Physicochemical Stimuli-Mediated Precipitation Approach for the Modulation of Rifampicin's Dissolution and Oral Bioavailability.

IF 3.4 4区 医学 Q2 PHARMACOLOGY & PHARMACY AAPS PharmSciTech Pub Date : 2024-08-19 DOI:10.1208/s12249-024-02915-6
Vineet Kumar Rai, Deepak Pradhan, Jitu Halder, Tushar Kanti Rajwar, Ritu Mahanty, Ivy Saha, Priyanka Dash, Chandan Dash, Saroj Kumar Rout, Jameel Al-Tamimi, Hossan Ebaid, Salim Manoharadas, Biswakanth Kar, Goutam Ghosh, Goutam Rath
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Abstract

The intricate process of protein binding orchestrates crucial drug interactions within the bloodstream, facilitating the formation of soluble complexes. This research endeavours to improve the dissolution and oral bioavailability of Rifampicin (RMP) by strategically manipulating drug-protein binding dynamics and the hydrophobic characteristics of human serum albumin (HSA). Various precipitation techniques leveraging methanol, ammonium sulfate, and heat treatment were meticulously employed to tailor the properties of colloidal albumin (HSA NPs). The resultant complexes underwent comprehensive characterization encompassing evaluations of hydrophobicity, size distribution, surface charge, and structural analyses through FTIR, TG-DSC, XRD, and morphological examinations. The findings revealed a significant binding affinity of 78.07 ± 6.6% with native albumin, aligning with prior research. Notably, the complex RMP-HSA NPs-M13, synthesized via the methanolic precipitation method, exhibited the most substantial complexation, achieving a remarkable 3.5-fold increase, followed by the ammonium sulfate (twofold) and heat treatment (1.07-fold) methods in comparison to native albumin binding. The gastric simulated media exhibited accelerated drug release kinetics, with maximal dissolution achieved within two hours, contrasting with the prolonged release observed under intestinal pH conditions. These findings translated into significant improvements in drug permeation, as evidenced by pharmacokinetic profiles demonstrating elevated Cmax, AUC, t1/2, and MRT values for RMP-HSA NPs-M13 compared to free RMP. In summary, this innovative approach underscores the potential of precipitation methods in engineering stable colloidal carrier systems tailored to enhance the oral bioavailability of poorly soluble drugs, offering a pragmatic and scalable alternative to conventional surfactants, polymers, or high-energy methods for complex formation and production.

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理化刺激沉淀法调节利福平的溶解度和口服生物利用度
蛋白质结合的复杂过程协调了血液中关键的药物相互作用,促进了可溶性复合物的形成。本研究通过对药物与蛋白质的结合动力学以及人血清白蛋白(HSA)的疏水特性进行战略性操纵,努力提高利福平(RMP)的溶解度和口服生物利用度。为了调整胶体白蛋白(HSA NPs)的特性,研究人员精心采用了甲醇、硫酸铵和热处理等多种沉淀技术。通过傅立叶变换红外光谱(FTIR)、TG-DSC、X射线衍射(XRD)和形态学检查,对所得复合物进行了全面的表征,包括疏水性、尺寸分布、表面电荷和结构分析等方面的评估。研究结果表明,该复合物与原生白蛋白的结合亲和力高达 78.07 ± 6.6%,与之前的研究结果一致。值得注意的是,通过甲醇沉淀法合成的复合物 RMP-HSA NPs-M13 与原生白蛋白的结合力相比提高了 3.5 倍,表现出了最显著的复合性,其次是硫酸铵法(2 倍)和热处理法(1.07 倍)。胃模拟介质表现出更快的药物释放动力学,在两小时内达到最大溶解度,这与在肠道 pH 条件下观察到的长时间释放形成鲜明对比。与游离 RMP 相比,药代动力学图谱显示 RMP-HSA NPs-M13 的 Cmax、AUC、t1/2 和 MRT 值均有所提高。总之,这种创新方法凸显了沉淀法在设计稳定胶体载体系统方面的潜力,该系统专为提高难溶性药物的口服生物利用度而定制,为传统表面活性剂、聚合物或高能方法提供了一种实用且可扩展的复合物形成和生产替代方法。
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来源期刊
AAPS PharmSciTech
AAPS PharmSciTech 医学-药学
CiteScore
6.80
自引率
3.00%
发文量
264
审稿时长
2.4 months
期刊介绍: AAPS PharmSciTech is a peer-reviewed, online-only journal committed to serving those pharmaceutical scientists and engineers interested in the research, development, and evaluation of pharmaceutical dosage forms and delivery systems, including drugs derived from biotechnology and the manufacturing science pertaining to the commercialization of such dosage forms. Because of its electronic nature, AAPS PharmSciTech aspires to utilize evolving electronic technology to enable faster and diverse mechanisms of information delivery to its readership. Submission of uninvited expert reviews and research articles are welcomed.
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