首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到17条相似文献,搜索用时 156 毫秒
1.
青藤碱固体脂质纳米粒的制备   总被引:2,自引:0,他引:2  
目的:以山嵛酸甘油酯为载体材料制备青藤碱固体脂质纳米粒并评价其质量。方法:采用乳化蒸发一低温固化法制备青藤碱固体脂质纳米粒,以正交设计优化其处方和制备工艺。对其粒径、形态、表面电位、包封率等理化性质进行研究,并考察其稳定性。结果:所制固体脂质纳米粒外观形态圆整,平均粒径为208.7nm,Zeta电位为-38.5mV,平均包封率为65.7%。4℃放置2个月,粒径、包封率无明显变化。结论:青藤碱固体脂质纳米粒的制备,为开发其新制剂奠定了实验基础。  相似文献   

2.
目的以乳化蒸发一低温固化法制备阿克他利固体脂质纳米粒。方法在单因素考察的基础上以正交试验设计优化、筛选最佳处方和制备工艺。用透射电镜观察固体脂质纳米粒的形态,激光散射测定Zeta电位和粒度分布,高速离心法测定阿克他利固体脂质纳米粒的包封率。结果所制固体脂质纳米粒外观形态圆整,粒度分布为50~200am,平均粒径为120am,Zeta电位为一17.14mV,包封率为50.87%。结论阿克他利固体脂质纳米粒的制备,为开发阿克他利静脉注射被动靶向制剂奠定了试验基础。  相似文献   

3.
目的: 制备槲皮素固体脂质纳米粒并对其理化性质进行考察。方法: 采用乳化蒸发-低温固化法制备槲皮素固体脂质纳米粒,以正交设计优化处方和制备工艺,超滤法测定包封率,透射电子显微镜对其粒子形态进行观察,并使用激光粒度分析仪测定其粒径和Zeta电位。结果: 经处方优化制备的固体脂质纳米粒平均粒径为(124.2±0.371) nm,Zeta电位为(-22.3±0.315) mV,粒子形态均匀,无粘连,平均包封率为(89.3±1.209)%。结论: 制备槲皮素固体脂质纳米粒的工艺简便可行,包封率较高且纳米粒质量优良。  相似文献   

4.
耿叶慧  杨丽  张瑜  游劲松 《中国药房》2007,18(28):2197-2199
目的:制备吡喹酮固体脂质纳米粒(PZQ-SLN),并考察其理化性质。方法:以山嵛酸甘油酯和乙酸丁酯为脂质材料,超声分散法制备PZQ-SLN,透射电镜观察纳米粒形态,测定其粒径、Zeta电位和药物包封率,并进行体外释放试验及考察样品的稳定性。结果:所得脂质纳米粒为类圆球状,粒径分布较均匀。样品粒径为(100±21)nm,包封率为(79.3±0.69)%,平均Zeta电位值为—66.3mV。药物体外释放符合Weibull方程。4℃放置3mo后粒径、包封率和Zeta电位均无明显变化。结论:制备的PZQ-SLN理化性质较为理想,能使药物缓慢释放。4℃条件下贮存比较稳定。  相似文献   

5.
目的优化薄膜-超声法制备芦丁固体脂质纳米粒的处方。方法以包封率为指标,采用正交设计优化法考察硬脂酸和大豆卵磷脂的用量、吐温-80和聚乙二醇-400的体积分数对包封率的影响,优选最佳处方。用透射电镜观察外观形态,用电位/纳米粒度分析仪分析纳米粒的粒径及Zeta电位,用透析法评价体外释药特征。结果以最佳处方制备的芦丁固体脂质纳米粒呈类球形,平均粒径为195.8±11nm,Zeta电位为-20.65±0.6mV,平均包封率为86.31%,72h体外累积释放87.32%。结论按最佳处方工艺制备的芦丁固体脂质纳米粒具有较高的包封率和较好的缓释效果。  相似文献   

