Development of Lipid-Based Nanoparticles for Enhancing the Oral Bioavailability of Paclitaxel

被引:0
|
作者
Deepti Pandita
Alka Ahuja
Viney Lather
Biju Benjamin
Tathagata Dutta
Thirumurthy Velpandian
Roop Krishen Khar
机构
[1] Hamdard University,Department of Pharmaceutics, Faculty of Pharmacy, Jamia Hamdard
[2] Jan Nayak Ch. Devi Lal Memorial College of Pharmacy,Department of Pharmaceutics
[3] Universidade da Madeira,Centro de Química da Madeira, Departamento de Química
[4] Campus Universitário da Penteada,Diamantina Institute of Cancer, Immunology, and Metabolic Medicine
[5] Metabolism and Pharmacokinetics,Department of Ocular Pharmacology, Dr. Rajender Prasad Centre of Ophthalmic Sciences and Research
[6] Ranbaxy Research Laboratories,undefined
[7] University of Queensland,undefined
[8] Princess Alexandra Hospital,undefined
[9] All India Institute of Medical Sciences,undefined
来源
AAPS PharmSciTech | 2011年 / 12卷
关键词
biodistribution; oral administration; paclitaxel; pharmacokinetics; solid lipid nanoparticles;
D O I
暂无
中图分类号
学科分类号
摘要
The current research work investigates the potential of solid lipid nanoparticles (SLNs) in improving the oral bioavailability of paclitaxel. Paclitaxel-loaded SLNs (PTX-SLNs) were prepared by modified solvent injection method using stearylamine as lipid, soya lecithin and poloxamer 188 as emulsifiers. SLNs were characterized in terms of surface morphology, size and size distribution, surface chemistry and encapsulation efficiency. Pharmacokinetics and bioavailability studies were conducted in male Swiss albino mice after oral administration of PTX-SLNs. SLNs exhibited spherical shape with smooth surface as analyzed by transmission electron microscopy (TEM). The mean particle size of SLNs was 96 ± 4.4 nm with a low polydispersity index of 0.162 ± 0.04 and zeta potential of 39.1 ± 0.8 mV. The drug entrapment efficiency was found to be 75.42 ± 1.5% with a loading capacity of 31.5 ± 2.1% (w/w). Paclitaxel showed a slow and sustained in vitro release profile and followed Higuchi kinetic equations. After oral administration of the PTX-SLNs, drug exposure in plasma and tissues was ten- and twofold higher, respectively, when compared with free paclitaxel solution. PTX-SLNs produced a high mean Cmax (10,274 ng/ml) compared with that of free paclitaxel solution (3,087 ng/ml). The absorbed drug was found to be distributed in liver, lungs, kidneys, spleen, and brain. The results suggested that PTX-SLNs dispersed in an aqueous environment are promising novel formulations that enhanced the oral bioavailability of hydrophobic drugs, like paclitaxel and were quite safe for oral delivery of paclitaxel as observed by in vivo toxicity studies.
引用
收藏
页码:712 / 722
页数:10
相关论文
共 50 条
  • [21] Enhanced bioavailability of nerve growth factor with phytantriol lipid-based crystalline nanoparticles in cochlea
    Bu, Meng
    Tang, Jingling
    Wei, Yinghui
    Sun, Yanhui
    Wang, Xinyu
    Wu, Linhua
    Liu, Hongzhuo
    [J]. INTERNATIONAL JOURNAL OF NANOMEDICINE, 2015, 10 : 6879 - 6889
  • [22] Development and characterization of solid lipid nanoparticles for enhancement of oral bioavailability of Raloxifene
    Divyakant, B. Patel
    Valay, R. Modi
    Alok, N. Thakkar
    Arpita, A. Patel
    Hetal, P. Thakkar
    [J]. JOURNAL OF PHARMACY AND BIOALLIED SCIENCES, 2012, 4 (05): : S14 - S16
  • [23] Development of solid lipid nanoparticles as carriers for improving oral bioavailability of glibenclamide
    Goncalves, L. M. D.
    Maestrelli, F.
    Manelli, L. Di Cesare
    Ghelardini, C.
    Almeida, A. J.
    Mura, P.
    [J]. EUROPEAN JOURNAL OF PHARMACEUTICS AND BIOPHARMACEUTICS, 2016, 102 : 41 - 50
  • [24] Lipid-based systems as a promising approach for enhancing the bioavailability of poorly water-soluble drugs
    Cerpnjak, Katja
    Zvonar, Alenka
    Gasperlin, Mirjana
    Vrecer, Franc
    [J]. ACTA PHARMACEUTICA, 2013, 63 (04) : 427 - 445
  • [25] Fundamental Aspects of Lipid-Based Excipients in Lipid-Based Product Development
    Nakmode, Deepa
    Bhavana, Valamla
    Thakor, Pradip
    Madan, Jitender
    Singh, Pankaj Kumar
    Singh, Shashi Bala
    Rosenholm, Jessica M.
    Bansal, Kuldeep K.
    Mehra, Neelesh Kumar
    [J]. PHARMACEUTICS, 2022, 14 (04)
  • [26] Surface Modification of Lipid-Based Nanoparticles
    Xu, Yining
    Fourniols, Thibaut
    Labrak, Yasmine
    Preat, Veronique
    Beloqui, Ana
    des Rieux, Anne
    [J]. ACS NANO, 2022, 16 (05) : 7168 - 7196
  • [27] Lipid-based nanoparticles for treatment of cancer
    Sheoran, Sumit
    Arora, Swati
    Samsonraj, R.
    Govindaiah, Pilli
    Vuree, Sugunakar
    [J]. HELIYON, 2022, 8 (05)
  • [28] In vivo fate of lipid-based nanoparticles
    Qi, Jianping
    Zhuang, Jie
    Lu, Yi
    Dong, Xiaochun
    Zhao, Weili
    Wu, Wei
    [J]. DRUG DISCOVERY TODAY, 2017, 22 (01) : 166 - 172
  • [29] Interactions of Apolipoproteins with Lipid-Based Nanoparticles
    Dalhaimer, Paul
    Florey, Brice
    Isaac, Sami
    [J]. ACS NANO, 2023, 17 (02) : 837 - 842
  • [30] Improving oral bioavailability of medicinal herbal compounds through lipid-based formulations - A Scoping Review
    Tan, Oi Jin
    Loo, Hooi Leong
    Thiagarajah, Gayathiri
    Palanisamy, Uma Devi
    Sundralingam, Usha
    [J]. PHYTOMEDICINE, 2021, 90