) : 34 - 41
  • [47] Unraveling Caco-2 cells through functional and transcriptomic assessments
    Jeong, Ye Eun
    Shea, Katherine
    Ford, Kevin A.
    REGULATORY TOXICOLOGY AND PHARMACOLOGY, 2025, 156
  • [48] An approach to As(III) and As(V) bioavailability studies with Caco-2 cells
    Laparra, JM
    Vélez, D
    Barberá, R
    Montoro, R
    Farré, R
    TOXICOLOGY IN VITRO, 2005, 19 (08) : 1071 - 1078
  • [49] The transport mechanism of monocarboxylate transporter on spinosin in Caco-2 cells
    Meng, Xiang Le
    Guo, Yan Li
    Huang, Hai Ying
    SAUDI PHARMACEUTICAL JOURNAL, 2016, 24 (03) : 286 - 291
  • [50] Impedance spectroscopy for silica nanoparticle detection in Caco-2 cells
    Clara, S.
    Lornejad-Schaefer, M. R.
    Schaefer, C.
    Jakoby, B.
    Hilber, W.
    28TH EUROPEAN CONFERENCE ON SOLID-STATE TRANSDUCERS (EUROSENSORS 2014), 2014, 87 : 364 - 368