Kraisit Pakorn, Hirun Namon, Limpamanoch Premjit, Sawaengsuk Yongthida, Janchoochai Narumol, Manasaksirikul Ornpreeya, Limmatvapirat Sontaya
Thammasat University Research Unit in Smart Materials and Innovative Technology for Pharmaceutical Applications (SMIT-Pharm), Faculty of Pharmacy, Thammasat University, Pathumthani 12120, Thailand.
Division of Pharmaceutical Sciences, Faculty of Pharmacy, Thammasat University, Pathumthani 12120, Thailand.
Polymers (Basel). 2024 Jun 5;16(11):1605. doi: 10.3390/polym16111605.
This study aimed to examine the characteristics of H-K4M hydroxypropyl methylcellulose (HPMC) films containing nanostructured lipid carriers (NLCs) loaded with furosemide. A hot homogenization technique and an ultrasonic probe were used to prepare and reduce the size of the NLCs. Films were made using the casting technique. This study used a Box-Behnken design to evaluate the influence of three key independent variables, specifically H-K4M concentration (X), surfactant Cremophor RH40 concentration (X), and mixing speed (X), on the physicochemical properties of furosemide-loaded NLCs and films. The furosemide-loaded NLCs had a particle size ranging from 54.67 to 99.13 nm, and a polydispersity index (PDI) ranging from 0.246 to 0.670. All formulations exhibited a negative zeta potential, ranging from -7.05 to -5.61 mV. The prepared films had thicknesses and weights ranging from 0.1240 to 0.2034 mm and 0.0283 to 0.0450 g, respectively. The drug content was over 85%. Film surface wettability was assessed based on the contact angle, ranging from 32.27 to 68.94°. Film tensile strength varied from 1.38 to 7.77 MPa, and their elongation at break varied from 124.19 to 170.72%. The ATR-FTIR analysis confirmed the complete incorporation of the drug in the film matrix. Therefore, the appropriate selection of values for key parameters in the synthesis of HPMC films containing drug-loaded NLCs is important in the effective development of films for medical applications.
本研究旨在考察含有负载速尿的纳米结构脂质载体(NLC)的H-K4M羟丙基甲基纤维素(HPMC)薄膜的特性。采用热均质技术和超声探头制备并减小NLC的尺寸。通过流延技术制备薄膜。本研究采用Box-Behnken设计来评估三个关键自变量,即H-K4M浓度(X1)、表面活性剂聚氧乙烯蓖麻油RH40浓度(X2)和混合速度(X3)对负载速尿的NLC和薄膜理化性质的影响。负载速尿的NLC粒径范围为54.67至99.13 nm,多分散指数(PDI)范围为0.246至0.670。所有制剂均表现出负的zeta电位,范围为-7.05至-5.61 mV。制备的薄膜厚度范围为0.1240至0.2034 mm,重量范围为0.0283至0.0450 g。药物含量超过85%。基于接触角评估薄膜表面润湿性,接触角范围为32.27至68.94°。薄膜拉伸强度在1.38至7.77 MPa之间变化,断裂伸长率在124.19至170.72%之间变化。衰减全反射傅里叶变换红外光谱(ATR-FTIR)分析证实药物完全掺入薄膜基质中。因此,在合成含有载药NLC的HPMC薄膜时,关键参数值的适当选择对于有效开发用于医疗应用的薄膜很重要。