Department of Respiratory and Critical Care Medicine, Sleep Medicine Center, Mental Health Center, West China Hospital, Sichuan University, Chengdu, People's Republic of China.
Int J Nanomedicine. 2024 Feb 17;19:1509-1538. doi: 10.2147/IJN.S446919. eCollection 2024.
Lungs experience frequent interactions with the external environment and have an abundant supply of blood; therefore, they are susceptible to invasion by pathogenic microorganisms and tumor cells. However, the limited pharmacokinetics of conventional drugs in the lungs poses a clinical challenge. The emergence of different nano-formulations has been facilitated by advancements in nanotechnology. Inhaled nanomedicines exhibit better targeting and prolonged therapeutic effects. Although nano-formulations have great potential, they still present several unknown risks. Herein, we review the (1) physiological anatomy of the lungs and their biological barriers, (2) pharmacokinetics and toxicology of nanomaterial formulations in the lungs; (3) current nanomaterials that can be applied to the respiratory system and related design strategies, and (4) current applications of inhaled nanomaterials in treating respiratory disorders, vaccine design, and imaging detection based on the characteristics of different nanomaterials. Finally, (5) we analyze and summarize the challenges and prospects of nanomaterials for respiratory disease applications. We believe that nanomaterials, particularly inhaled nano-formulations, have excellent prospects for application in respiratory diseases. However, we emphasize that the simultaneous toxic side effects of biological nanomaterials must be considered during the application of these emerging medicines. This study aims to offer comprehensive guidelines and valuable insights for conducting research on nanomaterials in the domain of the respiratory system.
肺部与外界环境频繁互动,血液供应丰富,因此容易受到致病微生物和肿瘤细胞的侵袭。然而,传统药物在肺部的药代动力学有限,这给临床带来了挑战。纳米技术的进步促进了不同纳米制剂的出现。吸入式纳米药物具有更好的靶向性和更持久的治疗效果。尽管纳米制剂具有很大的潜力,但它们仍然存在一些未知的风险。在此,我们综述了(1)肺部的生理解剖结构及其生物学屏障,(2)肺部纳米材料制剂的药代动力学和毒理学;(3)可应用于呼吸系统的现有纳米材料及其相关设计策略,以及(4)基于不同纳米材料特性的吸入式纳米材料在治疗呼吸障碍、疫苗设计和成像检测方面的应用。最后,(5)我们分析和总结了纳米材料在呼吸疾病应用中的挑战和前景。我们相信,纳米材料,特别是吸入式纳米制剂,在呼吸疾病的应用中有很好的前景。然而,我们强调,在应用这些新兴药物时,必须考虑生物纳米材料的同时毒性副作用。本研究旨在为呼吸系统领域的纳米材料研究提供全面的指导和有价值的见解。