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泡腾诱导的无定形固体分散体,具有改善的药物溶解度和溶出度。

Effervescence-induced amorphous solid dispersions with improved drug solubility and dissolution.

作者信息

Pisay Muralidhar, Yarlagadda Dani Lakshman, Vullendula Sai Krishna Anand, Bhat Krishnamurthy, Kunnatur Balasundara Koteshwara, Mutalik Srinivas

机构信息

Department of Pharmaceutics, Manipal College of Pharmaceutical Sciences, Manipal Academy of Higher Education, Manipal, India.

Department of Pharmaceutical Quality Assurance, Manipal College of Pharmaceutical Sciences, Manipal Academy of Higher Education, Manipal, India.

出版信息

Pharm Dev Technol. 2023 Feb;28(2):176-189. doi: 10.1080/10837450.2023.2172039. Epub 2023 Jan 28.

Abstract

The current study aimed to investigate drug carrier miscibility in pharmaceutical solid dispersions (SD) and include the effervescent system, i.e. Effervescence-induced amorphous solid dispersions (ESD), to enhance the solubility of a poorly water-soluble Glibenclamide (GLB). Kollidon VA 64, PEG-3350, and Gelucire-50/13 were selected as the water-soluble carriers. The miscibility of the drug-carrier was predicted by molecular dynamics simulation, Hansen solubility parameters, Flory-Huggins theory, and Gibb's free energy. Solid dispersions were prepared by microwave, solvent evaporation, lyophilization, and Hot Melt Extrusion (HME) methods. The prepared solid dispersions were subjected to solubility, dissolution, and other characterization studies. The and theoretical approach suggested that the selected polymers exhibited better miscibility with GLB. Solid-state characterizations like FTIR and H NMR proved the formation of intermolecular hydrogen bonding between the drug and carriers, which was comparatively higher in ESDs than SDs. DSC, PXRD, and microscopic examination of GLB and SDs confirmed the amorphization of GLB, which was higher in ESDs than SDs. Gibb's free energy concept suggested that the prepared solid dispersions will be stable at room temperature. intestinal absorption study on optimized ESDs prepared with Kollidon VA64 using the HME technique exhibited a higher flux and permeability coefficient than the pure drug suggesting a better drug delivery. The drug-carrier miscibility was successfully studied in SDs of GLB. The addition of the effervescent agent further enhanced the solubility and dissolution of GLB. Additionally, this might exhibit a better bioavailability, confirmed by intestinal absorption study.

摘要

本研究旨在探究药物载体在药物固体分散体(SD)中的混溶性,并纳入泡腾系统,即泡腾诱导无定形固体分散体(ESD),以提高难溶性药物格列本脲(GLB)的溶解度。选用聚乙烯吡咯烷酮VA 64、聚乙二醇-3350和Gelucire-50/13作为水溶性载体。通过分子动力学模拟、汉森溶解度参数、弗洛里-哈金斯理论和吉布斯自由能预测药物-载体的混溶性。采用微波法、溶剂蒸发法、冻干法和热熔挤出(HME)法制备固体分散体。对制备的固体分散体进行溶解度、溶出度和其他表征研究。理论方法表明,所选聚合物与GLB表现出更好的混溶性。傅里叶变换红外光谱(FTIR)和核磁共振氢谱(1H NMR)等固态表征证明了药物与载体之间形成了分子间氢键,在ESD中比在SD中相对更高。差示扫描量热法(DSC)、粉末X射线衍射(PXRD)以及GLB和SD的显微镜检查证实了GLB的非晶化,在ESD中比在SD中更高。吉布斯自由能概念表明,制备的固体分散体在室温下将是稳定的。使用HME技术对用聚乙烯吡咯烷酮VA64制备的优化ESD进行的肠道吸收研究显示,其通量和渗透系数高于纯药物,表明药物递送效果更好。成功研究了GLB的SD中药物-载体的混溶性。泡腾剂的加入进一步提高了GLB的溶解度和溶出度。此外,肠道吸收研究证实,这可能表现出更好的生物利用度。

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