Production & stability of stavudine solid lipid nanoparticles-From lab to industrial scale

被引:87
|
作者
Shegokar, R. [1 ,2 ]
Singh, K. K. [2 ]
Mueller, R. H. [1 ]
机构
[1] Free Univ Berlin, Inst Pharm, Dept Pharmaceut Biopharmaceut & NutriCosmet, D-12169 Berlin, Germany
[2] SNDT Womens Univ, CU Shah Coll Pharm, Bombay 400049, Maharashtra, India
关键词
HIV/AIDS; Solid lipid nanoparticles; Large-scale production; High pressure homogenization; Stability; DRUG-DELIVERY SYSTEMS; IN-VITRO; POLYMERIC NANOPARTICLES; INTRACELLULAR DELIVERY; SLN; FORMULATION; EMULSIONS; NLC;
D O I
10.1016/j.ijpharm.2010.08.014
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
The production of stavudine-loaded solid lipid nanoparticles (SLN) for intravenous injection was scaled up from lab scale (40g) to medium scale (10 kg) and large scale (20/60 kg). The SLN were produced by high pressure homogenization of stavudine lipid melt dispersed in hot surfactant solution (pre-emulsion) applying 800 bar pressure. Employed were piston-gap homogenizers with increasing capacity (APV Gaulin products LAB 40, LAB 60 and Gaulin 5.5; and Avestin C50), using them in the continuous (circulation) and discontinuous mode. Size analysis was performed by photon correlation spectroscopy (PCS), laser diffractometry and light microscopy. At lab scale a PCS size of 53 nm was obtained. At the same pressure, all homogenizers on larger scale yielded a size in the range of the lab scale product (35-70 nm). Differences were found in the size as a function of circulation time (size increase or size reduction with time) and the number of cycles required (1 or 5) for the optimal product. The stavudine SLN formulation (2% lipid content, high surfactant to lipid ratio) showed a different behavior to conventional higher concentrated SLN suspensions or nanoemulsions (10% or 20% lipid/oil, low surfactant to lipid ratio). In general, smallest sizes were obtained in the discontinuous mode after just one homogenization cycle. The continuous production mode was only efficient with a 10 kg batch size using the LAB 60. In addition, the long-term stability over 1 year was monitored at refrigeration, room temperature and at 40 degrees C to assess a potential effect of the homogenizer type on stability. All batches at room temperature and below were stable, only a negligible increase in size was observed. (C) 2010 Elsevier B.V. All rights reserved.
引用
收藏
页码:461 / 470
页数:10
相关论文
共 50 条
  • [1] SOLID LIPID NANOPARTICLES: CLASSICAL METHODS OF LAB PRODUCTION
    Souto, Eliana B.
    Severino, Patricia
    Santana, Maria Helena A.
    Pinho, Samantha C.
    QUIMICA NOVA, 2011, 34 (10): : 1762 - 1769
  • [2] Review on the Scale-Up Methods for the Preparation of Solid Lipid Nanoparticles
    Khairnar, Sakshi, V
    Pagare, Pritha
    Thakre, Aditya
    Nambiar, Aswathy Rajeevan
    Junnuthula, Vijayabhaskarreddy
    Abraham, Manju Cheripelil
    Kolimi, Praveen
    Nyavanandi, Dinesh
    Dyawanapelly, Sathish
    PHARMACEUTICS, 2022, 14 (09)
  • [3] Stability of lipid exciplents in solid lipid nanoparticles
    Radornska-Soukharev, Anna
    ADVANCED DRUG DELIVERY REVIEWS, 2007, 59 (06) : 411 - 418
  • [4] Preparation and stability of astaxanthin solid lipid nanoparticles based on stearic acid
    Li, Miaomiao
    Zahi, Mohamed Reda
    Yuan, Qipeng
    Tian, Feibao
    Liang, Hao
    EUROPEAN JOURNAL OF LIPID SCIENCE AND TECHNOLOGY, 2016, 118 (04) : 592 - 602
  • [5] Industrialization of lipid nanoparticles: From laboratory -scale to large-scale production line
    Hu, Caibiao
    Qian, Airui
    Wang, Qiang
    Xu, Feng
    He, Yi
    Xu, Jing
    Xia, Yongchang
    Xia, Qiang
    EUROPEAN JOURNAL OF PHARMACEUTICS AND BIOPHARMACEUTICS, 2016, 109 : 206 - 213
  • [6] Ivermection-loaded solid lipid nanoparticles: preparation, characterisation, stability and transdermal behaviour
    Guo, Dawei
    Dou, Dandan
    Li, Xinyu
    Zhang, Qian
    Bhutto, Zohaib Ahmed
    Wang, Liping
    ARTIFICIAL CELLS NANOMEDICINE AND BIOTECHNOLOGY, 2018, 46 (02) : 255 - 262
  • [7] Morin hydrate loaded solid lipid nanoparticles: Characterization, stability, anticancer activity, and bioavailability
    Karamchedu, Swathi
    Tunki, Lakshmi
    Kulhari, Hitesh
    Pooja, Deep
    CHEMISTRY AND PHYSICS OF LIPIDS, 2020, 233
  • [8] Solid lipid nanoparticles: Continuous and potential large-scale nanoprecipitation production in static mixers
    Dong, Yuancai
    Ng, Wai Kiong
    Shen, Shoucang
    Kim, Sanggu
    Tan, Reginald B. H.
    COLLOIDS AND SURFACES B-BIOINTERFACES, 2012, 94 : 68 - 72
  • [9] Enhanced stability and skin permeation of ibuprofen-loaded solid lipid nanoparticles based binary solid lipid matrix: Effect of surfactant and lipid compositions
    Chantaburanan, Thitirat
    Teeranachaideekul, Veerawat
    Jintapattanakit, Anchalee
    Chantasart, Doungdaw
    Junyaprasert, Varaporn Buraphacheep
    INTERNATIONAL JOURNAL OF PHARMACEUTICS-X, 2023, 6
  • [10] Medium scale production of solid lipid nanoparticles (SLN) by high pressure homogenization
    Jenning, V
    Lippacher, A
    Gohla, SH
    JOURNAL OF MICROENCAPSULATION, 2002, 19 (01) : 1 - 10