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首页> 外文期刊>Expert opinion on drug delivery >Recent advances and future directions in amphiphilic cyclodextrin nanoparticles.
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Recent advances and future directions in amphiphilic cyclodextrin nanoparticles.

机译:两亲环糊精纳米颗粒的最新进展和未来方向。

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摘要

Cyclodextrins are known to be promising excipients in the pharmaceutical industry, with their ability to include hydrophobic guest molecules masking the physicochemical properties of the guest, such as poor water solubility, stability problems and undesired side effects. These enabling excipients, which are produced on a large scale and incorporated into various marketed products worldwide, are now modified to render amphiphilic properties that enable them to be used to prepare nanoparticles. Amphiphilic cyclodextrins have the ability to form nanoparticles without the presence of a surfactant by different preparation techniques that are discussed in this review. Classification and physicochemical properties of these interesting molecules as well as the efficacy and safety of nanoparticles prepared from different amphiphilic cyclodextrins are discussed in light of the current literature work with in vitro and in vivo findings. Cyclodextrin nanoparticles of different nature effectively carry drugs or molecules with bioavailability problems arising from poor aqueous solubility, stability under physiological conditions or side effects associated with the molecule itself or excipients used in the formulation of these problems drugs. In conclusion, amphiphilic cyclodextrins emerge as promising alternatives for tumor drug delivery and passive and active targeting with non-toxic, non-hemolytic properties as injectable, nanosized carriers.
机译:环糊精在制药工业中是有前途的赋形剂,具有疏水性客体分子掩盖客体物理化学特性(如水溶性差,稳定性问题和不良副作用)的能力。这些可赋形的赋形剂,已大规模生产并掺入了世界各地的各种市售产品中,现在已被修饰以使其具有两亲性质,从而使其能够用于制备纳米颗粒。通过本综述中讨论的不同制备技术,两亲环糊精具有在不存在表面活性剂的情况下形成纳米颗粒的能力。鉴于目前的文献研究以及体外和体内发现,讨论了这些有趣分子的分类和理化性质,以及由不同两亲环糊精制备的纳米颗粒的功效和安全性。不同性质的环糊精纳米颗粒有效地携带具有生物利用度问题的药物或分子,这是由于水溶性差,在生理条件下的稳定性或与分子本身或用于配制这些问题药物的赋形剂有关的副作用引起的。总而言之,两亲环糊精作为肿瘤药物递送和具有无毒,非溶血特性的被动和主动靶向物,作为可注射的纳米级载体,有望成为替代物。

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