University of Navarra, School of Pharmacy, Department of Pharmacy and Pharmaceutical Technology, Irunlarrea 1, Pamplona, 31080, Spain.
Expert Opin Drug Deliv. 2012 Oct;9(10):1245-61. doi: 10.1517/17425247.2012.717928. Epub 2012 Sep 5.
Cancer is a leading cause of death worldwide and it is estimated that deaths from this disease will rise to over 11 million in 2030. Most cases of cancer can be cured with surgery, radiotherapy or chemotherapy if they are detected at an early stage. However, current cancer therapies are commonly associated with undesirable side effects, as most chemotherapy treatments are cytotoxic and present poor tumor targeting.
Lipid nanoparticles (LN) are one of the most promising options in this field. LN are made up of biodegradable generally recognized as safe (GRAS) lipids, their formulation includes different techniques, and most are easily scalable to industrial manufacture. LN overcome the limitations imposed by the need for intravenous administration, as they are mainly absorbed via the lymphatic system when they are administered orally, which improves drug bioavailability. Furthermore, depending on their composition, LN present the ability to cross the blood-brain barrier, thus opening up the possibility of targeting brain tumors.
The drawbacks of chemotherapeutic agents make it necessary to invest in research to find safer and more effective therapies. Nanotechnology has opened the door to new therapeutic options through the design of formulations that include a wide range of materials and formulations at the nanometer range, which improve drug efficacy through direct or indirect tumor targeting, increased bioavailability and diminished toxicity.
癌症是全球主要死因之一,据估计,到 2030 年,癌症死亡人数将上升至超过 1100 万。如果在早期发现,大多数癌症病例可以通过手术、放疗或化疗治愈。然而,目前的癌症疗法通常伴随着不良的副作用,因为大多数化疗药物具有细胞毒性,对肿瘤的靶向性差。
脂质纳米粒 (LN) 是该领域最有前途的选择之一。LN 由可生物降解的通常被认为是安全的 (GRAS) 脂质组成,其制剂包括不同的技术,并且大多数都可以很容易地扩展到工业生产。LN 克服了静脉内给药的限制,因为当它们经口给药时,它们主要通过淋巴系统吸收,从而提高了药物的生物利用度。此外,根据其组成,LN 具有穿过血脑屏障的能力,从而为靶向脑肿瘤提供了可能性。
化疗药物的缺点使得有必要投资于研究,以寻找更安全、更有效的治疗方法。纳米技术通过设计制剂为新的治疗选择开辟了道路,这些制剂包括纳米范围内的各种材料和制剂,通过直接或间接的肿瘤靶向、增加生物利用度和降低毒性来提高药物疗效。