Advances in Aerosol Formulation for Targeted Delivery of Therapeutic Agents from Nose to Brain

并行传输 药物输送 鼻腔给药 医学 药品 鼻腔 药理学 靶向给药 鼻子 跨细胞 神经科学 生物医学工程 化学 纳米技术 解剖 生物 材料科学 生物化学 磁导率
作者
Shristy Verma,Pramod Kumar Sharma,Rishabha Malviya
出处
期刊:Current Drug Delivery [Bentham Science Publishers]
卷期号:21 被引量:2
标识
DOI:10.2174/0115672018285350240227073607
摘要

The intricate anatomical and physiological barriers that prohibit pharmaceuticals from entering the brain continue to provide a noteworthy hurdle to the efficient distribution of medications to brain tissues. These barriers prevent the movement of active therapeutic agents into the brain. The present manuscript aims to describe the various aspects of brain-targeted drug delivery through the nasal route. The primary transport mechanism for drug absorption from the nose to the brain is the paracellular/extracellular mechanism, which allows for rapid drug transfer. The transcellular/intracellular pathway involves the transfer across a lipoidal channel, which regulates the entry or exit of anions, organic cations, and peptides. Spectroscopy and PET (positron emission tomography) are two common methods used for assessing drug distribution. MRI (Magnetic resonance imaging) is another imaging method used to assess the efficacy of aerosol drug delivery from nose to brain. It can identify emphysema, drug-induced harm, mucus discharge, oedema, and vascular remodeling. The olfactory epithelium's position in the nasal cavity makes it difficult for drugs to reach the desired target. Bi-directional aerosol systems and tools like the "OptiNose" can help decrease extranasal particle deposition and increase particle deposition efficiency in the primary nasal pathway. Direct medicine administration from N-T-B, however, can reduce the dose administered and make it easier to attain an effective concentration at the site of activity, and it has the potential to be commercialized.
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