Respiratory Technology, Woolcock Institute of Medical Research, Sydney, NSW 2037, Australia; Faculty of Medicine and Health Sciences, Macquarie Medical School, Macquarie University, Sydney, NSW 2109, Australia.
Faculty of Food and Land Systems, The University of British Columbia, 2357 Main Mall, Vancouver, BC V6T 1Z4, Canada.
Int J Pharm. 2024 Apr 10;654:123922. doi: 10.1016/j.ijpharm.2024.123922. Epub 2024 Feb 22.
The surge in neurological disorders necessitates innovative strategies for delivering active pharmaceutical ingredients to the brain. The non-invasive intranasal route has emerged as a promising approach to optimize drug delivery to the central nervous system by circumventing the blood-brain barrier. While the intranasal approach offers numerous advantages, the lack of a standardized protocol for drug testing poses challenges to both in vitro and in vivo studies, limiting the accurate interpretation of nasal drug delivery and pharmacokinetic data. This review explores the in vitro experimental assays employed by the pharmaceutical industry to test intranasal formulation. The focus lies on understanding the diverse techniques used to characterize the intranasal delivery of drugs targeting the brain. Parameters such as drug release, droplet size measurement, plume geometry, deposition in the nasal cavity, aerodynamic performance and mucoadhesiveness are scrutinized for their role in evaluating the performance of nasal drug products. The review further discusses the methodology for in vivo characterization in detail, which is essential in evaluating and refining drug efficacy through the nose-to-brain pathway. Animal models are indispensable for pre-clinical drug testing, offering valuable insights into absorption efficacy and potential variables affecting formulation safety. The insights presented aim to guide future research in intranasal drug delivery for neurological disorders, ensuring more accurate predictions of therapeutic efficacy in clinical contexts.
神经紊乱的激增需要创新的策略来将活性药物成分递送到大脑。非侵入性的鼻腔途径已成为一种有前途的方法,可以通过绕过血脑屏障来优化药物向中枢神经系统的传递。虽然鼻腔途径有许多优点,但缺乏标准化的药物测试协议对体外和体内研究都构成了挑战,限制了对鼻腔药物传递和药代动力学数据的准确解释。这篇综述探讨了制药行业用于测试鼻腔制剂的体外实验检测方法。重点在于了解用于表征针对大脑的药物鼻腔传递的各种技术。研究了药物释放、液滴大小测量、喷雾几何形状、鼻腔沉积、空气动力学性能和粘膜粘附性等参数,以评估鼻腔药物产品的性能。该综述还详细讨论了体内特性的方法学,这对于通过鼻脑途径评估和改进药物功效至关重要。动物模型对于临床前药物测试是必不可少的,为吸收功效和影响配方安全性的潜在变量提供了有价值的见解。提出的见解旨在为神经紊乱的鼻腔药物输送的未来研究提供指导,确保在临床环境中更准确地预测治疗效果。