6.
目的:制备吡喹酮-固体脂质纳米粒,考察其理化性质和体外释放度。方法:以硬脂酸为脂质材料,聚乙烯吡咯烷酮为乳化剂,利用热熔乳化超声法制备吡喹酮-固体脂质纳米粒,扫描电镜观察纳米粒形态和均匀度,纳米粒度仪测定其粒径、分散指数、Zeta电位、包封率和载药量,并进行体外释放试验。结果:制备的固体脂质纳米粒为类圆球状,粒径分布较均匀、表面光滑。纳米的平均粒径、分散指数、电位、包封率和载药量分别为(316.5±22.8)nm、0.23±0.05、(-25.3±0.7)mV,(92.64±5.12)%和(18.45±1.34)%。药物在制剂的过程中稳定性良好。体外释放表明吡喹酮-硬脂酸固体脂质纳米粒在生理盐水中具有一定程度的突释和显著的缓释效果。结论:本试验制备的吡喹酮-硬脂酸固体脂质纳米粒具有较好的均匀度和高载药量,并具有良好的缓释性能。  相似文献   

7.
口服葛根素固体脂质纳米粒的制备   总被引:2,自引:0,他引:2  
目的 研究葛根素固体脂质纳米粒(Pue-SLN)的制备工艺,并考察其制备过程中的影响因素.方法 采用溶剂扩散法制备Pue-SLN,并考察其形态、粒径分布、包封率、载药量、Zeta电位等.结果 Pue-SLN在透射电镜下呈球形或近球形,分布均匀,平均粒径为160 nm,包封率达80%~85%,平均Zeta电位为-35.43 mV.结论 所用制备工艺简单稳定,可用于制备口服Pue-SLN.  相似文献   

8.
人参皂苷Rd固体脂质纳米粒的制备   总被引:1,自引:0,他引:1  
目的:制备人参皂苷Rd固体脂质纳米粒,并考察其理化性质。方法:从旋转薄膜-超声分散法、乳化蒸发-低温固化法、高剪切乳化超声法和高压乳匀法中优选出制备方法;在脂质、表面活性剂等辅料和主药用量的单因素考察基础上,采用正交试验设计,确定最佳处方组成和制备工艺条件;用凝胶柱色谱和HPLC法测定包封率,透射电镜观察形态,激光粒径分析仪测定粒径和Zeta电位。结果:脂质、表面活性剂、助表面活性剂和主药的用量对Rd固体脂质纳米粒的粒径、Zeta电位和包封率均有不同程度的影响。高压乳匀法适合制备Rd固体脂质纳米粒。纳米粒表面呈圆整的球状,大小相近,分散均匀;平均粒径为(102.7±27.0)nm,Zeta电位为(-44.9±9.5)mV,包封率和载药量分别为(81.8±2.6)%和(6.37±0.21)%(n=3)。纳米粒稳定性良好,在4℃下保存4周后,粒径和包封率变化不明显。结论:高压乳匀法适合制备人参皂苷Rd固体脂质纳米粒,工艺稳定可行。  相似文献   

9.
大黄素固体脂质纳米粒的制备及理化性质研究   总被引:2,自引:0,他引:2  
张洪  成蓓 《中国药师》2010,13(3):326-329
目的:制备大黄素固体脂质纳米粒,并对其理化性质进行研究。方法:用乳化一溶剂挥发法制得大黄素素固体脂质纳米粒,并对其粒径、形态、表面电位、包封率、体外释药性质等进行研究。采用全体液平衡反向透析法研究体外释药性质。结果:所制固体脂质纳米粒外观形态圆整,粒度分布均匀,平均粒径为253nm,电位为一25.4mV,包封率为(56.31±2.06)%。药物体外释放符合Weibull线性方程。结论:固体脂质纳米粒可作为大黄素新型缓释给药系统。  相似文献   

10.
胰岛素固体脂质纳米粒的制备及其包封率的测定   总被引:1,自引:1,他引:1  
目的 制备胰岛素固体脂质纳米粒(Ins-SLNs),考察其理化性质,并建立测定包封率的方法.方法 通过复乳/溶剂扩散法制备Ins-SLNs,考察其形态、粒径分布、Zeta电位;通过改变pH,调节Zeta电位后,采用冷冻高速离心分离纳米粒与游离Ins的方法,测定Ins-SLNs的包封率.结果 复乳法制备的Ins-SLNs在扫描电镜下均呈球形,分布均匀,平均粒径为114.7±4.68 nm,Zeta电位为-54.36±2.04 mV;包封率测定方法的线性范围为1.047~100.47μg·ml-1,平均回收率为98.37%,RSD=1.02%;测得3批Ins-SLNs样品的平均包封率为97.78%.结论 所用制备工艺简单,制得的纳米粒包封率较高;包封率的测定方法方便、灵敏、准确.  相似文献   

11.
目的制备黄豆苷元固体脂质纳米粒并考察其性质。方法采用正交实验法优化黄豆苷元固体脂质纳米粒的最佳处方,并测定黄豆苷元固体脂质纳米粒的粒径、ζ电位、包封率、稳定性和累积释放百分率。结果黄豆苷元固体脂质纳米粒的最佳处方组合为:单硬脂酸甘油酯用量为2.0%,黄豆苷元用量为2.0 mg.mL-1,豆磷脂的用量为0.4%,Pluronic F68的用量为1.2%。所制得的纳米粒包封率为84.7%、平均粒径为170 nm、ζ电位为-35.8 mV、72 h累积释放百分率为90.3%。结论新制黄豆苷元固体脂质纳米粒的粒度分布范围窄,包封率较高,稳定性良好。  相似文献   

12.
目的:制备蓝萼甲素固体脂质纳米粒,并对其理化性质进行研究。方法:用乳化-溶剂挥发法制得蓝萼甲素固体脂质纳米粒,并对其粒径、形态、表面电位、包封率、体外释药性质等进行研究。结果:所得蓝萼甲素固体脂质纳米粒的粒径分布均匀,平均粒径为(190±10·3)nm,Zeta电位为—31·2mV,平均包封率为(50·45±0·804)%;药物体外释放符合Higuchi线性方程,具有显著缓释作用。结论:固体脂质纳米粒可作为蓝萼甲素新型缓释给药系统。  相似文献   

13.
The aim of this study was to understand and investigate the relationship between experimental factors and their responses in the preparation of ciprofloxacin hydrochloride based solid lipid nanoparticles. A quadratic relationship was studied by developing central composite rotatable design. Amount of lipid and drug, stirring speed and stirring time were selected as experimental factors while particle size, zeta potential and drug entrapment were used as responses. Prior to the experimental design, a qualitative prescreening study was performed to check the effect of various solid lipids and their combinations. Results showed that changing the amount of lipid, stirring speed and stirring time had a noticeable influence on the entrapment efficiencies and particle size of the prepared solid lipid nanoparticles. The particle size of a solid lipid nanoparticle was in the range of 159-246 nm and drug encapsulation efficiencies were marginally improved by choosing a binary mixture of physically incompatible solid lipids. Release of ciprofloxacin hydrochloride from solid lipid nanoparticle was considerably slow, and it shows Higuchi matrix model as the best fitted model. Study of solid lipid nanoparticle suggested that the lipid based carrier system could potentially be exploited as a delivery system with improved drug entrapment efficiency and controlled drug release for water soluble actives.  相似文献   

14.
刘旻  陈建海  董芙蓉  刘园 《中国药房》2008,19(12):905-907
目的:研究银杏内酯AB长循环固体脂质纳米粒(GAB-LSLN)的制备方法,并探讨GAB-LSLN的主要理化性质。方法:分别采用超声法和高压乳匀法制备GAB-LSLN。在电镜下观察其形态,测定其粒径、Zeta电位和包封率,并在室温下放置4周,观察GAB-LSLN的稳定性。结果:超声法制备的GAB-LSLN在透射电镜下呈片状存在,形态不规则;高压乳匀法制备的GAB-LSLN呈球状,形态规则。超声法和高压乳匀法制备的GAB-LSLN粒径分别为(219.6±14.3)nm和(173.9±10.4)nm(P<0.001);Zeta电位分别为(—21.12±1.03)mv和(—27.43±2.14)mV(P<0.001),包封率分别为(85.05±0.67)%和(92.49±0.88)%(P<0.001)。高压乳匀法制备的GAB-LSLN室温放置4周后,粒径无显著增加(P>0.05)。结论:高压乳匀法制备GAB-LSLN具有粒径小、稳定性和包封率高的特点,优于超声法。  相似文献   

15.

Background and the purpose of the study

Domperidone (DOM) is a dopamine- receptor (D2) antagonist, widely used in the treatment of motion-sickness. The pharmacokinetic parameters of DOM make it a suitable candidate for development of Solid Lipid Nanoparticle (SLN) and Nanostructured Lipide Carrier (NLC). The purpose of the present investigation was to prepare and evaluate DOM loaded solid lipid nanoparticles (DOM-SLN) and DOM loaded nanostructured lipid carriers (DOM-NLC).

Methods

DOM loaded SLN and NLC were prepared by hot homogenization followed by ultrasonication technique, using trimyristin as solid lipid, cetyl recinoleate as liquid lipid and a mixture of soy phosphatidylcholine (99%) and tween 80 as surfactant. SLN and NLC were characterized for particle size, polydispersity index (PDI), zeta potential and entrapment efficiency. The effects of composition of lipid materials and surfactant mixture on the particle size, PDI, zeta potential, drug entrapment efficiency, and in vitro drug release behavior were investigated. DSC analysis was performed to characterize the state of drug and lipid modification. Shape and surface morphology were determined by transmission electron microscopy (TEM). SLN and NLC formulations were subjected to stability study over a period of 40 days.

Results

The mean particle size, PDI, zeta potential and entrapment efficiency of optimized SLN (SLN1) and NLC were found to be 30.45 nm, 0.156, 12.40 mV, 87.84% and 32.23 nm, 0.160, 10.47 mV, 90.49% respectively. DSC studies revealed that DOM was in an amorphous state and triglycerides were in the β prime form in SLN and NLC. Shape and surface morphology was determined by TEM revealed fairly spherical shape of nanoparticles. In vitro release studies demonstrated that both the SLN and NLC formulations possessed a controlled release over a period of 24 hrs. SLN and NLC formulations were subjected to stability over a period of 40 days. There was no significant (P<0.05) change in particle size, zeta potential, PDI and entrapment efficiency indicating the developed SLN and NLC were fairly stable.

Conclusion

Fairly spherical shaped, stable and controlled release DOM-SLN and DOM-NLC could be prepared by hot homogenization followed by ultrasonication technique.  相似文献   

16.
乳化蒸发法制备固体脂质纳米粒   总被引:2,自引:0,他引:2  
李姜晖  王柏 《药学进展》2008,32(3):127-131
目的:采用乳化蒸发法制备固体脂质纳米粒,并考察其载药性能。方法:对影响固体脂质纳米粒质量的工艺因素和处方因素进行考察和优化设计,得到最优处方。选用模型药物酮洛芬制备载药固体脂质纳米粒,考察其包封率和体外释放行为。结果:所得固体脂质纳米粒平均粒径为(228.2±18.1)nm,多分散系数为(0.217±0.022),ξ电位为-(21.4±0.6)mV。载药固体脂质纳米粒最佳包封率为(64.1±3.3)%,体外释放行为符合Weibull模型。结论:采用乳化蒸发法制备固体脂质纳米粒是可行的。  相似文献   

17.
The purpose of present study is to examine effect of binary lipid matrix (combination of lipids) on the entrapment and storage stability of repaglinide (RG) loaded solid lipid nanoparticles (SLN). Solid lipid nanoparticles were prepared by modified solvent injection method for oral delivery to improve the bioavailability of RG, an antidiabetic drug. The stearic acid and tristearin were used to form lipid core materials, and Pluronic-F68 was used as a stabilizer. Nanoparticles were characterized by evaluating their particle size, zeta potential, entrapment efficiency, drug loading, solid-state studies (differential scanning calorimetry, X-ray diffraction), in vitro drug release, particle surface (transmission electron microscopy analysis with electron diffraction pattern), stability study in gastrointestinal fluids (GIFs) and storage stability at 30 °C/65% RH for 3 months. The characterization of SLN suggested that binary lipid matrix based nanoparticles had better drug entrapment and loading, desired release characteristics, stable in GIFs and significantly higher storage stability compared with single lipid formulations. Pharmacodynamic (blood glucose, blood cholesterol, blood triglyceride levels) and pharmacokinetic (AUC, T(max), peak plasma concentrations, K, t(1/2), mean residence time and relative bioavailabilities) studies were performed for the selected formulations. These studies indicate that the formulation based on binary lipid matrix significantly improves the oral bioavailability of RG.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号